FoxArrayBase.Mod 337 KB

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  1. MODULE FoxArrayBase; (* stubs for array base runtime - can only be compiled by oc compiler *)
  2. (* (c) fof, fn, ETH Zürich, 2008 *)
  3. (*! do do: MAX(array,scalar) and MAX(array,array) for all datatypes*)
  4. IMPORT SYSTEM, KernelLog, Heaps, Math, MathL;
  5. TYPE
  6. Address = LONGINT;
  7. GenericUnaryAALoopS = PROCEDURE ( ladr, dadr, linc, dinc, len: Address; op: PROCEDURE(x: SHORTINT): SHORTINT );
  8. GenericUnaryAALoopI = PROCEDURE ( ladr, dadr, linc, dinc, len: Address; op: PROCEDURE(x: INTEGER): INTEGER );
  9. GenericUnaryAALoopL = PROCEDURE ( ladr, dadr, linc, dinc, len: Address; op: PROCEDURE(x: LONGINT): LONGINT );
  10. GenericUnaryAALoopH = PROCEDURE ( ladr, dadr, linc, dinc, len: Address; op: PROCEDURE(x: HUGEINT): HUGEINT );
  11. GenericUnaryAALoopR = PROCEDURE ( ladr, dadr, linc, dinc, len: Address; op: PROCEDURE(x: REAL): REAL );
  12. GenericUnaryAALoopX = PROCEDURE ( ladr, dadr, linc, dinc, len: Address; op: PROCEDURE(x: LONGREAL): LONGREAL );
  13. GenericUnaryAALoopZ = PROCEDURE ( ladr, dadr, linc, dinc, len: Address; op: PROCEDURE(x: COMPLEX): COMPLEX );
  14. GenericUnaryAALoopLZ = PROCEDURE ( ladr, dadr, linc, dinc, len: Address; op: PROCEDURE(x: LONGCOMPLEX): LONGCOMPLEX );
  15. UnaryAALoop = PROCEDURE ( ladr, dadr, linc, dinc, len: Address );
  16. UnaryASLoop = PROCEDURE ( ladr, dadr, linc, len: Address );
  17. UnarySALoop = PROCEDURE ( ladr, dadr, dinc, len: Address );
  18. BinaryAAALoop = PROCEDURE ( ladr, radr, dadr, linc, rinc, dinc, len: Address );
  19. BinaryASALoop = PROCEDURE ( ladr, radr, dadr, linc, dinc, len: Address );
  20. BinaryAASLoop = PROCEDURE ( ladr, radr, dadr, linc, rinc, len: Address );
  21. BinaryAABLoop = PROCEDURE ( ladr, radr, linc, rinc, len: Address ): BOOLEAN;
  22. BinaryASBLoop = PROCEDURE ( ladr, radr, linc, len: Address ): BOOLEAN;
  23. CONST
  24. debug = FALSE; (* warning: debug=true -> a lot of output is generated -> traps are not displayed in Oberon (Kernel overflow) *)
  25. statistics= FALSE;
  26. conservative=TRUE;
  27. ArrDataArrayOffset=16; (* offset of data in array with pointers *)
  28. AddressSize=SIZEOF(Address);
  29. MathPtrOffset=0*AddressSize;
  30. MathAdrOffset=1*AddressSize;
  31. MathFlagsOffset=2*AddressSize;
  32. MathDimOffset=3*AddressSize;
  33. MathElementSizeOffset=4*AddressSize;
  34. MathLenOffset=5*AddressSize;
  35. MathIncrOffset=6*AddressSize;
  36. GeometryMismatch = 400;
  37. DimensionMismatch=401;
  38. AllocationForbidden=402;
  39. TensorFlag = 0; RangeFlag = 1; TemporaryFlag = 2;
  40. down = 0; up = 1; (* memory copy modes *)
  41. (* flags for optimizations with small matricies and vectors (Alexey Morozov) *)
  42. SmallMatrixFlag = 3; (* flag for identification of a small matrix *)
  43. SmallVectorFlag = 3; (* flag for identification of a small vector *)
  44. Size2Flag = 4; (* size = 2 *)
  45. Size3Flag = 5; (* size = 3 *)
  46. Size4Flag = 6; (* size = 4 *)
  47. Size5Flag = 7; (* size = 5 *)
  48. Size6Flag = 8; (* size = 6 *)
  49. Size7Flag = 9; (* size = 7 *)
  50. Size8Flag = 10; (* size = 8 *)
  51. Mat2x2 = SYSTEM.VAL(LONGINT,{SmallMatrixFlag,Size2Flag});
  52. Mat3x3 = SYSTEM.VAL(LONGINT,{SmallMatrixFlag,Size3Flag});
  53. Mat4x4 = SYSTEM.VAL(LONGINT,{SmallMatrixFlag,Size4Flag});
  54. Mat5x5 = SYSTEM.VAL(LONGINT,{SmallMatrixFlag,Size5Flag});
  55. Mat6x6 = SYSTEM.VAL(LONGINT,{SmallMatrixFlag,Size6Flag});
  56. Mat7x7 = SYSTEM.VAL(LONGINT,{SmallMatrixFlag,Size7Flag});
  57. Mat8x8 = SYSTEM.VAL(LONGINT,{SmallMatrixFlag,Size8Flag});
  58. Vec2 = SYSTEM.VAL(LONGINT,{SmallVectorFlag,Size2Flag});
  59. Vec3 = SYSTEM.VAL(LONGINT,{SmallVectorFlag,Size3Flag});
  60. Vec4 = SYSTEM.VAL(LONGINT,{SmallVectorFlag,Size4Flag});
  61. Vec5 = SYSTEM.VAL(LONGINT,{SmallVectorFlag,Size5Flag});
  62. Vec6 = SYSTEM.VAL(LONGINT,{SmallVectorFlag,Size6Flag});
  63. Vec7 = SYSTEM.VAL(LONGINT,{SmallVectorFlag,Size7Flag});
  64. Vec8 = SYSTEM.VAL(LONGINT,{SmallVectorFlag,Size8Flag});
  65. MatVec2x2 = SYSTEM.VAL(LONGINT,{SmallMatrixFlag,SmallVectorFlag,Size2Flag});
  66. MatVec3x3 = SYSTEM.VAL(LONGINT,{SmallMatrixFlag,SmallVectorFlag,Size3Flag});
  67. MatVec4x4 = SYSTEM.VAL(LONGINT,{SmallMatrixFlag,SmallVectorFlag,Size4Flag});
  68. MatVec5x5 = SYSTEM.VAL(LONGINT,{SmallMatrixFlag,SmallVectorFlag,Size5Flag});
  69. MatVec6x6 = SYSTEM.VAL(LONGINT,{SmallMatrixFlag,SmallVectorFlag,Size6Flag});
  70. MatVec7x7 = SYSTEM.VAL(LONGINT,{SmallMatrixFlag,SmallVectorFlag,Size7Flag});
  71. MatVec8x8 = SYSTEM.VAL(LONGINT,{SmallMatrixFlag,SmallVectorFlag,Size8Flag});
  72. SmallArrayMask = {SmallMatrixFlag,SmallVectorFlag,Size2Flag,Size3Flag,Size4Flag,Size5Flag,Size6Flag,Size7Flag,Size8Flag};
  73. TYPE
  74. FastMatMul* = PROCEDURE ( matrixA, matrixB, matrixC, IncA, StrideA, IncB, StrideB, IncC, StrideC, RowsA, ColsA, RowsB, ColsB: LONGINT ): BOOLEAN;
  75. TransposeP* = PROCEDURE ( ladr, dadr, lstride, linc, dstride, dinc, rows, cols: LONGINT );
  76. (* tensor shape descriptors, statically typed, maximal dimension of a tensor limited to 32 for the time being *)
  77. T0 = POINTER TO RECORD ptr: ANY; a: ARRAY MathLenOffset + 0* 8 OF CHAR END;
  78. T1 = POINTER TO RECORD ptr: ANY; a:ARRAY MathLenOffset + 1 * 8 OF CHAR END;
  79. T2 = POINTER TO RECORD ptr: ANY; a:ARRAY MathLenOffset + 2 * 8 OF CHAR END;
  80. T3 = POINTER TO RECORD ptr: ANY; a:ARRAY MathLenOffset + 3 * 8 OF CHAR END;
  81. T4 = POINTER TO RECORD ptr: ANY; a:ARRAY MathLenOffset + 4 * 8 OF CHAR END;
  82. T5 = POINTER TO RECORD ptr: ANY; a:ARRAY MathLenOffset + 5 * 8 OF CHAR END;
  83. T6 = POINTER TO RECORD ptr: ANY; a:ARRAY MathLenOffset + 6 * 8 OF CHAR END;
  84. T7 = POINTER TO RECORD ptr: ANY; a:ARRAY MathLenOffset + 7 * 8 OF CHAR END;
  85. T8 = POINTER TO RECORD ptr: ANY; a:ARRAY MathLenOffset + 8 * 8 OF CHAR END;
  86. T9 = POINTER TO RECORD ptr: ANY; a:ARRAY MathLenOffset + 9 * 8 OF CHAR END;
  87. T10 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 10 * 8 OF CHAR END;
  88. T11 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 11 * 8 OF CHAR END;
  89. T12 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 12 * 8 OF CHAR END;
  90. T13 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 13 * 8 OF CHAR END;
  91. T14 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 14 * 8 OF CHAR END;
  92. T15 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 15 * 8 OF CHAR END;
  93. T16 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 16 * 8 OF CHAR END;
  94. T17 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 17 * 8 OF CHAR END;
  95. T18 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 18 * 8 OF CHAR END;
  96. T19 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 19 * 8 OF CHAR END;
  97. T20 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 20 * 8 OF CHAR END;
  98. T21 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 21 * 8 OF CHAR END;
  99. T22 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 22 * 8 OF CHAR END;
  100. T23 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 23 * 8 OF CHAR END;
  101. T24 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 24 * 8 OF CHAR END;
  102. T25 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 25 * 8 OF CHAR END;
  103. T26 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 26 * 8 OF CHAR END;
  104. T27 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 27 * 8 OF CHAR END;
  105. T28 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 28 * 8 OF CHAR END;
  106. T29 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 29 * 8 OF CHAR END;
  107. T30 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 30 * 8 OF CHAR END;
  108. T31 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 31 * 8 OF CHAR END;
  109. T32 =POINTER TO RECORD ptr: ANY;a: ARRAY MathLenOffset + 32 * 8 OF CHAR END;
  110. (* used for optimizations of MatMul with small sizes (Alexey Morozov) *)
  111. SmallMatMul* = PROCEDURE(dadr, ladr, radr: LONGINT);
  112. VAR
  113. alloc*: LONGINT; (* statistics *)
  114. allocTemp*: LONGINT; (* statistics *)
  115. (* procedures that might be replaced by ASM methods *)
  116. loopSPAXAX*, loopSPARAR*: BinaryAASLoop;
  117. loopSPAZAZ, loopSPALZALZ: BinaryAASLoop;
  118. loopAddAXAX*, loopAddARAR*, loopAddAZAZ*, loopAddALZALZ*: BinaryAAALoop;
  119. loopMatMulAXAX*, loopMatMulARAR*: BinaryAASLoop;
  120. loopMatMulIncAXAX*, loopMatMulIncARAR*: BinaryAASLoop;
  121. loopMulAXSX*, loopMulARSR*, loopMulAZSZ*, loopMulALZSLZ*: BinaryASALoop;
  122. loopIncMulAXSX*, loopIncMulARSR*: BinaryASALoop;
  123. matMulX*, matMulR*: FastMatMul; matMulIncX*, matMulIncR*: FastMatMul;
  124. transpose4*: TransposeP; transpose8*: TransposeP;
  125. (* optimizations for small arrays (Alexey Morozov) *)
  126. matMulR2x2*: SmallMatMul;
  127. matMulR3x3*: SmallMatMul;
  128. matMulR4x4*: SmallMatMul;
  129. matVecMulR2x2*: SmallMatMul;
  130. matVecMulR3x3*: SmallMatMul;
  131. matVecMulR4x4*: SmallMatMul;
  132. matMulLR2x2*: SmallMatMul;
  133. matMulLR3x3*: SmallMatMul;
  134. matMulLR4x4*: SmallMatMul;
  135. matVecMulLR2x2*: SmallMatMul;
  136. matVecMulLR3x3*: SmallMatMul;
  137. matVecMulLR4x4*: SmallMatMul;
  138. (*
  139. TensorTypePool: ARRAY 32 OF TensorType;
  140. *)
  141. PROCEDURE SetDefaults*; (* set standard procedures *)
  142. BEGIN
  143. KernelLog.String( "ArrayBase: setting runtime library (semi-optimized) default methods." ); KernelLog.Ln; loopSPAXAX := SPAXAXLoop;
  144. loopSPARAR := SPARARLoop; loopAddAXAX := AddAXAXLoop;
  145. loopSPAZAZ := SPAZAZLoop; loopSPALZALZ := SPALZALZLoop;
  146. loopAddARAR := AddARARLoop; loopMatMulAXAX := MatMulAXAXLoop;
  147. loopAddAZAZ := AddAZAZLoop; loopAddALZALZ := AddALZALZLoop;
  148. loopMatMulIncAXAX := MatMulIncAXAXLoop;
  149. loopMatMulARAR := MatMulARARLoop; loopMulAXSX := MulAXSXLoop;
  150. loopIncMulAXSX := IncMulAXSXLoop;
  151. loopMatMulIncARAR := MatMulIncARARLoop;
  152. loopMulARSR := MulARSRLoop; loopIncMulARSR := IncMulARSRLoop;
  153. matMulX := NIL; matMulR := NIL; matMulIncX := NIL; matMulIncR := NIL;
  154. loopMulAZSZ := MulAZSZLoop;
  155. loopMulALZSLZ := MulALZSLZLoop;
  156. END SetDefaults;
  157. PROCEDURE Err(CONST s: ARRAY OF CHAR );
  158. BEGIN
  159. KernelLog.String( "Runtime Error: " ); KernelLog.String( s ); KernelLog.Ln; HALT( 100 );
  160. END Err;
  161. (* get increment of dimension dim *)
  162. PROCEDURE GetIncr(base,dim: Address): LONGINT;
  163. VAR result: LONGINT;
  164. BEGIN
  165. SYSTEM.GET(base+MathIncrOffset+8*dim,result);
  166. RETURN result
  167. END GetIncr;
  168. (* set increment of dimension dim *)
  169. PROCEDURE PutInc(base,dim,val: Address);
  170. BEGIN
  171. SYSTEM.PUT(base+MathIncrOffset+8*dim,val)
  172. END PutInc;
  173. (* get length of dimension dim *)
  174. PROCEDURE GetLen(base,dim: Address): LONGINT;
  175. VAR result: LONGINT;
  176. BEGIN
  177. SYSTEM.GET(base+MathLenOffset+8*dim,result);
  178. RETURN result
  179. END GetLen;
  180. (* set length of dimension dim *)
  181. PROCEDURE PutLen(base,dim,val: Address);
  182. BEGIN
  183. SYSTEM.PUT(base+MathLenOffset+8*dim,val)
  184. END PutLen;
  185. (* get data address *)
  186. PROCEDURE GetAdr(base: Address): Address;
  187. VAR result: LONGINT;
  188. BEGIN
  189. SYSTEM.GET(base+MathAdrOffset,result);
  190. RETURN result
  191. END GetAdr;
  192. (* set data address *)
  193. PROCEDURE PutAdr(base,value: Address);
  194. BEGIN
  195. SYSTEM.PUT(base+MathAdrOffset,value)
  196. END PutAdr;
  197. (* get data base pointer (GC protection) *)
  198. PROCEDURE GetPtr(base: Address): Address;
  199. VAR result: LONGINT;
  200. BEGIN
  201. SYSTEM.GET(base+MathPtrOffset,result);
  202. RETURN result
  203. END GetPtr;
  204. (* set data base pointer (GC protection) *)
  205. PROCEDURE PutPtr(base,value: Address);
  206. BEGIN
  207. SYSTEM.PUT(base+MathPtrOffset,value)
  208. END PutPtr;
  209. PROCEDURE GetSize( base: Address ): LONGINT;
  210. VAR dim: LONGINT;
  211. BEGIN
  212. IF base = 0 THEN RETURN 0 ELSE SYSTEM.GET( base + MathElementSizeOffset, dim ); RETURN dim; END;
  213. END GetSize;
  214. PROCEDURE PutSize( base: Address; dim: LONGINT );
  215. BEGIN
  216. SYSTEM.PUT( base + MathElementSizeOffset, dim );
  217. END PutSize;
  218. PROCEDURE GetDim( base: Address ): LONGINT;
  219. VAR dim: LONGINT;
  220. BEGIN
  221. IF base = 0 THEN RETURN 0 ELSE SYSTEM.GET( base + MathDimOffset, dim ); RETURN dim; END;
  222. END GetDim;
  223. PROCEDURE GetFlags( base: Address ): SET;
  224. VAR set: SET;
  225. BEGIN
  226. SYSTEM.GET( base + MathFlagsOffset, set ); RETURN set;
  227. END GetFlags;
  228. PROCEDURE PutDim( base: Address; dim: LONGINT );
  229. BEGIN
  230. SYSTEM.PUT( base + MathDimOffset, dim );
  231. END PutDim;
  232. PROCEDURE PutFlags( base: Address; flags: SET );
  233. BEGIN
  234. SYSTEM.PUT( base + MathFlagsOffset, flags );
  235. END PutFlags;
  236. (* report geometry of array passed via address s *)
  237. PROCEDURE Report(CONST name: ARRAY OF CHAR; s: LONGINT );
  238. VAR i: LONGINT; dim: LONGINT;
  239. PROCEDURE Set( s: SET );
  240. VAR i: LONGINT; first: BOOLEAN;
  241. BEGIN
  242. KernelLog.String( "{" ); first := TRUE;
  243. FOR i := 31 TO 0 BY -1 DO
  244. IF i IN s THEN
  245. IF ~first THEN KernelLog.String( "," ); ELSE first := FALSE END;
  246. KernelLog.Int( i, 1 );
  247. END;
  248. END;
  249. KernelLog.String( "}" );
  250. END Set;
  251. BEGIN
  252. KernelLog.String( name );
  253. IF s = 0 THEN KernelLog.String( " : NIL " ); KernelLog.Ln;
  254. ELSE
  255. KernelLog.String( " at adr " ); KernelLog.Int( s, 1 ); KernelLog.String( "; ptr= " );
  256. KernelLog.Int( GetPtr( s ), 1 ); KernelLog.String( "; adr= " );
  257. KernelLog.Int( GetAdr( s ), 1 ); KernelLog.String( "; dim=" );
  258. KernelLog.Int( GetDim( s ), 1 ); KernelLog.String( "; flags=" ); Set( GetFlags( s ) );
  259. KernelLog.Ln; dim := GetDim( s );
  260. IF dim > 32 THEN dim := 0 END;
  261. FOR i := 0 TO dim - 1 DO
  262. KernelLog.String( "dim (rev)=" ); KernelLog.Int( i, 1 ); KernelLog.String( ", len=" );
  263. KernelLog.Int( GetLen( s, i ), 1 ); KernelLog.String( ", inc=" );
  264. KernelLog.Int( GetIncr( s, i ), 1 ); KernelLog.Ln;
  265. END;
  266. (*
  267. FindPattern1( s, dim, ldim, len, inc ); KernelLog.String( "increment: " );
  268. KernelLog.Int( inc, 10 ); KernelLog.Ln; KernelLog.String( "longest dim:" ); KernelLog.Int( ldim, 10 );
  269. KernelLog.Ln; KernelLog.String( "len:" ); KernelLog.Int( len, 10 ); KernelLog.Ln;
  270. *)
  271. END;
  272. END Report;
  273. PROCEDURE GetArrayDesc( dim: LONGINT ): ANY;
  274. VAR (* t: TensorType; *) ptr: ANY;
  275. p0: T0;
  276. p1: T1; p2: T2; p3: T3; p4: T4; p5: T5; p6: T6; p7: T7; p8: T8; p9: T9;
  277. p10: T10; p11: T11; p12: T12; p13: T13; p14: T14; p15: T15; p16: T16; p17: T17; p18: T18; p19: T19;
  278. p20: T20; p21: T21; p22: T22; p23: T23; p24: T24; p25: T25; p26: T26; p27: T27; p28: T28; p29: T29;
  279. p30: T30; p31: T31; p32: T32;
  280. BEGIN
  281. (*
  282. IF dim < LEN( TensorTypePool ) THEN t := TensorTypePool[dim]
  283. ELSE NewTensorType( dim, t );
  284. END;
  285. Heaps.NewRec( ptr, t.tag );
  286. *)
  287. CASE dim OF
  288. |0: NEW(p0); ptr := p0;
  289. |1:NEW(p1); ptr := p1;
  290. |2:NEW(p2); ptr := p2;
  291. |3:NEW(p3); ptr := p3;
  292. |4:NEW(p4); ptr := p4;
  293. |5:NEW(p5); ptr := p5;
  294. |6:NEW(p6); ptr := p6;
  295. |7:NEW(p7); ptr := p7;
  296. |8:NEW(p8); ptr := p8;
  297. |9:NEW(p9); ptr := p9;
  298. |10:NEW(p10); ptr := p10;
  299. |11:NEW(p11); ptr := p11;
  300. |12:NEW(p12); ptr := p12;
  301. |13:NEW(p13); ptr := p13;
  302. |14:NEW(p14); ptr := p14;
  303. |15:NEW(p15); ptr := p15;
  304. |16:NEW(p16); ptr := p16;
  305. |17:NEW(p17); ptr := p17;
  306. |18:NEW(p18); ptr := p18;
  307. |19:NEW(p19); ptr := p19;
  308. |20:NEW(p20); ptr := p20;
  309. |21:NEW(p21); ptr := p21;
  310. |22:NEW(p22); ptr := p22;
  311. |23:NEW(p23); ptr := p23;
  312. |24:NEW(p24); ptr := p24;
  313. |25:NEW(p25); ptr := p25;
  314. |26:NEW(p26); ptr := p26;
  315. |27:NEW(p27); ptr := p27;
  316. |28:NEW(p28); ptr := p28;
  317. |29:NEW(p29); ptr := p29;
  318. |30:NEW(p30); ptr := p30;
  319. |31:NEW(p31); ptr := p31;
  320. |32:NEW(p32); ptr := p32;
  321. END;
  322. PutDim( SYSTEM.VAL( LONGINT, ptr ), dim );
  323. PutFlags( SYSTEM.VAL( LONGINT, ptr ), {TensorFlag} ); RETURN ptr;
  324. END GetArrayDesc;
  325. PROCEDURE Halt( code: LONGINT; left, right, dest: LONGINT );
  326. VAR reason: ARRAY 64 OF CHAR;
  327. BEGIN
  328. IF left # 0 THEN Report( "Source operand ", left ) END;
  329. IF right # 0 THEN Report( "Source operand 2 ", right ) END;
  330. IF dest # 0 THEN Report( "Dest operand ", dest ) END;
  331. IF code = GeometryMismatch THEN reason := "Geometry mismatch";
  332. ELSIF code = DimensionMismatch THEN reason := "Dimension mismatch";
  333. ELSIF code = AllocationForbidden THEN reason := "Allocation forbidden for dest";
  334. ELSE reason := "unknown";
  335. END;
  336. KernelLog.String( "ArrayBase Halt. Reason= " ); KernelLog.String( reason ); KernelLog.Ln;
  337. HALT( 400 );
  338. END Halt;
  339. (** patterns ********************************************************************)
  340. (* find the largest block with a regular pattern of the form offset+{i*li: 0<=i<len}. d is dimension applying to the resulting loop *)
  341. PROCEDURE FindPattern1( left, dim: Address; VAR d, len, linc: LONGINT );
  342. BEGIN
  343. d := dim - 1; len := GetLen( left, d );
  344. WHILE (len = 1) & (d > 0) DO DEC( d ); len := GetLen( left, d );
  345. END; (* skip lower dimensions with len=1, in most cases d=0 *)
  346. linc := GetIncr( left, d ); DEC( d );
  347. WHILE (d >= 0) & (GetIncr( left, d ) = len * linc) DO
  348. len := len * GetLen( left, d ); DEC( d );
  349. END; (* find dimension where pattern does not work any more *)
  350. INC( d );
  351. IF debug THEN
  352. KernelLog.String( "FindPattern1: " ); KernelLog.Int( len, 10 ); KernelLog.Int( linc, 10 );
  353. KernelLog.Ln;
  354. END;
  355. END FindPattern1;
  356. (* find the largest block with a regular pattern of the form offset+{i*linc: 0<=i<len} for two arrays simultaneously. d is dimension applying to the resulting loop *)
  357. PROCEDURE FindPattern2( left, right: Address; dim: LONGINT;
  358. VAR d, len, linc, ri: LONGINT );
  359. (* geometric precondition: lengths must coincide *)
  360. BEGIN
  361. d := dim - 1; len := GetLen( left, d ); ASSERT( len = GetLen( right, d ) );
  362. WHILE (len = 1) & (d > 0) DO DEC( d ); len := GetLen( left, d ); END;
  363. linc := GetIncr( left, d ); ri := GetIncr( right, d ); DEC( d );
  364. WHILE (d >= 0) & (GetIncr( left, d ) = len * linc) & (GetIncr( right, d ) = len * ri) DO
  365. len := len * GetLen( left, d ); DEC( d );
  366. END;
  367. INC( d );
  368. IF debug THEN
  369. KernelLog.String( "FindPattern2: " ); KernelLog.Int( d, 10 ); KernelLog.Int( len, 10 );
  370. KernelLog.Int( linc, 10 ); KernelLog.Int( ri, 10 ); KernelLog.Ln;
  371. END;
  372. END FindPattern2;
  373. (* find the largest block with a regular pattern of the form offset+{i*linc: 0<=i<len} for three arrays simultaneously. d is dimension applying to the resulting loop *)
  374. PROCEDURE FindPattern3( left, right, dest: Address; dim: LONGINT;
  375. VAR d, len, linc, ri, di: LONGINT );
  376. (* geometric precondition: lengths must coincide *)
  377. BEGIN
  378. d := dim - 1; len := GetLen( left, d );
  379. WHILE (len = 1) & (d > 0) DO DEC( d ); len := GetLen( left, d );
  380. END;
  381. linc := GetIncr( left, d ); ri := GetIncr( right, d ); di := GetIncr( dest, d );
  382. DEC( d );
  383. WHILE (d >= 0) & (GetIncr( left, d ) = len * linc) &
  384. (GetIncr( right, d ) = len * ri) & (GetIncr( dest, d ) = len * di) DO
  385. len := len * GetLen( left, d ); DEC( d );
  386. END;
  387. INC( d );
  388. IF debug THEN
  389. KernelLog.String( "FindPattern3: " ); KernelLog.Int( len, 10 ); KernelLog.Int( linc, 10 );
  390. KernelLog.Int( ri, 10 ); KernelLog.Int( di, 10 ); KernelLog.Ln;
  391. END;
  392. END FindPattern3;
  393. PROCEDURE Reverse( src: Address; dim: LONGINT );
  394. VAR d, sl, sr: LONGINT;
  395. BEGIN
  396. d := 0; sl := GetAdr( src );
  397. WHILE (d < dim) DO
  398. INC( sr, GetIncr( src, d ) * (GetLen( src, d ) - 1) );
  399. PutInc( src, d, -GetIncr( src, d ) ); INC( d );
  400. END;
  401. PutAdr( src, sl + sr );
  402. END Reverse;
  403. (* check if forward copy may be performed *)
  404. PROCEDURE CopyUpCompatible( dest, src: Address; VAR modes: SET );
  405. VAR d, sl, sr, dl, dr: LONGINT; dim: LONGINT;
  406. (* precondition: len(src,i)=len(dest,i) *)
  407. (* for forward src -> dest copy compatibility src must not be overwritten before src is copied.
  408. Sufficient (but not necessary) conditions:
  409. 1.) no overlap: src right < dest left or src left > dest right or
  410. 2.) same geometry and src left >= dest left
  411. same geometry if ginc(s)=ginc(d) with
  412. ginc(s)=inc(s,0)*len(s,0)+inc(s,1)*len(s,1)+...
  413. ginc(d)=inc(d,0)*len(d,0)+inc(d,1)*len(d,1)+...
  414. *)
  415. BEGIN
  416. d := 0; sl := GetAdr( src ); sr := sl; dl := GetAdr( dest ); dr := dl;
  417. dim := GetDim( src );
  418. WHILE (d < dim) DO
  419. INC( sr, GetIncr( src, d ) * (GetLen( src, d ) - 1) );
  420. INC( dr, GetIncr( dest, d ) * (GetLen( dest, d ) - 1) ); INC( d );
  421. END;
  422. IF (sr < dl) OR (sl > dr) THEN (* no overlap, both directions possible *)
  423. ELSIF ((sr - sl) = (dr - dl)) THEN
  424. IF (sl = dl) THEN (* same memory region, both directions possible *)
  425. ELSIF (sl > dl) THEN
  426. EXCL( modes, down ) (* only copy up possible *)
  427. ELSE (*sl < dl*)
  428. EXCL( modes, up ) (* only copy down possible *)
  429. END;
  430. ELSE
  431. modes := modes - {down, up}; (* neither nor *)
  432. END;
  433. END CopyUpCompatible;
  434. PROCEDURE AllocateTemp( VAR dest: Address; src: Address;
  435. Size: LONGINT ): ANY;
  436. (* allocate a temporary block containing both descriptor and data *)
  437. VAR d, len, i: LONGINT; p: ANY; dim: LONGINT;
  438. BEGIN
  439. IF statistics THEN INC( allocTemp ) END;
  440. d := 0; len := Size; dim := GetDim( src );
  441. WHILE (d < dim) DO len := len * GetLen( src, d ); INC( d ); END;
  442. INC( len, 2 * dim * SIZEOF( LONGINT ) + MathLenOffset ); SYSTEM.NEW( p, len );
  443. dest := SYSTEM.VAL( LONGINT, p );
  444. PutAdr( dest, dest + dim * 2 * SIZEOF( LONGINT ) + MathLenOffset );
  445. PutPtr( dest, dest ); PutDim( dest, dim ); len := Size;
  446. FOR i := 0 TO dim - 1 DO
  447. PutInc( dest, i, len ); PutLen( dest, i, GetLen( src, i ) );
  448. len := len * GetLen( src, i );
  449. END;
  450. (* Report("allocdest",dest,dim); *)
  451. RETURN p;
  452. END AllocateTemp;
  453. (*** procedures to traverse arrays and apply operators *)
  454. (** apply unary operator to array: array SHORTINT -> array SHORTINT *)
  455. PROCEDURE ApplyGenericUnaryAAOpS( d, l: Address; elementSize: LONGINT; Loop: GenericUnaryAALoopS; op: PROCEDURE(x: SHORTINT): SHORTINT );
  456. VAR loopd, looplen, loopli, loopdi: LONGINT; p: ANY; glen: LONGINT;
  457. origdest: LONGINT; modes: SET;
  458. dest, left, dim: LONGINT;
  459. PROCEDURE Traverse( dim: LONGINT; ladr, dadr: Address );
  460. VAR len: LONGINT; linc, dinc: LONGINT;
  461. BEGIN
  462. IF dim = loopd THEN
  463. Loop( ladr, dadr, loopli, loopdi, looplen, op );
  464. IF conservative THEN INC( glen, looplen ) END;
  465. ELSE
  466. len := GetLen( left, dim ); linc := GetIncr( left, dim );
  467. dinc := GetIncr( dest, dim ); INC( dim );
  468. WHILE (len > 0) DO
  469. Traverse( dim, ladr, dadr ); INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  470. END;
  471. END;
  472. END Traverse;
  473. BEGIN
  474. SYSTEM.GET( d, dest ); SYSTEM.GET( l, left ); dim := GetDim( left );
  475. origdest := 0; modes := {up, down};
  476. (* allocate destination, if necessary *)
  477. p := AllocateSame( dest, left, elementSize );
  478. IF p = NIL THEN
  479. CopyUpCompatible( dest, left, modes );
  480. IF up IN modes THEN (* nothing to be done *)
  481. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  482. ELSE origdest := dest; p := AllocateTemp( dest, origdest, elementSize );
  483. END;
  484. END;
  485. (* allocate destination, if necessary *)
  486. (*IF GetAdr( dest ) = -1 THEN p := Allocate( left, dest, dim, elementSize )
  487. ELSIF CheckGeometry( left, dest, dim )
  488. END; *)
  489. IF debug THEN Report( "AA: left", left ); Report( "AA: dest", dest ); END;
  490. (* check pattern: longest piece that can be done with a loop *)
  491. FindPattern2( left, dest, dim, loopd, looplen, loopli, loopdi );
  492. Traverse( 0, GetAdr( left ), GetAdr( dest ) );
  493. IF up IN modes THEN (* nothing to be done *)
  494. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  495. ELSE CopyContent( origdest, dest, elementSize );
  496. END;
  497. SYSTEM.PUT( d, dest );
  498. END ApplyGenericUnaryAAOpS;
  499. (** apply unary operator to array: array INTEGER -> array INTEGER *)
  500. PROCEDURE ApplyGenericUnaryAAOpI( d, l: Address; elementSize: LONGINT; Loop: GenericUnaryAALoopI; op: PROCEDURE(x: INTEGER): INTEGER );
  501. VAR loopd, looplen, loopli, loopdi: LONGINT; p: ANY; glen: LONGINT;
  502. origdest: LONGINT; modes: SET;
  503. dest, left, dim: LONGINT;
  504. PROCEDURE Traverse( dim: LONGINT; ladr, dadr: Address );
  505. VAR len: LONGINT; linc, dinc: LONGINT;
  506. BEGIN
  507. IF dim = loopd THEN
  508. Loop( ladr, dadr, loopli, loopdi, looplen, op );
  509. IF conservative THEN INC( glen, looplen ) END;
  510. ELSE
  511. len := GetLen( left, dim ); linc := GetIncr( left, dim );
  512. dinc := GetIncr( dest, dim ); INC( dim );
  513. WHILE (len > 0) DO
  514. Traverse( dim, ladr, dadr ); INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  515. END;
  516. END;
  517. END Traverse;
  518. BEGIN
  519. SYSTEM.GET( d, dest ); SYSTEM.GET( l, left ); dim := GetDim( left );
  520. origdest := 0; modes := {up, down};
  521. (* allocate destination, if necessary *)
  522. p := AllocateSame( dest, left, elementSize );
  523. IF p = NIL THEN
  524. CopyUpCompatible( dest, left, modes );
  525. IF up IN modes THEN (* nothing to be done *)
  526. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  527. ELSE origdest := dest; p := AllocateTemp( dest, origdest, elementSize );
  528. END;
  529. END;
  530. (* allocate destination, if necessary *)
  531. (*IF GetAdr( dest ) = -1 THEN p := Allocate( left, dest, dim, elementSize )
  532. ELSIF CheckGeometry( left, dest, dim )
  533. END; *)
  534. IF debug THEN Report( "AA: left", left ); Report( "AA: dest", dest ); END;
  535. (* check pattern: longest piece that can be done with a loop *)
  536. FindPattern2( left, dest, dim, loopd, looplen, loopli, loopdi );
  537. Traverse( 0, GetAdr( left ), GetAdr( dest ) );
  538. IF up IN modes THEN (* nothing to be done *)
  539. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  540. ELSE CopyContent( origdest, dest, elementSize );
  541. END;
  542. SYSTEM.PUT( d, dest );
  543. END ApplyGenericUnaryAAOpI;
  544. (** apply unary operator to array: array LONGINT -> array LONGINT *)
  545. PROCEDURE ApplyGenericUnaryAAOpL( d, l: Address; elementSize: LONGINT; Loop: GenericUnaryAALoopL; op: PROCEDURE(x: LONGINT): LONGINT );
  546. VAR loopd, looplen, loopli, loopdi: LONGINT; p: ANY; glen: LONGINT;
  547. origdest: LONGINT; modes: SET;
  548. dest, left, dim: LONGINT;
  549. PROCEDURE Traverse( dim: LONGINT; ladr, dadr: Address );
  550. VAR len: LONGINT; linc, dinc: LONGINT;
  551. BEGIN
  552. IF dim = loopd THEN
  553. Loop( ladr, dadr, loopli, loopdi, looplen, op );
  554. IF conservative THEN INC( glen, looplen ) END;
  555. ELSE
  556. len := GetLen( left, dim ); linc := GetIncr( left, dim );
  557. dinc := GetIncr( dest, dim ); INC( dim );
  558. WHILE (len > 0) DO
  559. Traverse( dim, ladr, dadr ); INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  560. END;
  561. END;
  562. END Traverse;
  563. BEGIN
  564. SYSTEM.GET( d, dest ); SYSTEM.GET( l, left ); dim := GetDim( left );
  565. origdest := 0; modes := {up, down};
  566. (* allocate destination, if necessary *)
  567. p := AllocateSame( dest, left, elementSize );
  568. IF p = NIL THEN
  569. CopyUpCompatible( dest, left, modes );
  570. IF up IN modes THEN (* nothing to be done *)
  571. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  572. ELSE origdest := dest; p := AllocateTemp( dest, origdest, elementSize );
  573. END;
  574. END;
  575. (* allocate destination, if necessary *)
  576. (*IF GetAdr( dest ) = -1 THEN p := Allocate( left, dest, dim, elementSize )
  577. ELSIF CheckGeometry( left, dest, dim )
  578. END; *)
  579. IF debug THEN Report( "AA: left", left ); Report( "AA: dest", dest ); END;
  580. (* check pattern: longest piece that can be done with a loop *)
  581. FindPattern2( left, dest, dim, loopd, looplen, loopli, loopdi );
  582. Traverse( 0, GetAdr( left ), GetAdr( dest ) );
  583. IF up IN modes THEN (* nothing to be done *)
  584. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  585. ELSE CopyContent( origdest, dest, elementSize );
  586. END;
  587. SYSTEM.PUT( d, dest );
  588. END ApplyGenericUnaryAAOpL;
  589. (** apply unary operator to array: array HUGEINT -> array HUGEINT *)
  590. PROCEDURE ApplyGenericUnaryAAOpH( d, l: Address; elementSize: LONGINT; Loop: GenericUnaryAALoopH; op: PROCEDURE(x: HUGEINT): HUGEINT );
  591. VAR loopd, looplen, loopli, loopdi: LONGINT; p: ANY; glen: LONGINT;
  592. origdest: LONGINT; modes: SET;
  593. VAR dest, left, dim: LONGINT;
  594. PROCEDURE Traverse( dim: LONGINT; ladr, dadr: Address );
  595. VAR len: LONGINT; linc, dinc: LONGINT;
  596. BEGIN
  597. IF dim = loopd THEN
  598. Loop( ladr, dadr, loopli, loopdi, looplen, op );
  599. IF conservative THEN INC( glen, looplen ) END;
  600. ELSE
  601. len := GetLen( left, dim ); linc := GetIncr( left, dim );
  602. dinc := GetIncr( dest, dim ); INC( dim );
  603. WHILE (len > 0) DO
  604. Traverse( dim, ladr, dadr ); INC( ladr, linc ); INC( dadr, dinc );
  605. DEC( len );
  606. END;
  607. END;
  608. END Traverse;
  609. BEGIN
  610. SYSTEM.GET( d, dest ); SYSTEM.GET( l, left ); dim := GetDim( left );
  611. origdest := 0; modes := {up, down};
  612. (* allocate destination, if necessary *)
  613. p := AllocateSame( dest, left, elementSize );
  614. IF p = NIL THEN
  615. CopyUpCompatible( dest, left, modes );
  616. IF up IN modes THEN (* nothing to be done *)
  617. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  618. ELSE origdest := dest; p := AllocateTemp( dest, origdest, elementSize );
  619. END;
  620. END;
  621. (*
  622. (* allocate destination, if necessary *)
  623. IF GetAdr( dest ) = -1 THEN p := Allocate( left, dest, dim, elementSize )
  624. ELSIF CheckGeometry( left, dest, dim )
  625. END;
  626. *)
  627. IF debug THEN Report( "AA: left", left ); Report( "AA: dest", dest ); END;
  628. (* check pattern: longest piece that can be done with a loop *)
  629. FindPattern2( left, dest, dim, loopd, looplen, loopli, loopdi );
  630. Traverse( 0, GetAdr( left ), GetAdr( dest ) );
  631. IF up IN modes THEN (* nothing to be done *)
  632. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  633. ELSE CopyContent( origdest, dest, elementSize );
  634. END;
  635. SYSTEM.PUT( d, dest );
  636. END ApplyGenericUnaryAAOpH;
  637. (** apply unary operator to array: array REAL -> array REAL *)
  638. PROCEDURE ApplyGenericUnaryAAOpR( d, l: Address; elementSize: LONGINT; Loop: GenericUnaryAALoopR; op: PROCEDURE(x: REAL): REAL );
  639. VAR loopd, looplen, loopli, loopdi: LONGINT; p: ANY; glen: LONGINT;
  640. origdest: LONGINT; modes: SET;
  641. dest, left, dim: LONGINT;
  642. PROCEDURE Traverse( dim: LONGINT; ladr, dadr: Address );
  643. VAR len: LONGINT; linc, dinc: LONGINT;
  644. BEGIN
  645. IF dim = loopd THEN
  646. Loop( ladr, dadr, loopli, loopdi, looplen, op );
  647. IF conservative THEN INC( glen, looplen ) END;
  648. ELSE
  649. len := GetLen( left, dim ); linc := GetIncr( left, dim );
  650. dinc := GetIncr( dest, dim ); INC( dim );
  651. WHILE (len > 0) DO
  652. Traverse( dim, ladr, dadr ); INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  653. END;
  654. END;
  655. END Traverse;
  656. BEGIN
  657. SYSTEM.GET( d, dest ); SYSTEM.GET( l, left ); dim := GetDim( left );
  658. origdest := 0; modes := {up, down};
  659. (* allocate destination, if necessary *)
  660. p := AllocateSame( dest, left, elementSize );
  661. IF p = NIL THEN
  662. CopyUpCompatible( dest, left, modes );
  663. IF up IN modes THEN (* nothing to be done *)
  664. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  665. ELSE origdest := dest; p := AllocateTemp( dest, origdest, elementSize );
  666. END;
  667. END;
  668. (* allocate destination, if necessary *)
  669. (*IF GetAdr( dest ) = -1 THEN p := Allocate( left, dest, dim, elementSize )
  670. ELSIF CheckGeometry( left, dest, dim )
  671. END; *)
  672. IF debug THEN Report( "AA: left", left ); Report( "AA: dest", dest ); END;
  673. (* check pattern: longest piece that can be done with a loop *)
  674. FindPattern2( left, dest, dim, loopd, looplen, loopli, loopdi );
  675. Traverse( 0, GetAdr( left ), GetAdr( dest ) );
  676. IF up IN modes THEN (* nothing to be done *)
  677. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  678. ELSE CopyContent( origdest, dest, elementSize );
  679. END;
  680. SYSTEM.PUT( d, dest );
  681. END ApplyGenericUnaryAAOpR;
  682. (** apply unary operator to array: array LONGREAL -> array LONGREAL *)
  683. PROCEDURE ApplyGenericUnaryAAOpX( d, l: Address; elementSize: LONGINT; Loop: GenericUnaryAALoopX; op: PROCEDURE(x: LONGREAL): LONGREAL );
  684. VAR loopd, looplen, loopli, loopdi: LONGINT; p: ANY; glen: LONGINT;
  685. origdest: LONGINT; modes: SET;
  686. VAR dest, left, dim: LONGINT;
  687. PROCEDURE Traverse( dim: LONGINT; ladr, dadr: Address );
  688. VAR len: LONGINT; linc, dinc: LONGINT;
  689. BEGIN
  690. IF dim = loopd THEN
  691. Loop( ladr, dadr, loopli, loopdi, looplen, op );
  692. IF conservative THEN INC( glen, looplen ) END;
  693. ELSE
  694. len := GetLen( left, dim ); linc := GetIncr( left, dim );
  695. dinc := GetIncr( dest, dim ); INC( dim );
  696. WHILE (len > 0) DO
  697. Traverse( dim, ladr, dadr ); INC( ladr, linc ); INC( dadr, dinc );
  698. DEC( len );
  699. END;
  700. END;
  701. END Traverse;
  702. BEGIN
  703. SYSTEM.GET( d, dest ); SYSTEM.GET( l, left ); dim := GetDim( left );
  704. origdest := 0; modes := {up, down};
  705. (* allocate destination, if necessary *)
  706. p := AllocateSame( dest, left, elementSize );
  707. IF p = NIL THEN
  708. CopyUpCompatible( dest, left, modes );
  709. IF up IN modes THEN (* nothing to be done *)
  710. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  711. ELSE origdest := dest; p := AllocateTemp( dest, origdest, elementSize );
  712. END;
  713. END;
  714. (*
  715. (* allocate destination, if necessary *)
  716. IF GetAdr( dest ) = -1 THEN p := Allocate( left, dest, dim, elementSize )
  717. ELSIF CheckGeometry( left, dest, dim )
  718. END;
  719. *)
  720. IF debug THEN Report( "AA: left", left ); Report( "AA: dest", dest ); END;
  721. (* check pattern: longest piece that can be done with a loop *)
  722. FindPattern2( left, dest, dim, loopd, looplen, loopli, loopdi );
  723. Traverse( 0, GetAdr( left ), GetAdr( dest ) );
  724. IF up IN modes THEN (* nothing to be done *)
  725. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  726. ELSE CopyContent( origdest, dest, elementSize );
  727. END;
  728. SYSTEM.PUT( d, dest );
  729. END ApplyGenericUnaryAAOpX;
  730. (** apply unary operator to array: array COMPLEX -> array COMPLEX *)
  731. PROCEDURE ApplyGenericUnaryAAOpZ( d, l: Address; elementSize: LONGINT; Loop: GenericUnaryAALoopZ; op: PROCEDURE(x: COMPLEX): COMPLEX );
  732. VAR loopd, looplen, loopli, loopdi: LONGINT; p: ANY; glen: LONGINT;
  733. origdest: LONGINT; modes: SET;
  734. VAR dest, left, dim: LONGINT;
  735. PROCEDURE Traverse( dim: LONGINT; ladr, dadr: Address );
  736. VAR len: LONGINT; linc, dinc: LONGINT;
  737. BEGIN
  738. IF dim = loopd THEN
  739. Loop( ladr, dadr, loopli, loopdi, looplen, op );
  740. IF conservative THEN INC( glen, looplen ) END;
  741. ELSE
  742. len := GetLen( left, dim ); linc := GetIncr( left, dim );
  743. dinc := GetIncr( dest, dim ); INC( dim );
  744. WHILE (len > 0) DO
  745. Traverse( dim, ladr, dadr ); INC( ladr, linc ); INC( dadr, dinc );
  746. DEC( len );
  747. END;
  748. END;
  749. END Traverse;
  750. BEGIN
  751. SYSTEM.GET( d, dest ); SYSTEM.GET( l, left ); dim := GetDim( left );
  752. origdest := 0; modes := {up, down};
  753. (* allocate destination, if necessary *)
  754. p := AllocateSame( dest, left, elementSize );
  755. IF p = NIL THEN
  756. CopyUpCompatible( dest, left, modes );
  757. IF up IN modes THEN (* nothing to be done *)
  758. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  759. ELSE origdest := dest; p := AllocateTemp( dest, origdest, elementSize );
  760. END;
  761. END;
  762. (*
  763. (* allocate destination, if necessary *)
  764. IF GetAdr( dest ) = -1 THEN p := Allocate( left, dest, dim, elementSize )
  765. ELSIF CheckGeometry( left, dest, dim )
  766. END;
  767. *)
  768. IF debug THEN Report( "AA: left", left ); Report( "AA: dest", dest ); END;
  769. (* check pattern: longest piece that can be done with a loop *)
  770. FindPattern2( left, dest, dim, loopd, looplen, loopli, loopdi );
  771. Traverse( 0, GetAdr( left ), GetAdr( dest ) );
  772. IF up IN modes THEN (* nothing to be done *)
  773. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  774. ELSE CopyContent( origdest, dest, elementSize );
  775. END;
  776. SYSTEM.PUT( d, dest );
  777. END ApplyGenericUnaryAAOpZ;
  778. (** apply unary operator to array: array LONGCOMPLEX -> array LONGCOMPLEX *)
  779. PROCEDURE ApplyGenericUnaryAAOpLZ( d, l: Address; elementSize: LONGINT; Loop: GenericUnaryAALoopLZ; op: PROCEDURE(x: LONGCOMPLEX): LONGCOMPLEX );
  780. VAR loopd, looplen, loopli, loopdi: LONGINT; p: ANY; glen: LONGINT;
  781. origdest: LONGINT; modes: SET;
  782. VAR dest, left, dim: LONGINT;
  783. PROCEDURE Traverse( dim: LONGINT; ladr, dadr: Address );
  784. VAR len: LONGINT; linc, dinc: LONGINT;
  785. BEGIN
  786. IF dim = loopd THEN
  787. Loop( ladr, dadr, loopli, loopdi, looplen, op );
  788. IF conservative THEN INC( glen, looplen ) END;
  789. ELSE
  790. len := GetLen( left, dim ); linc := GetIncr( left, dim );
  791. dinc := GetIncr( dest, dim ); INC( dim );
  792. WHILE (len > 0) DO
  793. Traverse( dim, ladr, dadr ); INC( ladr, linc ); INC( dadr, dinc );
  794. DEC( len );
  795. END;
  796. END;
  797. END Traverse;
  798. BEGIN
  799. SYSTEM.GET( d, dest ); SYSTEM.GET( l, left ); dim := GetDim( left );
  800. origdest := 0; modes := {up, down};
  801. (* allocate destination, if necessary *)
  802. p := AllocateSame( dest, left, elementSize );
  803. IF p = NIL THEN
  804. CopyUpCompatible( dest, left, modes );
  805. IF up IN modes THEN (* nothing to be done *)
  806. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  807. ELSE origdest := dest; p := AllocateTemp( dest, origdest, elementSize );
  808. END;
  809. END;
  810. (*
  811. (* allocate destination, if necessary *)
  812. IF GetAdr( dest ) = -1 THEN p := Allocate( left, dest, dim, elementSize )
  813. ELSIF CheckGeometry( left, dest, dim )
  814. END;
  815. *)
  816. IF debug THEN Report( "AA: left", left ); Report( "AA: dest", dest ); END;
  817. (* check pattern: longest piece that can be done with a loop *)
  818. FindPattern2( left, dest, dim, loopd, looplen, loopli, loopdi );
  819. Traverse( 0, GetAdr( left ), GetAdr( dest ) );
  820. IF up IN modes THEN (* nothing to be done *)
  821. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  822. ELSE CopyContent( origdest, dest, elementSize );
  823. END;
  824. SYSTEM.PUT( d, dest );
  825. END ApplyGenericUnaryAAOpLZ;
  826. (** apply unary operator to array: array -> array *)
  827. PROCEDURE ApplyUnaryAAOp( d, l: Address; elementSize: LONGINT;
  828. Loop: UnaryAALoop );
  829. VAR loopd, looplen, loopli, loopdi: LONGINT; p: ANY; glen: LONGINT;
  830. origdest: LONGINT; modes: SET;
  831. VAR dest, left, dim: LONGINT;
  832. PROCEDURE Traverse( dim: LONGINT; ladr, dadr: Address );
  833. VAR len: LONGINT; linc, dinc: LONGINT;
  834. BEGIN
  835. IF dim = loopd THEN
  836. Loop( ladr, dadr, loopli, loopdi, looplen );
  837. IF conservative THEN INC( glen, looplen ) END;
  838. ELSE
  839. len := GetLen( left, dim ); linc := GetIncr( left, dim );
  840. dinc := GetIncr( dest, dim ); INC( dim );
  841. WHILE (len > 0) DO
  842. Traverse( dim, ladr, dadr ); INC( ladr, linc ); INC( dadr, dinc );
  843. DEC( len );
  844. END;
  845. END;
  846. END Traverse;
  847. BEGIN
  848. SYSTEM.GET( d, dest ); SYSTEM.GET( l, left ); dim := GetDim( left );
  849. origdest := 0; modes := {up, down};
  850. (* allocate destination, if necessary *)
  851. p := AllocateSame( dest, left, elementSize );
  852. IF p = NIL THEN
  853. CopyUpCompatible( dest, left, modes );
  854. IF up IN modes THEN (* nothing to be done *)
  855. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  856. ELSE origdest := dest; p := AllocateTemp( dest, origdest, elementSize );
  857. END;
  858. END;
  859. (*
  860. (* allocate destination, if necessary *)
  861. IF GetAdr( dest ) = -1 THEN p := Allocate( left, dest, dim, elementSize )
  862. ELSIF CheckGeometry( left, dest, dim )
  863. END;
  864. *)
  865. IF debug THEN Report( "AA: left", left ); Report( "AA: dest", dest ); END;
  866. (* check pattern: longest piece that can be done with a loop *)
  867. FindPattern2( left, dest, dim, loopd, looplen, loopli, loopdi );
  868. Traverse( 0, GetAdr( left ), GetAdr( dest ) );
  869. IF up IN modes THEN (* nothing to be done *)
  870. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  871. ELSE CopyContent( origdest, dest, elementSize );
  872. END;
  873. SYSTEM.PUT( d, dest );
  874. END ApplyUnaryAAOp;
  875. (** apply unary operator to array: array -> scalar *)
  876. PROCEDURE ApplyUnaryASOp( dest, l: Address; Loop: UnaryASLoop );
  877. VAR loopd, looplen, loopli: LONGINT; glen: LONGINT;
  878. VAR left, dim: LONGINT;
  879. PROCEDURE Traverse( dim: LONGINT; ladr: Address );
  880. VAR len: LONGINT; linc: LONGINT;
  881. BEGIN
  882. IF dim = loopd THEN
  883. Loop( ladr, dest, loopli, looplen );
  884. IF conservative THEN INC( glen, looplen ) END;
  885. ELSE
  886. len := GetLen( left, dim ); linc := GetIncr( left, dim ); INC( dim );
  887. WHILE (len > 0) DO Traverse( dim, ladr ); INC( ladr, linc ); DEC( len ); END;
  888. END;
  889. END Traverse;
  890. BEGIN
  891. SYSTEM.GET( l, left ); dim := GetDim( left );
  892. IF debug THEN Report( "AS: left", left ); END;
  893. (* check pattern: longest piece that can be done with a loop *)
  894. IF conservative THEN glen := 0 END;
  895. FindPattern1( left, dim, loopd, looplen, loopli ); Traverse( 0, GetAdr( left ) );
  896. IF conservative THEN
  897. looplen := 1;
  898. WHILE (dim > 0) DO
  899. looplen := looplen * GetLen( left, dim - 1 ); DEC( dim );
  900. END;
  901. ASSERT( looplen = glen );
  902. END;
  903. END ApplyUnaryASOp;
  904. (** apply unary operator to array: scalar -> array *)
  905. PROCEDURE ApplyUnarySAOp( d, right: Address; Loop: UnarySALoop );
  906. VAR loopd, looplen, loopdi: LONGINT; glen: LONGINT;
  907. VAR dest, dim: LONGINT;
  908. PROCEDURE Traverse( dim: LONGINT; dadr: Address );
  909. VAR len: LONGINT; dinc: LONGINT;
  910. BEGIN
  911. IF dim = loopd THEN
  912. Loop( right, dadr, loopdi, looplen );
  913. IF conservative THEN INC( glen, looplen ) END;
  914. ELSE
  915. len := GetLen( dest, dim ); dinc := GetIncr( dest, dim ); INC( dim );
  916. WHILE (len > 0) DO Traverse( dim, dadr ); INC( dadr, dinc ); DEC( len ); END;
  917. END;
  918. END Traverse;
  919. BEGIN
  920. SYSTEM.GET( d, dest ); dim := GetDim( dest );
  921. IF debug THEN Report( "AS: dest", dest ); END;
  922. (* check pattern: longest piece that can be done with a loop *)
  923. IF conservative THEN glen := 0 END;
  924. FindPattern1( dest, dim, loopd, looplen, loopdi ); Traverse( 0, GetAdr( dest ) );
  925. IF conservative THEN
  926. looplen := 1;
  927. WHILE (dim > 0) DO
  928. looplen := looplen * GetLen( dest, dim - 1 ); DEC( dim );
  929. END;
  930. ASSERT( looplen = glen );
  931. END;
  932. END ApplyUnarySAOp;
  933. (** apply binary operator : array x array -> array *)
  934. PROCEDURE ApplyBinaryAAAOp( d, l, r: Address; elementSize: LONGINT;
  935. Loop: BinaryAAALoop );
  936. VAR loopd, looplen, loopli, loopri, loopdi: LONGINT; p: ANY; glen: LONGINT;
  937. origdest: LONGINT; modes: SET; left, right, dest: Address; dim: LONGINT;
  938. PROCEDURE Traverse( dim: LONGINT; ladr, radr, dadr: Address );
  939. VAR len: LONGINT; linc, rinc, dinc: LONGINT;
  940. BEGIN
  941. IF dim = loopd THEN
  942. Loop( ladr, radr, dadr, loopli, loopri, loopdi, looplen );
  943. IF conservative THEN INC( glen, looplen ) END;
  944. ELSE
  945. len := GetLen( left, dim ); linc := GetIncr( left, dim );
  946. rinc := GetIncr( right, dim ); dinc := GetIncr( dest, dim ); INC( dim );
  947. WHILE (len > 0) DO
  948. Traverse( dim, ladr, radr, dadr ); INC( ladr, linc ); INC( radr, rinc );
  949. INC( dadr, dinc ); DEC( len );
  950. END;
  951. END;
  952. END Traverse;
  953. BEGIN
  954. SYSTEM.GET( d, dest ); SYSTEM.GET( l, left ); SYSTEM.GET( r, right ); dim := GetDim( left );
  955. (* allocate destination, if necessary *)
  956. IF ~SameShape( left, right ) THEN
  957. Halt( GeometryMismatch, left, right, 0 )
  958. END;
  959. origdest := 0; modes := {up, down};
  960. p := AllocateSame( dest, left, elementSize );
  961. IF p = NIL THEN
  962. CopyUpCompatible( dest, left, modes );
  963. CopyUpCompatible( dest, right, modes );
  964. IF up IN modes THEN (* nothing to be done *)
  965. ELSIF down IN modes THEN
  966. Reverse( left, dim ); Reverse( dest, dim ); Reverse( right, dim );
  967. ELSE
  968. origdest := dest; p := AllocateTemp( dest, origdest, elementSize ); (* 1d field ? *)
  969. END;
  970. END;
  971. (* debugging *)
  972. IF debug THEN Report( "AAA:left", left ); Report( "AAA:right", right ); Report( "AAA:dest", dest ); END;
  973. (* check pattern: longest piece that can be done with a loop *)
  974. FindPattern3( left, right, dest, dim, loopd, looplen, loopli, loopri, loopdi );
  975. (* run through dimensions *)
  976. Traverse( 0, GetAdr( left ), GetAdr( right ), GetAdr( dest ) );
  977. IF up IN modes THEN (* nothing to be done *)
  978. ELSIF down IN modes THEN
  979. Reverse( left, dim ); Reverse( dest, dim ); Reverse( right, dim );
  980. ELSE CopyContent( origdest, dest, elementSize );
  981. END;
  982. SYSTEM.PUT( d, dest );
  983. END ApplyBinaryAAAOp;
  984. (** apply binary operator: array x scalar -> array *)
  985. PROCEDURE ApplyBinaryASAOp( d, l, right: Address;
  986. elementSize: LONGINT;
  987. Loop: BinaryASALoop );
  988. VAR loopd, looplen, loopli, loopdi: LONGINT; p: ANY; glen: LONGINT;
  989. origdest: LONGINT; modes: SET; dest, left, dim: LONGINT;
  990. PROCEDURE Traverse( dim: LONGINT; ladr, dadr: Address );
  991. VAR len: LONGINT; linc, dinc: LONGINT;
  992. BEGIN
  993. IF dim = loopd THEN
  994. Loop( ladr, right, dadr, loopli, loopdi, looplen );
  995. IF conservative THEN INC( glen, looplen ) END;
  996. ELSE
  997. len := GetLen( left, dim ); linc := GetIncr( left, dim );
  998. dinc := GetIncr( dest, dim ); INC( dim );
  999. WHILE (len > 0) DO
  1000. Traverse( dim, ladr, dadr ); INC( ladr, linc ); INC( dadr, dinc );
  1001. DEC( len );
  1002. END;
  1003. END;
  1004. END Traverse;
  1005. BEGIN
  1006. SYSTEM.GET( d, dest ); SYSTEM.GET( l, left ); dim := GetDim( left );
  1007. (* allocate destination, if necessary *)
  1008. origdest := 0; modes := {up, down};
  1009. p := AllocateSame( dest, left, elementSize );
  1010. IF p = NIL THEN
  1011. CopyUpCompatible( dest, left, modes );
  1012. IF up IN modes THEN (* nothing to be done *)
  1013. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  1014. ELSE origdest := dest; p := AllocateTemp( dest, origdest, elementSize );
  1015. END;
  1016. END;
  1017. (* debugging *)
  1018. IF debug THEN Report( "ASA:left", left ); Report( "ASA:dest", dest ); END;
  1019. (* check pattern: longest piece that can be done with a loop *)
  1020. FindPattern2( left, dest, dim, loopd, looplen, loopli, loopdi );
  1021. (* run through dimensions *)
  1022. IF conservative THEN glen := 0 END;
  1023. Traverse( 0, GetAdr( left ), GetAdr( dest ) );
  1024. IF conservative THEN
  1025. looplen := 1;
  1026. WHILE (dim > 0) DO
  1027. looplen := looplen * GetLen( left, dim - 1 ); DEC( dim );
  1028. END;
  1029. ASSERT( looplen = glen );
  1030. END;
  1031. IF up IN modes THEN (* nothing to be done *)
  1032. ELSIF down IN modes THEN Reverse( left, dim ); Reverse( dest, dim )
  1033. ELSE CopyContent( origdest, dest, elementSize );
  1034. END;
  1035. SYSTEM.PUT( d, dest );
  1036. END ApplyBinaryASAOp;
  1037. (** apply binary operator: array x array -> scalar *)
  1038. PROCEDURE ApplyBinaryAASOp( dest, l, r: Address; Loop: BinaryAASLoop );
  1039. VAR loopd, looplen, loopli, loopri: LONGINT; glen: LONGINT;
  1040. left, right, dim: LONGINT;
  1041. PROCEDURE Traverse( dim: LONGINT; ladr, radr: Address );
  1042. VAR len: LONGINT; linc, rinc: LONGINT;
  1043. BEGIN
  1044. IF dim = loopd THEN
  1045. Loop( ladr, radr, dest, loopli, loopri, looplen );
  1046. IF conservative THEN INC( glen, looplen ) END;
  1047. ELSE
  1048. len := GetLen( left, dim ); linc := GetIncr( left, dim );
  1049. rinc := GetIncr( right, dim ); INC( dim );
  1050. WHILE (len > 0) DO
  1051. Traverse( dim, ladr, radr ); INC( ladr, linc ); INC( radr, rinc );
  1052. DEC( len );
  1053. END;
  1054. END;
  1055. END Traverse;
  1056. BEGIN
  1057. SYSTEM.GET( l, left ); SYSTEM.GET( r, right ); dim := GetDim( left );
  1058. (* check array lengths *)
  1059. IF ~SameShape( left, right ) THEN
  1060. Halt( GeometryMismatch, left, right, 0 )
  1061. END;
  1062. IF debug THEN Report( "AAS:left", left ); Report( "AAS:right", right ); END;
  1063. (* check pattern: longest piece that can be done with a loop *)
  1064. FindPattern2( left, right, dim, loopd, looplen, loopli, loopri );
  1065. (* run through dimensions *)
  1066. IF conservative THEN glen := 0 END;
  1067. Traverse( 0, GetAdr( left ), GetAdr( right ) );
  1068. IF conservative THEN
  1069. looplen := 1;
  1070. WHILE (dim > 0) DO
  1071. looplen := looplen * GetLen( left, dim - 1 ); DEC( dim );
  1072. END;
  1073. ASSERT( looplen = glen );
  1074. END;
  1075. END ApplyBinaryAASOp;
  1076. (** special binary operator: array x array -> boolean *)
  1077. PROCEDURE ApplyBinaryAABOp( l, r: Address;
  1078. Loop: BinaryAABLoop; geometryMismatchDefault: BOOLEAN ): BOOLEAN;
  1079. VAR loopd, looplen, loopli, loopri: LONGINT; left, right, dim: LONGINT;
  1080. PROCEDURE Traverse( dim: LONGINT; ladr, radr: Address ): BOOLEAN;
  1081. VAR len: LONGINT; linc, rinc: LONGINT;
  1082. BEGIN
  1083. IF dim = loopd THEN RETURN Loop( ladr, radr, loopli, loopri, looplen );
  1084. ELSE
  1085. len := GetLen( left, dim ); linc := GetIncr( left, dim );
  1086. rinc := GetIncr( right, dim ); INC( dim );
  1087. WHILE (len > 0) DO
  1088. IF ~Traverse( dim, ladr, radr ) THEN RETURN FALSE END;
  1089. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  1090. END;
  1091. RETURN TRUE;
  1092. END;
  1093. END Traverse;
  1094. BEGIN
  1095. SYSTEM.GET( l, left ); SYSTEM.GET( r, right ); dim := GetDim( left );
  1096. (* check array lengths *)
  1097. IF ~SameShape( left, right ) THEN
  1098. RETURN geometryMismatchDefault
  1099. END;
  1100. (* is destination already allocated? (might be a temporary result) *)
  1101. IF debug THEN Report( "AAB:left", left ); Report( "AAB:right", right ); END;
  1102. (* check pattern: longest piece that can be done with a loop *)
  1103. FindPattern2( left, right, dim, loopd, looplen, loopli, loopri );
  1104. (* run through dimensions *)
  1105. RETURN Traverse( 0, GetAdr( left ), GetAdr( right ) );
  1106. END ApplyBinaryAABOp;
  1107. (** special binary operator: array x scalar -> boolean *)
  1108. PROCEDURE ApplyBinaryASBOp( l, right: Address;
  1109. Loop: BinaryASBLoop ): BOOLEAN;
  1110. VAR loopd, looplen, loopli: LONGINT; left, dim: LONGINT;
  1111. PROCEDURE Traverse( dim: LONGINT; ladr: Address ): BOOLEAN;
  1112. VAR len: LONGINT; linc: LONGINT;
  1113. BEGIN
  1114. IF dim = loopd THEN RETURN Loop( ladr, right, loopli, looplen );
  1115. ELSE
  1116. len := GetLen( left, dim ); linc := GetIncr( left, dim ); INC( dim );
  1117. WHILE (len > 0) DO
  1118. IF ~Traverse( dim, ladr ) THEN RETURN FALSE END;
  1119. INC( ladr, linc ); DEC( len );
  1120. END;
  1121. RETURN TRUE;
  1122. END;
  1123. END Traverse;
  1124. BEGIN
  1125. SYSTEM.GET( l, left ); dim := GetDim( left );
  1126. IF debug THEN Report( "AAB:left", left ); END;
  1127. (* check pattern: longest piece that can be done with a loop *)
  1128. FindPattern1( left, dim, loopd, looplen, loopli );
  1129. (* run through dimensions *)
  1130. RETURN Traverse( 0, GetAdr( left ) );
  1131. END ApplyBinaryASBOp;
  1132. (**** operators *)
  1133. (*** copy *)
  1134. PROCEDURE Copy4( ladr, dadr, linc, dinc, len: LONGINT );
  1135. CODE {SYSTEM.i386}
  1136. MOV ECX, [EBP+ladr] ; ECX := ladr
  1137. MOV EDX, [EBP+dadr] ; EDX := dadr
  1138. MOV EBX, [EBP+len] ; EBX := len
  1139. start:
  1140. CMP EBX, 0 ;
  1141. JLE end ; WHILE EBX > 0 DO
  1142. MOV EAX, [ECX] ; EAX := SYSTEM.GET32(ECX)
  1143. MOV [EDX], EAX ; SYSTEM.PUT32(EDX, EAX))
  1144. ADD ECX, [EBP+linc] ; INC(ECX, linc)
  1145. ADD EDX, [EBP+dinc] ; INC(EDX, rinc)
  1146. DEC EBX ; DEC(EBX)
  1147. JMP start
  1148. end:
  1149. END Copy4;
  1150. PROCEDURE Copy2( ladr, dadr, linc, dinc, len: LONGINT );
  1151. CODE {SYSTEM.i386}
  1152. MOV ECX, [EBP+ladr] ; ECX := ladr
  1153. MOV EDX, [EBP+dadr] ; EDX := dadr
  1154. MOV EBX, [EBP+len] ; EBX := len
  1155. start:
  1156. CMP EBX, 0 ;
  1157. JLE end ; WHILE EBX > 0 DO
  1158. MOV AX, [ECX] ; EAX := SYSTEM.GET32(ECX)
  1159. MOV [EDX], AX ; SYSTEM.PUT32(EDX, EAX))
  1160. ADD ECX, [EBP+linc] ; INC(ECX, linc)
  1161. ADD EDX, [EBP+dinc] ; INC(EDX, rinc)
  1162. DEC EBX ; DEC(EBX)
  1163. JMP start
  1164. end:
  1165. END Copy2;
  1166. PROCEDURE Copy1( ladr, dadr, linc, dinc, len: LONGINT );
  1167. CODE {SYSTEM.i386}
  1168. MOV ECX, [EBP+ladr] ; ECX := ladr
  1169. MOV EDX, [EBP+dadr] ; EDX := dadr
  1170. MOV EBX, [EBP+len] ; EBX := len
  1171. start:
  1172. CMP EBX, 0 ;
  1173. JLE end ; WHILE EBX > 0 DO
  1174. MOV AL, [ECX] ; EAX := SYSTEM.GET32(ECX)
  1175. MOV [EDX], AL ; SYSTEM.PUT32(EDX, EAX))
  1176. ADD ECX, [EBP+linc] ; INC(ECX, linc)
  1177. ADD EDX, [EBP+dinc] ; INC(EDX, rinc)
  1178. DEC EBX ; DEC(EBX)
  1179. JMP start
  1180. end:
  1181. END Copy1;
  1182. PROCEDURE Copy8( ladr, dadr, linc, dinc, len: LONGINT );
  1183. CODE {SYSTEM.i386}
  1184. MOV ECX, [EBP+ladr] ; ECX := ladr
  1185. MOV EDX, [EBP+dadr] ; EDX := dadr
  1186. MOV EBX, [EBP+len] ; EBX := len
  1187. start:
  1188. CMP EBX, 0 ;
  1189. JLE end ; WHILE EBX > 0 DO
  1190. MOV EAX, [ECX] ; EAX := SYSTEM.GET32(ECX)
  1191. MOV [EDX], EAX ; SYSTEM.PUT32(EDX, EAX))
  1192. MOV EAX, [ECX+4] ; EAX := SYSTEM.GET32(ECX+4)
  1193. MOV [EDX+4], EAX ; SYSTEM.PUT32(EDX+4, EAX))
  1194. ADD ECX, [EBP+linc] ; INC(ECX, linc)
  1195. ADD EDX, [EBP+dinc] ; INC(EDX, rinc)
  1196. DEC EBX ; DEC(EBX)
  1197. JMP start
  1198. end:
  1199. END Copy8;
  1200. PROCEDURE -MoveB*( srcadr, destadr, len: LONGINT );
  1201. (** Correct move if overlap, might be important for some array operations,
  1202. do not use SYSTEM.MOVE. *)
  1203. CODE {SYSTEM.i386}
  1204. MOV ECX, [ESP] ; len
  1205. MOV EDI, [ESP+4] ; destadr
  1206. MOV ESI, [ESP+8] ; srcadr
  1207. CMP ESI, EDI
  1208. JAE moveup ; src adr greater then dest adr, no problem with moving up
  1209. MOV EAX, ESI
  1210. ADD EAX, ECX
  1211. CMP EAX, EDI
  1212. JBE moveup ; no overlap, no problem, move up
  1213. MOV ESI, EAX
  1214. ADD EDI, ECX
  1215. DEC ESI
  1216. DEC EDI
  1217. STD ; move down since overlap occured
  1218. REP
  1219. MOVSB
  1220. JMP done
  1221. moveup:
  1222. CLD
  1223. MOV BL, CL
  1224. SHR ECX, 2
  1225. AND BL, 00000003H ; rest to move after 4 byte move
  1226. REP
  1227. MOVSD ; move 4 bytes each step
  1228. MOV CL, BL
  1229. REP
  1230. MOVSB ; move rest in one byte steps
  1231. done:
  1232. ADD ESP, 12 ; adjust stack pointer(inline procedure!)
  1233. END MoveB;
  1234. PROCEDURE CopyContent( dest, src, elementSize: LONGINT ); (**! optimize *)
  1235. VAR loopd, looplen, loopli, loopdi: LONGINT; p: ANY; glen: LONGINT;
  1236. origdest: LONGINT; modes: SET; dim: LONGINT;
  1237. PROCEDURE Loop( ladr, dadr, linc, dinc, len: LONGINT );
  1238. BEGIN
  1239. IF (dinc = elementSize) & (linc = elementSize) THEN
  1240. MoveB( ladr, dadr, len * elementSize );
  1241. (*
  1242. SYSTEM.MOVE( ladr, dadr, elementSize * len );
  1243. *)
  1244. ELSIF (dinc = -elementSize) & (linc = -elementSize) THEN
  1245. len := len * elementSize;
  1246. MoveB( ladr - len + elementSize, dadr - len + elementSize, len );
  1247. ELSIF elementSize = 1 THEN
  1248. Copy1( ladr, dadr, linc, dinc, len );
  1249. (*
  1250. WHILE (len > 0) DO
  1251. SYSTEM.PUT8( dadr, SYSTEM.GET8( ladr ) ); DEC( len ); INC( ladr, linc ); INC( dadr, dinc );
  1252. END;
  1253. *)
  1254. ELSIF elementSize = 2 THEN
  1255. Copy2( ladr, dadr, linc, dinc, len );
  1256. (*
  1257. WHILE (len > 0) DO
  1258. SYSTEM.PUT16( dadr, SYSTEM.GET16( ladr ) ); DEC( len ); INC( ladr, linc ); INC( dadr, dinc );
  1259. END;
  1260. *)
  1261. ELSIF elementSize = 4 THEN
  1262. Copy4( ladr, dadr, linc, dinc, len );
  1263. (*
  1264. WHILE (len > 0) DO
  1265. SYSTEM.PUT32( dadr, SYSTEM.GET32( ladr ) ); DEC( len ); INC( ladr, linc ); INC( dadr, dinc );
  1266. END;
  1267. *)
  1268. ELSIF elementSize = 8 THEN
  1269. Copy8( ladr, dadr, linc, dinc, len );
  1270. (*
  1271. WHILE (len > 0) DO
  1272. SYSTEM.PUT32( dadr, SYSTEM.GET32( ladr ) );
  1273. SYSTEM.PUT32( dadr + 4, SYSTEM.GET32( ladr + 4 ) ); DEC( len ); INC( ladr, linc );
  1274. INC( dadr, dinc );
  1275. END;
  1276. *)
  1277. ELSE (* SYSTEM.MOVE is expensive ! *)
  1278. WHILE (len > 0) DO
  1279. SYSTEM.MOVE( ladr, dadr, elementSize ); DEC( len ); INC( ladr, linc );
  1280. INC( dadr, dinc );
  1281. END;
  1282. END;
  1283. END Loop;
  1284. PROCEDURE Traverse( dim: LONGINT; ladr, dadr: Address );
  1285. VAR len: LONGINT; linc, dinc: LONGINT;
  1286. BEGIN
  1287. IF dim = loopd THEN
  1288. Loop( ladr, dadr, loopli, loopdi, looplen );
  1289. IF conservative THEN INC( glen, looplen ) END;
  1290. ELSE
  1291. len := GetLen( src, dim ); linc := GetIncr( src, dim );
  1292. dinc := GetIncr( dest, dim ); INC( dim );
  1293. WHILE (len > 0) DO
  1294. Traverse( dim, ladr, dadr ); INC( ladr, linc ); INC( dadr, dinc );
  1295. DEC( len );
  1296. END;
  1297. END;
  1298. END Traverse;
  1299. BEGIN
  1300. dim := GetDim( src );
  1301. origdest := 0; modes := {up, down}; (* copy modes *)
  1302. ASSERT( SameShape( src, dest ) ); (* must be ensured by caller *)
  1303. CopyUpCompatible( dest, src, modes );
  1304. IF up IN modes THEN (* nothing to be done *)
  1305. ELSIF down IN modes THEN (* can only copy from top to bottom *)
  1306. Reverse( src, dim ); Reverse( dest, dim )
  1307. ELSE (* can only copy via double buffer *)
  1308. origdest := dest; p := AllocateTemp( dest, origdest, elementSize );
  1309. END;
  1310. IF debug THEN Report( "AA: src", src ); Report( "AA: dest", dest );
  1311. END;
  1312. (* check pattern: longest piece that can be done with a loop *)
  1313. FindPattern2( src, dest, dim, loopd, looplen, loopli, loopdi );
  1314. Traverse( 0, GetAdr( src ), GetAdr( dest ) );
  1315. IF up IN modes THEN (* nothing to be done *)
  1316. ELSIF down IN modes THEN Reverse( src, dim ); Reverse( dest, dim )
  1317. ELSE CopyContent( origdest, dest, elementSize );
  1318. END;
  1319. END CopyContent;
  1320. PROCEDURE AllocateSame( VAR dest: LONGINT; src: LONGINT;
  1321. elementsize: LONGINT ): ANY;
  1322. VAR ptr, data: ANY; Size: LONGINT;
  1323. (* allocate a structure in dest compatible with src, if necessary. returns if allocation has taken place *)
  1324. PROCEDURE UseDescriptor;
  1325. VAR tag: LONGINT;
  1326. BEGIN
  1327. SYSTEM.GET( src - 4, tag );
  1328. Heaps.NewRec( ptr, tag, FALSE );
  1329. dest := SYSTEM.VAL( LONGINT, ptr );
  1330. END UseDescriptor;
  1331. PROCEDURE NewData;
  1332. VAR dim, len, size: LONGINT;
  1333. BEGIN
  1334. dim := GetDim( src ); size := elementsize;
  1335. PutDim( dest, dim );
  1336. PutSize( dest, elementsize );
  1337. WHILE (dim > 0) DO
  1338. DEC( dim ); len := GetLen( src, dim ); PutLen( dest, dim, len );
  1339. PutInc( dest, dim, size ); size := size * len;
  1340. END;
  1341. SYSTEM.NEW( data, size );
  1342. PutAdr( dest, SYSTEM.VAL( LONGINT, data ) );
  1343. PutPtr( dest, SYSTEM.VAL( LONGINT, data ) );
  1344. END NewData;
  1345. BEGIN
  1346. IF dest # 0 THEN Size := GetSize( dest ); ASSERT( Size = elementsize ); END;
  1347. IF debug THEN KernelLog.String( "Allocate same " ); Report( "allocation source", src ); Report( "allocation des", dest ); END;
  1348. IF dest = 0 THEN (* NIL pointer, guaranteed to be tensor *)
  1349. IF TensorFlag IN GetFlags( src ) THEN UseDescriptor();
  1350. ELSE ptr := GetArrayDesc( GetDim( src ) ); dest := SYSTEM.VAL( LONGINT, ptr );
  1351. END;
  1352. PutFlags(dest, {TensorFlag});
  1353. NewData(); RETURN ptr;
  1354. ELSIF GetDim( dest ) # GetDim( src ) THEN (* different dimension *)
  1355. (* check if re-allocation of descriptor is allowed *)
  1356. IF ~(TensorFlag IN GetFlags( dest )) &
  1357. ~(TemporaryFlag IN GetFlags( dest )) THEN (* no, not allowed*)
  1358. HALT( 100 );
  1359. END;
  1360. UseDescriptor();
  1361. PutFlags(dest, {TensorFlag});
  1362. NewData(); RETURN ptr;
  1363. ELSIF (GetAdr( dest ) = 0) OR ~SameShape( dest, src ) THEN
  1364. (* check if re-allocation of array data is allowed *)
  1365. IF RangeFlag IN GetFlags( dest ) THEN (* no! not allowed *)
  1366. HALT( 100 );
  1367. END;
  1368. NewData();
  1369. RETURN data;
  1370. ELSE (* nothing to do *)
  1371. RETURN NIL;
  1372. END;
  1373. END AllocateSame;
  1374. PROCEDURE TempDescCopy( src: Address ): ANY;
  1375. VAR p: ANY; dim: LONGINT;
  1376. BEGIN
  1377. dim := GetDim( src ); SYSTEM.NEW( p, dim * 8 + MathLenOffset );
  1378. SYSTEM.MOVE( src, SYSTEM.VAL( LONGINT, p ), dim * 8 + MathLenOffset ); PutAdr( src, 0 );
  1379. PutPtr( src, 0 ); PutFlags( src, {} ); RETURN p;
  1380. END TempDescCopy;
  1381. PROCEDURE CopyArraySelf*( dest, src: Address; elementsize: LONGINT );
  1382. VAR p: ANY;
  1383. BEGIN
  1384. ASSERT( src = dest ); p := TempDescCopy( src );
  1385. CopyArray( dest, SYSTEM.VAL( LONGINT, p ), elementsize );
  1386. END CopyArraySelf;
  1387. PROCEDURE CopyArray*( dest: Address; src: Address; elementsize: LONGINT );
  1388. VAR p: ANY; srcdim, destdim: LONGINT;
  1389. BEGIN
  1390. ASSERT( dest # 0 ); (* impossible unless compiler error *)
  1391. IF GetDim( src ) # GetDim( dest ) THEN (* not allowed but possible (tensor) *)
  1392. srcdim := GetDim(src);
  1393. destdim := GetDim(dest);
  1394. (*
  1395. Debugging.Stack("copy array");
  1396. *)
  1397. Report( "copy array source", src ); Report( "copy array des", dest );
  1398. HALT(100);
  1399. ELSIF src = dest THEN (* self copy *)
  1400. CopyArraySelf( dest, src, elementsize );
  1401. ELSE
  1402. p := AllocateSame( dest, src, elementsize );
  1403. CopyContent( dest, src, elementsize )
  1404. END;
  1405. END CopyArray;
  1406. PROCEDURE CopyTensorSelf*( VAR dest: Address; src: Address; elementsize: LONGINT );
  1407. BEGIN
  1408. dest := 0; CopyTensor( dest, src, elementsize );
  1409. END CopyTensorSelf;
  1410. PROCEDURE CopyTensor*( VAR dest: Address; src: Address;
  1411. elementsize: LONGINT );
  1412. VAR p: ANY;
  1413. BEGIN
  1414. (* Report("dest",dest); Report("src",src); *)
  1415. IF (dest = 0) OR ~(SameShape( dest, src )) OR (GetAdr( dest ) = 0) THEN
  1416. p := AllocateSame( dest, src, elementsize ); (* includes check if allocation is allowed *)
  1417. CopyContent( dest, src, elementsize );
  1418. ELSIF dest = src THEN CopyTensorSelf( dest, src, elementsize );
  1419. ELSE CopyContent( dest, src, elementsize )
  1420. END;
  1421. END CopyTensor;
  1422. (* copy descriptor of src to that of dest. If not existent then create.*)
  1423. PROCEDURE ShallowCopy*(VAR dest: Address; src: Address);
  1424. VAR ptr: ANY; flags: SET;
  1425. PROCEDURE UseTypeDescriptor;
  1426. VAR tag: LONGINT; ptr: ANY;
  1427. BEGIN
  1428. SYSTEM.GET( src + Heaps.TypeDescOffset, tag ); Heaps.NewRec( ptr, tag, FALSE );
  1429. dest := SYSTEM.VAL( LONGINT, ptr );
  1430. END UseTypeDescriptor;
  1431. PROCEDURE CopyDescriptor;
  1432. BEGIN
  1433. SYSTEM.MOVE( src , dest, MathLenOffset + SIZEOF(Address) * GetDim( src ) *2 );
  1434. END CopyDescriptor;
  1435. BEGIN
  1436. (*
  1437. KernelLog.String("ShallowCopy called with ");
  1438. KernelLog.Int(src,10); KernelLog.Int(dest,10);
  1439. KernelLog.Ln;
  1440. Report( "scopy source", src ); Report( "scopy dest", dest );
  1441. *)
  1442. IF dest = 0 THEN (* NIL pointer, guaranteed to be tensor *)
  1443. IF TensorFlag IN GetFlags( src ) THEN UseTypeDescriptor();
  1444. ELSE
  1445. ptr := GetArrayDesc( GetDim( src ) ); dest := SYSTEM.VAL( LONGINT, ptr ); (* ??? *)
  1446. END;
  1447. CopyDescriptor();
  1448. PutFlags(dest, {TensorFlag});
  1449. ELSIF GetDim( dest ) # GetDim( src ) THEN (* different dimension *)
  1450. flags := GetFlags(dest);
  1451. (* check if re-allocation of descriptor is allowed *)
  1452. IF ~(TensorFlag IN GetFlags( dest )) & ~(TemporaryFlag IN GetFlags( dest )) THEN (* no, not allowed*)
  1453. Halt(DimensionMismatch,src,0,dest);
  1454. END;
  1455. (* create a new descriptor!!! (added by Alexey) *)
  1456. ptr := GetArrayDesc( GetDim( src ) ); dest := SYSTEM.VAL( LONGINT, ptr );
  1457. CopyDescriptor();
  1458. PutFlags(dest, flags);
  1459. ELSE
  1460. flags := GetFlags(dest);
  1461. (* check if re-allocation of array data is allowed *)
  1462. IF RangeFlag IN GetFlags( dest ) THEN (* no! not allowed *)
  1463. Halt(AllocationForbidden,src,0,dest);
  1464. END;
  1465. CopyDescriptor();
  1466. PutFlags(dest, flags);
  1467. END;
  1468. END ShallowCopy;
  1469. PROCEDURE DescriptorCopy( src, dest: LONGINT );
  1470. BEGIN
  1471. IF debug THEN
  1472. KernelLog.String( "DescriptorCopy from " ); KernelLog.Int( src, 1 ); KernelLog.String( " to " );
  1473. KernelLog.Int( dest, 1 ); KernelLog.Ln;
  1474. END;
  1475. SYSTEM.MOVE( src, dest, 2*SIZEOF(Address) ); (* adr and ptr *)
  1476. SYSTEM.MOVE( src + MathLenOffset, dest + MathLenOffset, SIZEOF(Address) * GetDim( src ) *2 ); (* lens and increments *)
  1477. END DescriptorCopy;
  1478. PROCEDURE ZeroCopy*(CONST src: ARRAY [?]; VAR dest: ARRAY [?]);
  1479. VAR s,d: LONGINT;
  1480. BEGIN
  1481. s := SYSTEM.VAL(LONGINT,src); d := SYSTEM.VAL(LONGINT,dest);
  1482. ShallowCopy(d,s);
  1483. SYSTEM.PUT(ADDRESSOF(dest),d);
  1484. END ZeroCopy;
  1485. OPERATOR "ALIAS"*(CONST src: ARRAY [?]): ARRAY[?];
  1486. BEGIN
  1487. ZeroCopy(src, RESULT);
  1488. RETURN RESULT
  1489. END "ALIAS";
  1490. PROCEDURE SameShape( l, r: LONGINT ): BOOLEAN;
  1491. VAR dim: LONGINT;
  1492. BEGIN
  1493. dim := GetDim( l );
  1494. IF dim # GetDim( r ) THEN RETURN FALSE END;
  1495. WHILE (dim > 0) DO
  1496. DEC( dim );
  1497. IF GetLen( l, dim ) # GetLen( r, dim ) THEN RETURN FALSE END;
  1498. END;
  1499. RETURN TRUE;
  1500. END SameShape;
  1501. (*
  1502. PROCEDURE ZeroCopyArray*( dest: Address; src: Address; elementsize: LONGINT );
  1503. (*
  1504. called as ZeroCopy(A,B,Size) with enhanced arrays A,B
  1505. check if deep copy can be avoided and if so then do a shallow copy
  1506. *)
  1507. BEGIN
  1508. ASSERT( dest # 0 ); (* impossible *)
  1509. IF GetDim( src ) # GetDim( dest ) THEN (* not allowed but possible (tensor) *)
  1510. HALT( 100 );
  1511. ELSIF (RangeFlag IN GetFlags( src )) THEN
  1512. (* must copy (and allocate) *)
  1513. CopyArray( dest, src, elementsize );
  1514. ELSIF (RangeFlag IN GetFlags( dest )) THEN (* copy only allowed if shape matches *)
  1515. IF ~SameShape( dest, src ) THEN HALT( 100 );
  1516. ELSE CopyContent( dest, src, elementsize )
  1517. END;
  1518. ELSE DescriptorCopy( src, dest )
  1519. END;
  1520. END ZeroCopyArray;
  1521. PROCEDURE ZeroCopyTensor*( VAR dest: Address; src: Address; elementsize: LONGINT );
  1522. (*
  1523. called as ZeroCopy(A,B,Size) with A,B: ARRAY [?] OF ...
  1524. check if deep copy can be avoided and if so then do a shallow copy
  1525. *)
  1526. BEGIN
  1527. IF debug THEN
  1528. KernelLog.String( "ZeroCopy2: " ); KernelLog.String( "ADDRESSOF(dest) " ); KernelLog.Int( ADDRESSOF( dest ), 10 );
  1529. KernelLog.Ln; KernelLog.String( "ADDRESSOF(src) " ); KernelLog.Int( ADDRESSOF( src ), 10 ); KernelLog.Ln;
  1530. KernelLog.String( "dest " ); KernelLog.Int( dest, 10 ); KernelLog.Ln; KernelLog.String( "src " );
  1531. KernelLog.Int( src, 10 ); KernelLog.Ln; KernelLog.String( "elementsize" );
  1532. KernelLog.Int( elementsize, 10 ); KernelLog.Ln;
  1533. END;
  1534. IF (dest = 0) OR (TensorFlag IN GetFlags( dest )) THEN (* descriptor allocation allowed *)
  1535. IF (TensorFlag IN GetFlags( src )) THEN dest := src;
  1536. ELSE
  1537. CopyTensor( dest, src, elementsize ); (* allocate freshly *)
  1538. END;
  1539. ELSIF (RangeFlag IN GetFlags( src )) THEN
  1540. (* must copy (and allocate) *)
  1541. CopyTensor( dest, src, elementsize );
  1542. ELSIF (RangeFlag IN GetFlags( dest )) THEN (* descriptor copy forbidden *)
  1543. IF SameShape( src, dest ) THEN CopyContent( dest, src, elementsize )
  1544. ELSE
  1545. HALT( 100 ); (* copy forbidden *)
  1546. END;
  1547. ELSIF GetDim( src ) = GetDim( dest ) THEN (* descriptor copy allowed *)
  1548. DescriptorCopy( src, dest );
  1549. ELSE
  1550. HALT( 100 ); (* different shapes: not allowed *)
  1551. END;
  1552. END ZeroCopyTensor;
  1553. PROCEDURE ZeroCopy*( left, elementSize, dest, dim: LONGINT ); (**! optimize *)
  1554. VAR i: LONGINT;
  1555. BEGIN
  1556. IF GetPtr( dest ) = -1 THEN (* zero copy forbidden, try data copy *)
  1557. CopyContent( dest, left, elementSize )
  1558. ELSE
  1559. IF debug THEN
  1560. KernelLog.String( "Zero Copy" ); KernelLog.Int( left, 10 ); KernelLog.Int( dest, 10 );
  1561. KernelLog.Ln;
  1562. END;
  1563. PutPtr( dest, GetPtr( left ) ); PutAdr( dest, GetAdr( left ) );
  1564. FOR i := 0 TO dim - 1 DO
  1565. PutInc( dest, i, GetIncr( left, i ) ); PutLen( dest, i, GetLen( left, i ) );
  1566. END;
  1567. END;
  1568. END ZeroCopy;
  1569. *)
  1570. (*** conversions ****)
  1571. (** SHORTINT -> INTEGER *)
  1572. PROCEDURE ConvertASAILoop( ladr, dadr, linc, dinc, len: LONGINT );
  1573. BEGIN
  1574. WHILE (len > 0) DO (* SYSTEM.GET( ladr, lval ); dval := lval; SYSTEM.PUT( dadr, dval ); *)
  1575. SYSTEM.PUT16( dadr, SYSTEM.GET8( ladr ) ); INC( ladr, linc ); INC( dadr, dinc );
  1576. DEC( len );
  1577. END;
  1578. END ConvertASAILoop;
  1579. OPERATOR "@Convert"*(CONST src: ARRAY [ ? ] OF SHORTINT ): ARRAY [?] OF INTEGER;
  1580. BEGIN
  1581. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( INTEGER ),ConvertASAILoop );
  1582. RETURN RESULT
  1583. END "@Convert";
  1584. OPERATOR "LONG"*(CONST src: ARRAY [ ? ] OF SHORTINT ): ARRAY [?] OF INTEGER;
  1585. BEGIN
  1586. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( INTEGER ),ConvertASAILoop );
  1587. RETURN RESULT
  1588. END "LONG";
  1589. (** SHORTINT -> LONGINT *)
  1590. PROCEDURE ConvertLoopSL( ladr, dadr, linc, dinc, len: LONGINT );
  1591. BEGIN
  1592. WHILE (len > 0) DO (* SYSTEM.GET( ladr, lval ); dval := lval; SYSTEM.PUT( dadr, dval ); *)
  1593. SYSTEM.PUT32( dadr, SYSTEM.GET8( ladr ) ); INC( ladr, linc ); INC( dadr, dinc );
  1594. DEC( len );
  1595. END;
  1596. END ConvertLoopSL;
  1597. OPERATOR "@Convert"*(CONST src: ARRAY [ ? ] OF SHORTINT ): ARRAY [?] OF LONGINT;
  1598. BEGIN
  1599. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( LONGINT ),ConvertLoopSL );
  1600. RETURN RESULT
  1601. END "@Convert";
  1602. (** SHORTINT -> REAL *)
  1603. PROCEDURE ConvertLoopSR( ladr, dadr, linc, dinc, len: LONGINT );
  1604. VAR lval: SHORTINT; dval: REAL;
  1605. BEGIN
  1606. WHILE (len > 0) DO
  1607. SYSTEM.GET( ladr, lval ); dval := lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  1608. INC( dadr, dinc ); DEC( len );
  1609. END;
  1610. END ConvertLoopSR;
  1611. OPERATOR "@Convert"*(CONST src: ARRAY [ ? ] OF SHORTINT ): ARRAY [?] OF REAL;
  1612. BEGIN
  1613. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( REAL ), ConvertLoopSR );
  1614. RETURN RESULT
  1615. END "@Convert";
  1616. (** SHORTINT -> LONGREAL *)
  1617. PROCEDURE ConvertLoopSX( ladr, dadr, linc, dinc, len: LONGINT );
  1618. VAR lval: SHORTINT; dval: LONGREAL;
  1619. BEGIN
  1620. WHILE (len > 0) DO
  1621. SYSTEM.GET( ladr, lval ); dval := lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  1622. INC( dadr, dinc ); DEC( len );
  1623. END;
  1624. END ConvertLoopSX;
  1625. OPERATOR "@Convert"*(CONST src: ARRAY [ ? ] OF SHORTINT ): ARRAY [ ? ] OF LONGREAL;
  1626. BEGIN
  1627. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( LONGREAL ), ConvertLoopSX );
  1628. RETURN RESULT
  1629. END "@Convert";
  1630. (** INTEGER -> SHORTINT (SHORT) *)
  1631. PROCEDURE ConvertLoopIS( ladr, dadr, linc, dinc, len: LONGINT );
  1632. VAR lval: INTEGER; dval: SHORTINT;
  1633. BEGIN
  1634. WHILE (len > 0) DO
  1635. SYSTEM.GET( ladr, lval ); dval := SHORT( lval ); SYSTEM.PUT( dadr, dval );
  1636. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  1637. END;
  1638. END ConvertLoopIS;
  1639. OPERATOR "@Convert"*(CONST src: ARRAY [ ? ] OF INTEGER ): ARRAY [ ? ] OF SHORTINT;
  1640. BEGIN
  1641. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( SHORTINT ), ConvertLoopIS );
  1642. RETURN RESULT
  1643. END "@Convert";
  1644. OPERATOR "SHORT"*(CONST src: ARRAY [ ? ] OF INTEGER ): ARRAY [ ? ] OF SHORTINT;
  1645. BEGIN
  1646. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( SHORTINT ), ConvertLoopIS );
  1647. RETURN RESULT
  1648. END "SHORT";
  1649. (** INTEGER -> LONGINT *)
  1650. PROCEDURE ConvertLoopIL( ladr, dadr, linc, dinc, len: LONGINT );
  1651. BEGIN
  1652. WHILE (len > 0) DO (* SYSTEM.GET( ladr, lval ); dval := lval; SYSTEM.PUT( dadr, dval ); *)
  1653. SYSTEM.PUT32( dadr, SYSTEM.GET16( ladr ) ); INC( ladr, linc ); INC( dadr, dinc );
  1654. DEC( len );
  1655. END;
  1656. END ConvertLoopIL;
  1657. OPERATOR "@Convert"*(CONST src: ARRAY [ ? ] OF INTEGER ): ARRAY [ ? ] OF LONGINT;
  1658. BEGIN
  1659. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( LONGINT ), ConvertLoopIL );
  1660. RETURN RESULT
  1661. END "@Convert";
  1662. OPERATOR "LONG"*(CONST src: ARRAY [ ? ] OF INTEGER ): ARRAY [ ? ] OF LONGINT;
  1663. BEGIN
  1664. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( LONGINT ), ConvertLoopIL );
  1665. RETURN RESULT
  1666. END "LONG";
  1667. (** INTEGER -> REAL *)
  1668. PROCEDURE ConvertLoopIR( ladr, dadr, linc, dinc, len: LONGINT );
  1669. VAR lval: INTEGER; dval: REAL;
  1670. BEGIN
  1671. WHILE (len > 0) DO
  1672. SYSTEM.GET( ladr, lval ); dval := lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  1673. INC( dadr, dinc ); DEC( len );
  1674. END;
  1675. END ConvertLoopIR;
  1676. OPERATOR "@Convert"*(CONST src: ARRAY [ ? ] OF INTEGER ): ARRAY [ ? ] OF REAL;
  1677. BEGIN
  1678. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( REAL ), ConvertLoopIR );
  1679. RETURN RESULT
  1680. END "@Convert";
  1681. (** INTEGER -> LONGREAL *)
  1682. PROCEDURE ConvertLoopIX( ladr, dadr, linc, dinc, len: LONGINT );
  1683. VAR lval: INTEGER; dval: LONGREAL;
  1684. BEGIN
  1685. WHILE (len > 0) DO
  1686. SYSTEM.GET( ladr, lval ); dval := lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  1687. INC( dadr, dinc ); DEC( len );
  1688. END;
  1689. END ConvertLoopIX;
  1690. OPERATOR "@Convert"*(CONST src: ARRAY [ ? ] OF INTEGER ): ARRAY [ ? ] OF LONGREAL;
  1691. BEGIN
  1692. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( LONGREAL ), ConvertLoopIX );
  1693. RETURN RESULT
  1694. END "@Convert";
  1695. (** LONGINT -> INTEGER (SHORT) *)
  1696. PROCEDURE ConvertLoopLI( ladr, dadr, linc, dinc, len: LONGINT );
  1697. VAR lval: LONGINT; dval: INTEGER;
  1698. BEGIN
  1699. WHILE (len > 0) DO
  1700. SYSTEM.GET( ladr, lval ); dval := SHORT( lval ); SYSTEM.PUT( dadr, dval );
  1701. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  1702. END;
  1703. END ConvertLoopLI;
  1704. OPERATOR "@Convert"*(CONST src: ARRAY [ ? ] OF LONGINT ): ARRAY [ ? ] OF INTEGER;
  1705. BEGIN
  1706. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( INTEGER ),ConvertLoopLI );
  1707. RETURN RESULT
  1708. END "@Convert";
  1709. OPERATOR "SHORT"*(CONST src: ARRAY [ ? ] OF LONGINT ): ARRAY [ ? ] OF INTEGER;
  1710. BEGIN
  1711. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( INTEGER ),ConvertLoopLI );
  1712. RETURN RESULT
  1713. END "SHORT";
  1714. (** LONGINT -> REAL *)
  1715. PROCEDURE ConvertLoopLR( ladr, dadr, linc, dinc, len: LONGINT );
  1716. VAR lval: LONGINT; dval: REAL;
  1717. BEGIN
  1718. WHILE (len > 0) DO
  1719. SYSTEM.GET( ladr, lval ); dval := lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  1720. INC( dadr, dinc ); DEC( len );
  1721. END;
  1722. END ConvertLoopLR;
  1723. OPERATOR "@Convert"*(CONST src: ARRAY [ ? ] OF LONGINT ): ARRAY [ ? ] OF REAL;
  1724. BEGIN
  1725. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( REAL ), ConvertLoopLR );
  1726. RETURN RESULT
  1727. END "@Convert";
  1728. (** LONGINT -> LONGREAL *)
  1729. PROCEDURE ConvertLoopLX( ladr, dadr, linc, dinc, len: LONGINT );
  1730. VAR lval: LONGINT; dval: LONGREAL;
  1731. BEGIN
  1732. WHILE (len > 0) DO
  1733. SYSTEM.GET( ladr, lval ); dval := lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  1734. INC( dadr, dinc ); DEC( len );
  1735. END;
  1736. END ConvertLoopLX;
  1737. OPERATOR "@Convert"*(CONST src: ARRAY [ ? ] OF LONGINT ): ARRAY [ ? ] OF LONGREAL;
  1738. BEGIN
  1739. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( LONGREAL ), ConvertLoopLX );
  1740. RETURN RESULT
  1741. END "@Convert";
  1742. (** REAL -> LONGINT (ENTIER) *)
  1743. PROCEDURE ConvertLoopRL( ladr, dadr, linc, dinc, len: LONGINT );
  1744. VAR lval: REAL; dval: LONGINT;
  1745. BEGIN
  1746. WHILE (len > 0) DO
  1747. SYSTEM.GET( ladr, lval ); dval := ENTIER( lval ); SYSTEM.PUT( dadr, dval );
  1748. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  1749. END;
  1750. END ConvertLoopRL;
  1751. OPERATOR "@Convert"*(CONST src: ARRAY [ ? ] OF REAL ): ARRAY [ ? ] OF LONGINT;
  1752. BEGIN
  1753. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( LONGINT ), ConvertLoopRL );
  1754. RETURN RESULT
  1755. END "@Convert";
  1756. OPERATOR "ENTIER"*(CONST src: ARRAY [ ? ] OF REAL ): ARRAY [ ? ] OF LONGINT;
  1757. BEGIN
  1758. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( LONGINT ), ConvertLoopRL );
  1759. RETURN RESULT
  1760. END "ENTIER";
  1761. (** REAL -> LONGREAL *)
  1762. PROCEDURE ConvertLoopRX( ladr, dadr, linc, dinc, len: LONGINT );
  1763. VAR lval: REAL; dval: LONGREAL;
  1764. BEGIN
  1765. WHILE (len > 0) DO
  1766. SYSTEM.GET( ladr, lval ); dval := lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  1767. INC( dadr, dinc ); DEC( len );
  1768. END;
  1769. END ConvertLoopRX;
  1770. OPERATOR "@Convert"*(CONST src: ARRAY [ ? ] OF REAL ): ARRAY [ ? ] OF LONGREAL;
  1771. BEGIN
  1772. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( LONGREAL ), ConvertLoopRX );
  1773. RETURN RESULT
  1774. END "@Convert";
  1775. OPERATOR "LONG"*(CONST src: ARRAY [ ? ] OF REAL ): ARRAY [ ? ] OF LONGREAL;
  1776. BEGIN
  1777. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( LONGREAL ), ConvertLoopRX );
  1778. RETURN RESULT
  1779. END "LONG";
  1780. (** LONGREAL -> REAL (SHORT) *)
  1781. PROCEDURE ConvertLoopXR( ladr, dadr, linc, dinc, len: LONGINT );
  1782. VAR lval: LONGREAL; dval: REAL;
  1783. BEGIN
  1784. WHILE (len > 0) DO
  1785. SYSTEM.GET( ladr, lval ); dval := SHORT( lval ); SYSTEM.PUT( dadr, dval );
  1786. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  1787. END;
  1788. END ConvertLoopXR;
  1789. OPERATOR "@Convert"*(CONST src: ARRAY [ ? ] OF LONGREAL ): ARRAY [ ? ] OF REAL;
  1790. BEGIN
  1791. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( REAL ), ConvertLoopXR );
  1792. RETURN RESULT
  1793. END "@Convert";
  1794. OPERATOR "SHORT"*(CONST src: ARRAY [ ? ] OF LONGREAL ): ARRAY [ ? ] OF REAL;
  1795. BEGIN
  1796. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( REAL ), ConvertLoopXR );
  1797. RETURN RESULT
  1798. END "SHORT";
  1799. (** LONGREAL -> LONGINT (ENTIER) *)
  1800. PROCEDURE ConvertLoopXL( ladr, dadr, linc, dinc, len: LONGINT );
  1801. VAR lval: LONGREAL; dval: LONGINT;
  1802. BEGIN
  1803. WHILE (len > 0) DO
  1804. SYSTEM.GET( ladr, lval ); dval := ENTIER( lval ); SYSTEM.PUT( dadr, dval );
  1805. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  1806. END;
  1807. END ConvertLoopXL;
  1808. OPERATOR "@Convert"*(CONST src: ARRAY [ ? ] OF LONGREAL ): ARRAY [ ? ] OF LONGINT;
  1809. BEGIN
  1810. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( LONGINT ),ConvertLoopXL );
  1811. RETURN RESULT
  1812. END "@Convert";
  1813. OPERATOR "ENTIER"*(CONST src: ARRAY [ ? ] OF LONGREAL ): ARRAY [ ? ] OF LONGINT;
  1814. BEGIN
  1815. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( LONGINT ),ConvertLoopXL );
  1816. RETURN RESULT
  1817. END "ENTIER";
  1818. (*** monadic not A -> ~A ********************************************************************)
  1819. (** BOOLEAN *)
  1820. PROCEDURE NotLoopAB( ladr, dadr, linc, dinc, len: LONGINT );
  1821. VAR lval: BOOLEAN;
  1822. BEGIN
  1823. WHILE (len > 0) DO
  1824. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, ~lval ); INC( ladr, linc ); INC( dadr, dinc );
  1825. DEC( len );
  1826. END;
  1827. END NotLoopAB;
  1828. OPERATOR "~"*(CONST src: ARRAY [ ? ] OF BOOLEAN): ARRAY [ ? ] OF BOOLEAN;
  1829. BEGIN
  1830. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( BOOLEAN ), NotLoopAB );
  1831. RETURN RESULT
  1832. END "~";
  1833. (*** monadic generic (A) -> -A ********************************************************************)
  1834. (** SHORTINT *)
  1835. PROCEDURE GenericLoopS( ladr, dadr, linc, dinc, len: LONGINT; op: PROCEDURE(x: SHORTINT): SHORTINT );
  1836. VAR lval: SHORTINT;
  1837. BEGIN
  1838. WHILE (len > 0) DO
  1839. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, op(lval) ); INC( ladr, linc ); INC( dadr, dinc );
  1840. DEC( len );
  1841. END;
  1842. END GenericLoopS;
  1843. (** INTEGER *)
  1844. PROCEDURE GenericLoopI( ladr, dadr, linc, dinc, len: LONGINT; op: PROCEDURE(x: INTEGER): INTEGER );
  1845. VAR lval: INTEGER;
  1846. BEGIN
  1847. WHILE (len > 0) DO
  1848. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, op(lval) ); INC( ladr, linc ); INC( dadr, dinc );
  1849. DEC( len );
  1850. END;
  1851. END GenericLoopI;
  1852. (** LONGINT *)
  1853. PROCEDURE GenericLoopL( ladr, dadr, linc, dinc, len: LONGINT; op: PROCEDURE(x: LONGINT): LONGINT );
  1854. VAR lval: LONGINT;
  1855. BEGIN
  1856. WHILE (len > 0) DO
  1857. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, op(lval) ); INC( ladr, linc ); INC( dadr, dinc );
  1858. DEC( len );
  1859. END;
  1860. END GenericLoopL;
  1861. (** HUGEINT *)
  1862. PROCEDURE GenericLoopH( ladr, dadr, linc, dinc, len: LONGINT; op: PROCEDURE(x: HUGEINT): HUGEINT );
  1863. VAR lval: HUGEINT;
  1864. BEGIN
  1865. WHILE (len > 0) DO
  1866. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, op(lval) ); INC( ladr, linc ); INC( dadr, dinc );
  1867. DEC( len );
  1868. END;
  1869. END GenericLoopH;
  1870. (** REAL *)
  1871. PROCEDURE GenericLoopR( ladr, dadr, linc, dinc, len: LONGINT; op: PROCEDURE(x: REAL): REAL );
  1872. VAR lval: REAL;
  1873. BEGIN
  1874. WHILE (len > 0) DO
  1875. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, op(lval) ); INC( ladr, linc ); INC( dadr, dinc );
  1876. DEC( len );
  1877. END;
  1878. END GenericLoopR;
  1879. (** LONGREAL *)
  1880. PROCEDURE GenericLoopX( ladr, dadr, linc, dinc, len: LONGINT; op: PROCEDURE(x: LONGREAL): LONGREAL );
  1881. VAR lval: LONGREAL;
  1882. BEGIN
  1883. WHILE (len > 0) DO
  1884. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, op(lval) ); INC( ladr, linc ); INC( dadr, dinc );
  1885. DEC( len );
  1886. END;
  1887. END GenericLoopX;
  1888. (** COMPLEX *)
  1889. PROCEDURE GenericLoopZ( ladr, dadr, linc, dinc, len: LONGINT; op: PROCEDURE(x: COMPLEX): COMPLEX );
  1890. VAR lval: COMPLEX;
  1891. BEGIN
  1892. WHILE (len > 0) DO
  1893. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, op(lval) ); INC( ladr, linc ); INC( dadr, dinc );
  1894. DEC( len );
  1895. END;
  1896. END GenericLoopZ;
  1897. (** LONGCOMPLEX *)
  1898. PROCEDURE GenericLoopLZ( ladr, dadr, linc, dinc, len: LONGINT; op: PROCEDURE(x: LONGCOMPLEX): LONGCOMPLEX );
  1899. VAR lval: LONGCOMPLEX;
  1900. BEGIN
  1901. WHILE (len > 0) DO
  1902. SYSTEM.MOVE(ladr, ADDRESS OF lval, SIZE OF LONGCOMPLEX);
  1903. lval := op(lval);
  1904. SYSTEM.MOVE(ADDRESS OF lval, dadr, SIZE OF LONGCOMPLEX);
  1905. INC( ladr, linc ); INC( dadr, dinc );
  1906. DEC( len );
  1907. END;
  1908. END GenericLoopLZ;
  1909. (*** monadic minus A -> -A ********************************************************************)
  1910. (** SHORTINT *)
  1911. PROCEDURE MinusLoopS( ladr, dadr, linc, dinc, len: LONGINT );
  1912. VAR lval: SHORTINT;
  1913. BEGIN
  1914. WHILE (len > 0) DO
  1915. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, -lval ); INC( ladr, linc ); INC( dadr, dinc );
  1916. DEC( len );
  1917. END;
  1918. END MinusLoopS;
  1919. OPERATOR "-"*(CONST src: ARRAY [ ? ] OF SHORTINT): ARRAY [ ? ] OF SHORTINT;
  1920. BEGIN
  1921. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( SHORTINT ), MinusLoopS );
  1922. RETURN RESULT
  1923. END "-";
  1924. (** INTEGER *)
  1925. PROCEDURE MinusLoopI( ladr, dadr, linc, dinc, len: LONGINT );
  1926. VAR lval: INTEGER;
  1927. BEGIN
  1928. WHILE (len > 0) DO
  1929. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, -lval ); INC( ladr, linc ); INC( dadr, dinc );
  1930. DEC( len );
  1931. END;
  1932. END MinusLoopI;
  1933. OPERATOR "-"*(CONST src: ARRAY [ ? ] OF INTEGER): ARRAY [ ? ] OF INTEGER;
  1934. BEGIN
  1935. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( INTEGER ), MinusLoopI );
  1936. RETURN RESULT
  1937. END "-";
  1938. (** LONGINT *)
  1939. PROCEDURE MinusLoopL( ladr, dadr, linc, dinc, len: LONGINT );
  1940. VAR lval: LONGINT;
  1941. BEGIN
  1942. WHILE (len > 0) DO
  1943. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, -lval ); INC( ladr, linc ); INC( dadr, dinc );
  1944. DEC( len );
  1945. END;
  1946. END MinusLoopL;
  1947. OPERATOR "-"*(CONST src: ARRAY [ ? ] OF LONGINT): ARRAY [ ? ] OF LONGINT;
  1948. BEGIN
  1949. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( LONGINT ), MinusLoopL );
  1950. RETURN RESULT
  1951. END "-";
  1952. (** REAL *)
  1953. PROCEDURE MinusLoopR( ladr, dadr, linc, dinc, len: LONGINT );
  1954. VAR lval: REAL;
  1955. BEGIN
  1956. WHILE (len > 0) DO
  1957. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, -lval ); INC( ladr, linc ); INC( dadr, dinc );
  1958. DEC( len );
  1959. END;
  1960. END MinusLoopR;
  1961. OPERATOR "-"*(CONST src: ARRAY [ ? ] OF REAL): ARRAY [ ? ] OF REAL;
  1962. BEGIN
  1963. IF debug THEN KernelLog.String( "MinusAR" ); KernelLog.Ln; END;
  1964. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( REAL ), MinusLoopR );
  1965. RETURN RESULT
  1966. END "-";
  1967. (** LONGREAL *)
  1968. PROCEDURE MinusLoopX( ladr, dadr, linc, dinc, len: LONGINT );
  1969. VAR lval: LONGREAL;
  1970. BEGIN
  1971. WHILE (len > 0) DO
  1972. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, -lval ); INC( ladr, linc ); INC( dadr, dinc );
  1973. DEC( len );
  1974. END;
  1975. END MinusLoopX;
  1976. OPERATOR "-"*(CONST src: ARRAY [ ? ] OF LONGREAL): ARRAY [ ? ] OF LONGREAL;
  1977. BEGIN
  1978. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( LONGREAL ),
  1979. MinusLoopX );
  1980. RETURN RESULT
  1981. END "-";
  1982. (*** add array + array -> array ********************************************************************)
  1983. (** SHORTINT *)
  1984. PROCEDURE AddASASLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  1985. VAR lval, rval: SHORTINT;
  1986. BEGIN
  1987. WHILE (len > 0) DO
  1988. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval + rval );
  1989. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  1990. END;
  1991. END AddASASLoop;
  1992. OPERATOR "+"*(CONST left,right: ARRAY [?] OF SHORTINT): ARRAY [?] OF SHORTINT;
  1993. BEGIN
  1994. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  1995. SIZEOF( SHORTINT ), AddASASLoop );
  1996. RETURN RESULT
  1997. END "+";
  1998. (** INTEGER *)
  1999. PROCEDURE AddAIAILoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2000. VAR lval, rval: INTEGER;
  2001. BEGIN
  2002. WHILE (len > 0) DO
  2003. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval + rval );
  2004. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2005. END;
  2006. END AddAIAILoop;
  2007. OPERATOR "+"*(CONST left,right: ARRAY [?] OF INTEGER): ARRAY [?] OF INTEGER;
  2008. BEGIN
  2009. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2010. SIZEOF( INTEGER ), AddAIAILoop );
  2011. RETURN RESULT
  2012. END "+";
  2013. (** LONGINT *)
  2014. PROCEDURE AddALALLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2015. VAR lval, rval: LONGINT;
  2016. BEGIN
  2017. WHILE (len > 0) DO
  2018. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval + rval );
  2019. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2020. END;
  2021. END AddALALLoop;
  2022. OPERATOR "+"*(CONST left,right: ARRAY [?] OF LONGINT): ARRAY [?] OF LONGINT;
  2023. BEGIN
  2024. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2025. SIZEOF( LONGINT ), AddALALLoop );
  2026. RETURN RESULT
  2027. END "+";
  2028. (** REAL *)
  2029. PROCEDURE AddARARLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2030. VAR lval, rval: REAL;
  2031. BEGIN
  2032. WHILE (len > 0) DO
  2033. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval + rval );
  2034. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2035. END;
  2036. END AddARARLoop;
  2037. OPERATOR "+"*(CONST left,right: ARRAY [?] OF REAL): ARRAY [?] OF REAL;
  2038. BEGIN
  2039. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  2040. loopAddARAR );
  2041. RETURN RESULT
  2042. END "+";
  2043. (** LONGREAL *)
  2044. PROCEDURE AddAXAXLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2045. VAR lval, rval: LONGREAL;
  2046. BEGIN
  2047. WHILE (len > 0) DO
  2048. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval + rval );
  2049. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2050. END;
  2051. END AddAXAXLoop;
  2052. OPERATOR "+"*(CONST left,right: ARRAY [?] OF LONGREAL): ARRAY [?] OF LONGREAL;
  2053. BEGIN
  2054. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2055. SIZEOF( LONGREAL ), loopAddAXAX );
  2056. RETURN RESULT
  2057. END "+";
  2058. (** COMPLEX *)
  2059. PROCEDURE AddAZAZLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2060. VAR lval, rval: COMPLEX;
  2061. BEGIN
  2062. WHILE (len > 0) DO
  2063. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval + rval );
  2064. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2065. END;
  2066. END AddAZAZLoop;
  2067. OPERATOR "+"*(CONST left,right: ARRAY [?] OF COMPLEX): ARRAY [?] OF COMPLEX;
  2068. BEGIN
  2069. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2070. SIZEOF( COMPLEX ), loopAddAZAZ );
  2071. RETURN RESULT
  2072. END "+";
  2073. (** LONGCOMPLEX *)
  2074. PROCEDURE AddALZALZLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2075. VAR lvalRe, lvalIm, rvalRe, rvalIm: LONGREAL;
  2076. BEGIN
  2077. WHILE (len > 0) DO
  2078. SYSTEM.GET( ladr, lvalRe ); SYSTEM.GET( ladr+SIZEOF(LONGREAL), lvalIm );
  2079. SYSTEM.GET( radr, rvalRe ); SYSTEM.GET( radr+SIZEOF(LONGREAL), rvalIm );
  2080. SYSTEM.PUT( dadr, lvalRe+rvalRe ); SYSTEM.PUT( dadr+SIZEOF(LONGREAL), lvalIm+rvalIm );
  2081. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc );
  2082. DEC( len );
  2083. END;
  2084. END AddALZALZLoop;
  2085. OPERATOR "+"*(CONST left,right: ARRAY [?] OF LONGCOMPLEX): ARRAY [?] OF LONGCOMPLEX;
  2086. BEGIN
  2087. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2088. SIZEOF( LONGCOMPLEX ), loopAddALZALZ );
  2089. RETURN RESULT
  2090. END "+";
  2091. (*** add array + scalar -> array and scalar + array -> array ********************************************************************)
  2092. (** SHORTINT *)
  2093. PROCEDURE AddASSSLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2094. VAR lval, rval: SHORTINT;
  2095. BEGIN
  2096. SYSTEM.GET( radr, rval );
  2097. WHILE (len > 0) DO
  2098. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval + rval ); INC( ladr, linc );
  2099. INC( dadr, dinc ); DEC( len );
  2100. END;
  2101. END AddASSSLoop;
  2102. OPERATOR "+"*(CONST left: ARRAY [ ? ] OF SHORTINT; right: SHORTINT ): ARRAY [ ? ] OF SHORTINT;
  2103. BEGIN
  2104. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2105. SIZEOF( SHORTINT ), AddASSSLoop );
  2106. RETURN RESULT
  2107. END "+";
  2108. OPERATOR "+"*(left: SHORTINT; CONST right: ARRAY [ ? ] OF SHORTINT): ARRAY [ ? ] OF SHORTINT;
  2109. BEGIN
  2110. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2111. SIZEOF( SHORTINT ), AddASSSLoop );
  2112. RETURN RESULT
  2113. END "+";
  2114. (** INTEGER *)
  2115. PROCEDURE AddAISILoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2116. VAR lval, rval: INTEGER;
  2117. BEGIN
  2118. SYSTEM.GET( radr, rval );
  2119. WHILE (len > 0) DO
  2120. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval + rval ); INC( ladr, linc );
  2121. INC( dadr, dinc ); DEC( len );
  2122. END;
  2123. END AddAISILoop;
  2124. OPERATOR "+"*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): ARRAY [ ? ] OF INTEGER;
  2125. BEGIN
  2126. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2127. SIZEOF( INTEGER ), AddAISILoop );
  2128. RETURN RESULT
  2129. END "+";
  2130. OPERATOR "+"*(left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER): ARRAY [ ? ] OF INTEGER;
  2131. BEGIN
  2132. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2133. SIZEOF( INTEGER ), AddAISILoop );
  2134. RETURN RESULT
  2135. END "+";
  2136. (** LONGINT *)
  2137. PROCEDURE AddALSLLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2138. VAR lval, rval: LONGINT;
  2139. BEGIN
  2140. SYSTEM.GET( radr, rval );
  2141. WHILE (len > 0) DO
  2142. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval + rval ); INC( ladr, linc );
  2143. INC( dadr, dinc ); DEC( len );
  2144. END;
  2145. END AddALSLLoop;
  2146. OPERATOR "+"*(CONST left: ARRAY [ ? ] OF LONGINT; right: LONGINT ): ARRAY [ ? ] OF LONGINT;
  2147. BEGIN
  2148. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2149. SIZEOF( LONGINT ), AddALSLLoop );
  2150. RETURN RESULT
  2151. END "+";
  2152. OPERATOR "+"*(left: LONGINT; CONST right: ARRAY [ ? ] OF LONGINT): ARRAY [ ? ] OF LONGINT;
  2153. BEGIN
  2154. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2155. SIZEOF( LONGINT ), AddALSLLoop );
  2156. RETURN RESULT
  2157. END "+";
  2158. (** REAL *)
  2159. PROCEDURE AddARSRLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2160. VAR lval, rval: REAL;
  2161. BEGIN
  2162. SYSTEM.GET( radr, rval );
  2163. WHILE (len > 0) DO
  2164. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval + rval ); INC( ladr, linc );
  2165. INC( dadr, dinc ); DEC( len );
  2166. END;
  2167. END AddARSRLoop;
  2168. OPERATOR "+"*(CONST left: ARRAY [ ? ] OF REAL; right: REAL ): ARRAY [ ? ] OF REAL;
  2169. BEGIN
  2170. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  2171. AddARSRLoop );
  2172. RETURN RESULT
  2173. END "+";
  2174. OPERATOR "+"*(left: REAL; CONST right: ARRAY [ ? ] OF REAL): ARRAY [ ? ] OF REAL;
  2175. BEGIN
  2176. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ), SIZEOF( REAL ),
  2177. AddARSRLoop );
  2178. RETURN RESULT
  2179. END "+";
  2180. (** LONGREAL *)
  2181. PROCEDURE AddAXSXLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2182. VAR lval, rval: LONGREAL;
  2183. BEGIN
  2184. SYSTEM.GET( radr, rval );
  2185. WHILE (len > 0) DO
  2186. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval + rval ); INC( ladr, linc );
  2187. INC( dadr, dinc ); DEC( len );
  2188. END;
  2189. END AddAXSXLoop;
  2190. OPERATOR "+"*(CONST left: ARRAY [ ? ] OF LONGREAL; right: LONGREAL ): ARRAY [ ? ] OF LONGREAL;
  2191. BEGIN
  2192. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2193. SIZEOF( LONGREAL ), AddAXSXLoop );
  2194. RETURN RESULT
  2195. END "+";
  2196. OPERATOR "+"*(left: LONGREAL; CONST right: ARRAY [ ? ] OF LONGREAL): ARRAY [ ? ] OF LONGREAL;
  2197. BEGIN
  2198. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2199. SIZEOF( LONGREAL ), AddAXSXLoop );
  2200. RETURN RESULT
  2201. END "+";
  2202. (** COMPLEX *)
  2203. PROCEDURE AddAZSZLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2204. VAR lval, rval: COMPLEX;
  2205. BEGIN
  2206. SYSTEM.GET( radr, rval );
  2207. WHILE (len > 0) DO
  2208. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval + rval ); INC( ladr, linc );
  2209. INC( dadr, dinc ); DEC( len );
  2210. END;
  2211. END AddAZSZLoop;
  2212. OPERATOR "+"*(CONST left: ARRAY [ ? ] OF COMPLEX; right: COMPLEX ): ARRAY [ ? ] OF COMPLEX;
  2213. BEGIN
  2214. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( COMPLEX ),
  2215. AddAZSZLoop );
  2216. RETURN RESULT
  2217. END "+";
  2218. OPERATOR "+"*(left: COMPLEX; CONST right: ARRAY [ ? ] OF COMPLEX): ARRAY [ ? ] OF COMPLEX;
  2219. BEGIN
  2220. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ), SIZEOF( COMPLEX ),
  2221. AddAZSZLoop );
  2222. RETURN RESULT
  2223. END "+";
  2224. (** LONGCOMPLEX *)
  2225. PROCEDURE AddALZSLZLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2226. VAR lvalRe, lvalIm, rvalRe, rvalIm: LONGREAL;
  2227. BEGIN
  2228. SYSTEM.GET( radr, rvalRe ); SYSTEM.GET( radr+SIZEOF(LONGREAL), rvalIm );
  2229. WHILE (len > 0) DO
  2230. SYSTEM.GET( ladr, lvalRe ); SYSTEM.GET( ladr+SIZEOF(LONGREAL), lvalIm );
  2231. SYSTEM.PUT( dadr, lvalRe + rvalRe ); SYSTEM.PUT( dadr+SIZEOF(LONGREAL), lvalIm + rvalIm );
  2232. INC( ladr, linc );
  2233. INC( dadr, dinc ); DEC( len );
  2234. END;
  2235. END AddALZSLZLoop;
  2236. OPERATOR "+"*(CONST left: ARRAY [ ? ] OF LONGCOMPLEX; right: LONGCOMPLEX ): ARRAY [ ? ] OF LONGCOMPLEX;
  2237. BEGIN
  2238. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( LONGCOMPLEX ),
  2239. AddALZSLZLoop );
  2240. RETURN RESULT
  2241. END "+";
  2242. OPERATOR "+"*(left: LONGCOMPLEX; CONST right: ARRAY [ ? ] OF LONGCOMPLEX): ARRAY [ ? ] OF LONGCOMPLEX;
  2243. BEGIN
  2244. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ), SIZEOF( LONGCOMPLEX ),
  2245. AddALZSLZLoop );
  2246. RETURN RESULT
  2247. END "+";
  2248. (*** subtraction array - array -> array ********************************************************************)
  2249. (** SHORTINT *)
  2250. PROCEDURE SubASASLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2251. VAR lval, rval: SHORTINT;
  2252. BEGIN
  2253. WHILE (len > 0) DO
  2254. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval - rval );
  2255. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2256. END;
  2257. END SubASASLoop;
  2258. OPERATOR "-"*(CONST left,right: ARRAY [?] OF SHORTINT): ARRAY [?] OF SHORTINT;
  2259. BEGIN
  2260. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2261. SIZEOF( SHORTINT ), SubASASLoop );
  2262. RETURN RESULT
  2263. END "-";
  2264. (** INTEGER *)
  2265. PROCEDURE SubAIAILoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2266. VAR lval, rval: INTEGER;
  2267. BEGIN
  2268. WHILE (len > 0) DO
  2269. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval - rval );
  2270. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2271. END;
  2272. END SubAIAILoop;
  2273. OPERATOR "-"*(CONST left,right: ARRAY [?] OF INTEGER): ARRAY [?] OF INTEGER;
  2274. BEGIN
  2275. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2276. SIZEOF( INTEGER ), SubAIAILoop );
  2277. RETURN RESULT
  2278. END "-";
  2279. (** LONGINT *)
  2280. PROCEDURE SubALALLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2281. VAR lval, rval: LONGINT;
  2282. BEGIN
  2283. WHILE (len > 0) DO
  2284. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval - rval );
  2285. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2286. END;
  2287. END SubALALLoop;
  2288. OPERATOR "-"*(CONST left,right: ARRAY [?] OF LONGINT): ARRAY [?] OF LONGINT;
  2289. BEGIN
  2290. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2291. SIZEOF( LONGINT ), SubALALLoop );
  2292. RETURN RESULT
  2293. END "-";
  2294. (** REAL *)
  2295. PROCEDURE SubARARLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2296. VAR lval, rval: REAL;
  2297. BEGIN
  2298. WHILE (len > 0) DO
  2299. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval - rval );
  2300. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2301. END;
  2302. END SubARARLoop;
  2303. OPERATOR "-"*(CONST left,right: ARRAY [?] OF REAL): ARRAY [?] OF REAL;
  2304. BEGIN
  2305. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  2306. SubARARLoop );
  2307. RETURN RESULT
  2308. END "-";
  2309. (** LONGREAL *)
  2310. PROCEDURE SubAXAXLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2311. VAR lval, rval: LONGREAL;
  2312. BEGIN
  2313. WHILE (len > 0) DO
  2314. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval - rval );
  2315. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2316. END;
  2317. END SubAXAXLoop;
  2318. OPERATOR "-"*(CONST left,right: ARRAY [?] OF LONGREAL): ARRAY [?] OF LONGREAL;
  2319. BEGIN
  2320. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2321. SIZEOF( LONGREAL ), SubAXAXLoop );
  2322. RETURN RESULT
  2323. END "-";
  2324. (** COMPLEX *)
  2325. PROCEDURE SubAZAZLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2326. VAR lval, rval: COMPLEX;
  2327. BEGIN
  2328. WHILE (len > 0) DO
  2329. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval - rval );
  2330. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2331. END;
  2332. END SubAZAZLoop;
  2333. OPERATOR "-"*(CONST left,right: ARRAY [?] OF COMPLEX): ARRAY [?] OF COMPLEX;
  2334. BEGIN
  2335. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2336. SIZEOF( COMPLEX ), SubAZAZLoop );
  2337. RETURN RESULT
  2338. END "-";
  2339. (** LONGCOMPLEX *)
  2340. PROCEDURE SubALZALZLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2341. VAR lvalRe, lvalIm, rvalRe, rvalIm: LONGREAL;
  2342. BEGIN
  2343. WHILE (len > 0) DO
  2344. SYSTEM.GET( ladr, lvalRe ); SYSTEM.GET( ladr+SIZEOF(LONGREAL), lvalIm );
  2345. SYSTEM.GET( radr, rvalRe ); SYSTEM.GET( radr+SIZEOF(LONGREAL), rvalIm );
  2346. SYSTEM.PUT( dadr, lvalRe-rvalRe ); SYSTEM.PUT( dadr+SIZEOF(LONGREAL), lvalIm-rvalIm );
  2347. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc );
  2348. DEC( len );
  2349. END;
  2350. END SubALZALZLoop;
  2351. OPERATOR "-"*(CONST left,right: ARRAY [?] OF LONGCOMPLEX): ARRAY [?] OF LONGCOMPLEX;
  2352. BEGIN
  2353. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2354. SIZEOF( LONGCOMPLEX ), SubALZALZLoop );
  2355. RETURN RESULT
  2356. END "-";
  2357. (*** subtraction array-scalar -> array ********************************************************************)
  2358. (** SHORTINT *)
  2359. OPERATOR "-"*(CONST left: ARRAY [ ? ] OF SHORTINT; right: SHORTINT ): ARRAY [ ? ] OF SHORTINT; (* a: left, b: right, c: dest *)
  2360. BEGIN
  2361. RESULT := left + (-right);
  2362. RETURN RESULT
  2363. END "-";
  2364. (** INTEGER *)
  2365. OPERATOR "-"*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): ARRAY [ ? ] OF INTEGER;
  2366. BEGIN
  2367. RESULT := left + (-right);
  2368. RETURN RESULT
  2369. END "-";
  2370. (** LONGINT *)
  2371. OPERATOR "-"*(CONST left: ARRAY [ ? ] OF LONGINT; right: LONGINT ): ARRAY [ ? ] OF LONGINT;
  2372. BEGIN
  2373. RESULT := left + (-right);
  2374. RETURN RESULT
  2375. END "-";
  2376. (** REAL *)
  2377. OPERATOR "-"*(CONST left: ARRAY [ ? ] OF REAL; right: REAL ): ARRAY [ ? ] OF REAL;
  2378. BEGIN
  2379. RESULT := left + (-right);
  2380. RETURN RESULT
  2381. END "-";
  2382. (** LONGREAL *)
  2383. OPERATOR "-"*(CONST left: ARRAY [ ? ] OF LONGREAL; right: LONGREAL ): ARRAY [ ? ] OF LONGREAL;
  2384. BEGIN
  2385. RESULT := left + (-right);
  2386. RETURN RESULT
  2387. END "-";
  2388. (** COMPLEX *)
  2389. OPERATOR "-"*(CONST left: ARRAY [ ? ] OF COMPLEX; right: COMPLEX ): ARRAY [ ? ] OF COMPLEX;
  2390. BEGIN
  2391. RESULT := left + (-right);
  2392. RETURN RESULT
  2393. END "-";
  2394. (** LONGCOMPLEX *)
  2395. OPERATOR "-"*(CONST left: ARRAY [ ? ] OF LONGCOMPLEX; right: LONGCOMPLEX ): ARRAY [ ? ] OF LONGCOMPLEX;
  2396. BEGIN
  2397. RESULT := left + (-right);
  2398. RETURN RESULT
  2399. END "-";
  2400. (*** subtraction scalar-array -> array ********************************************************************)
  2401. (** SHORTINT *)
  2402. PROCEDURE SubSSASLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2403. VAR lval, rval, dval: SHORTINT;
  2404. BEGIN
  2405. SYSTEM.GET( radr, rval );
  2406. WHILE (len > 0) DO
  2407. SYSTEM.GET( ladr, lval ); dval := rval - lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  2408. INC( dadr, dinc ); DEC( len );
  2409. END;
  2410. END SubSSASLoop;
  2411. OPERATOR "-"*(left: SHORTINT; CONST right: ARRAY [ ? ] OF SHORTINT): ARRAY [ ? ] OF SHORTINT;
  2412. BEGIN
  2413. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2414. SIZEOF( SHORTINT ), SubSSASLoop );
  2415. RETURN RESULT
  2416. END "-";
  2417. (** INTEGER *)
  2418. PROCEDURE SubSIAILoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2419. VAR lval, rval, dval: INTEGER;
  2420. BEGIN
  2421. SYSTEM.GET( radr, rval );
  2422. WHILE (len > 0) DO
  2423. SYSTEM.GET( ladr, lval ); dval := rval - lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  2424. INC( dadr, dinc ); DEC( len );
  2425. END;
  2426. END SubSIAILoop;
  2427. OPERATOR "-"*(left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER): ARRAY [ ? ] OF INTEGER;
  2428. BEGIN
  2429. ApplyBinaryASAOp( ADDRESSOF( RESULT), ADDRESSOF( right ), ADDRESSOF( left ),
  2430. SIZEOF( INTEGER ), SubSIAILoop );
  2431. RETURN RESULT
  2432. END "-";
  2433. (** LONGINT *)
  2434. PROCEDURE SubSLALLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2435. VAR lval, rval, dval: LONGINT;
  2436. BEGIN
  2437. SYSTEM.GET( radr, rval );
  2438. WHILE (len > 0) DO
  2439. SYSTEM.GET( ladr, lval ); dval := rval - lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  2440. INC( dadr, dinc ); DEC( len );
  2441. END;
  2442. END SubSLALLoop;
  2443. OPERATOR "-"*(left: LONGINT; CONST right: ARRAY [ ? ] OF LONGINT): ARRAY [ ? ] OF LONGINT;
  2444. BEGIN
  2445. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2446. SIZEOF( LONGINT ), SubSLALLoop );
  2447. RETURN RESULT
  2448. END "-";
  2449. (** REAL *)
  2450. PROCEDURE SubSRARLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2451. VAR lval, rval, dval: REAL;
  2452. BEGIN
  2453. SYSTEM.GET( radr, rval );
  2454. WHILE (len > 0) DO
  2455. SYSTEM.GET( ladr, lval ); dval := rval - lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  2456. INC( dadr, dinc ); DEC( len );
  2457. END;
  2458. END SubSRARLoop;
  2459. OPERATOR "-"*(left: REAL; CONST right: ARRAY [ ? ] OF REAL): ARRAY [ ? ] OF REAL;
  2460. BEGIN
  2461. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ), SIZEOF( REAL ),
  2462. SubSRARLoop );
  2463. RETURN RESULT
  2464. END "-";
  2465. (** LONGREAL *)
  2466. PROCEDURE SubSXAXLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2467. VAR lval, rval, dval: LONGREAL;
  2468. BEGIN
  2469. SYSTEM.GET( radr, rval );
  2470. WHILE (len > 0) DO
  2471. SYSTEM.GET( ladr, lval ); dval := rval - lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  2472. INC( dadr, dinc ); DEC( len );
  2473. END;
  2474. END SubSXAXLoop;
  2475. OPERATOR "-"*(left: LONGREAL; CONST right: ARRAY [ ? ] OF LONGREAL): ARRAY [ ? ] OF LONGREAL;
  2476. BEGIN
  2477. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2478. SIZEOF( LONGREAL ), SubSXAXLoop );
  2479. RETURN RESULT
  2480. END "-";
  2481. (** COMPLEX *)
  2482. PROCEDURE SubSZAZLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2483. VAR lval, rval, dval: COMPLEX;
  2484. BEGIN
  2485. SYSTEM.GET( radr, rval );
  2486. WHILE (len > 0) DO
  2487. SYSTEM.GET( ladr, lval ); dval := rval - lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  2488. INC( dadr, dinc ); DEC( len );
  2489. END;
  2490. END SubSZAZLoop;
  2491. OPERATOR "-"*(left: COMPLEX; CONST right: ARRAY [ ? ] OF COMPLEX): ARRAY [ ? ] OF COMPLEX;
  2492. BEGIN
  2493. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2494. SIZEOF( COMPLEX ), SubSZAZLoop );
  2495. RETURN RESULT
  2496. END "-";
  2497. (** LONGCOMPLEX *)
  2498. PROCEDURE SubSLZALZLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2499. VAR lvalRe, lvalIm, rvalRe, rvalIm: LONGREAL;
  2500. BEGIN
  2501. SYSTEM.GET( radr, rvalRe ); SYSTEM.GET( radr+SIZEOF(LONGREAL), rvalIm );
  2502. WHILE (len > 0) DO
  2503. SYSTEM.GET( ladr, lvalRe ); SYSTEM.GET( ladr+SIZEOF(LONGREAL), lvalIm );
  2504. SYSTEM.PUT( dadr, rvalRe-lvalRe ); SYSTEM.PUT( dadr+SIZEOF(LONGREAL), rvalIm-lvalIm );
  2505. INC( ladr, linc );
  2506. INC( dadr, dinc ); DEC( len );
  2507. END;
  2508. END SubSLZALZLoop;
  2509. OPERATOR "-"*(left: LONGCOMPLEX; CONST right: ARRAY [ ? ] OF LONGCOMPLEX): ARRAY [ ? ] OF LONGCOMPLEX;
  2510. BEGIN
  2511. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2512. SIZEOF( LONGCOMPLEX ), SubSLZALZLoop );
  2513. RETURN RESULT
  2514. END "-";
  2515. (*** element-wise multiply array x array -> array ********************************************************************)
  2516. (** SHORTINT *)
  2517. PROCEDURE EMulASASLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2518. VAR lval, rval: SHORTINT;
  2519. BEGIN
  2520. WHILE (len > 0) DO
  2521. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval * rval );
  2522. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2523. END;
  2524. END EMulASASLoop;
  2525. OPERATOR ".*"*(CONST left,right: ARRAY [?] OF SHORTINT): ARRAY [?] OF SHORTINT;
  2526. BEGIN
  2527. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2528. SIZEOF( SHORTINT ), EMulASASLoop );
  2529. RETURN RESULT
  2530. END ".*";
  2531. (** INTEGER *)
  2532. PROCEDURE EMulAIAILoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2533. VAR lval, rval: INTEGER; dval: INTEGER;
  2534. BEGIN
  2535. WHILE (len > 0) DO
  2536. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := lval * rval;
  2537. SYSTEM.PUT( dadr, dval ); INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc );
  2538. DEC( len );
  2539. END;
  2540. END EMulAIAILoop;
  2541. OPERATOR ".*"*(CONST left,right: ARRAY [?] OF INTEGER): ARRAY [?] OF INTEGER;
  2542. BEGIN
  2543. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2544. SIZEOF( INTEGER ), EMulAIAILoop );
  2545. RETURN RESULT
  2546. END ".*";
  2547. (** LONGINT *)
  2548. PROCEDURE EMulALALLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2549. VAR lval, rval: LONGINT;
  2550. BEGIN
  2551. WHILE (len > 0) DO
  2552. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval * rval );
  2553. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2554. END;
  2555. END EMulALALLoop;
  2556. OPERATOR ".*"*(CONST left,right: ARRAY [?] OF LONGINT): ARRAY [?] OF LONGINT;
  2557. BEGIN
  2558. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2559. SIZEOF( LONGINT ), EMulALALLoop );
  2560. RETURN RESULT
  2561. END ".*";
  2562. (** REAL *)
  2563. PROCEDURE EMulARARLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2564. VAR lval, rval: REAL;
  2565. BEGIN
  2566. WHILE (len > 0) DO
  2567. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval * rval );
  2568. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2569. END;
  2570. END EMulARARLoop;
  2571. OPERATOR ".*"*(CONST left,right: ARRAY [?] OF REAL): ARRAY [?] OF REAL;
  2572. BEGIN
  2573. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  2574. EMulARARLoop );
  2575. RETURN RESULT
  2576. END ".*";
  2577. (** LONGREAL *)
  2578. PROCEDURE EMulAXAXLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2579. VAR lval, rval: LONGREAL;
  2580. BEGIN
  2581. WHILE (len > 0) DO
  2582. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval * rval );
  2583. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2584. END;
  2585. END EMulAXAXLoop;
  2586. OPERATOR ".*"*(CONST left,right: ARRAY [?] OF LONGREAL): ARRAY [?] OF LONGREAL;
  2587. BEGIN
  2588. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2589. SIZEOF( LONGREAL ), EMulAXAXLoop );
  2590. RETURN RESULT
  2591. END ".*";
  2592. (** COMPLEX *)
  2593. PROCEDURE EMulAZAZLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2594. VAR lval, rval: COMPLEX;
  2595. BEGIN
  2596. WHILE (len > 0) DO
  2597. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval * rval );
  2598. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2599. END;
  2600. END EMulAZAZLoop;
  2601. OPERATOR ".*"*(CONST left,right: ARRAY [?] OF COMPLEX): ARRAY [?] OF COMPLEX;
  2602. BEGIN
  2603. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2604. SIZEOF( COMPLEX ), EMulAZAZLoop );
  2605. RETURN RESULT
  2606. END ".*";
  2607. (** LONGCOMPLEX *)
  2608. PROCEDURE EMulALZALZLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2609. VAR lvalRe, lvalIm, rvalRe, rvalIm: LONGREAL;
  2610. BEGIN
  2611. WHILE (len > 0) DO
  2612. SYSTEM.GET( ladr, lvalRe ); SYSTEM.GET( ladr+SIZEOF(LONGREAL), lvalIm );
  2613. SYSTEM.GET( radr, rvalRe ); SYSTEM.GET( radr+SIZEOF(LONGREAL), rvalIm );
  2614. SYSTEM.PUT( dadr, lvalRe*rvalRe - lvalIm*rvalIm ); SYSTEM.PUT( dadr+SIZEOF(LONGREAL), lvalRe*rvalIm + lvalIm*rvalRe );
  2615. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc );
  2616. DEC( len );
  2617. END;
  2618. END EMulALZALZLoop;
  2619. OPERATOR ".*"*(CONST left,right: ARRAY [?] OF LONGCOMPLEX): ARRAY [?] OF LONGCOMPLEX;
  2620. BEGIN
  2621. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2622. SIZEOF( LONGCOMPLEX ), EMulALZALZLoop );
  2623. RETURN RESULT
  2624. END ".*";
  2625. (*** element-wise multiply and add array x array -> array ********************************************************************)
  2626. (** SHORTINT *)
  2627. PROCEDURE EMulIncASASLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2628. VAR lval, rval,dval: SHORTINT;
  2629. BEGIN
  2630. WHILE (len > 0) DO
  2631. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.GET(dadr,dval); SYSTEM.PUT( dadr, dval + lval * rval );
  2632. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2633. END;
  2634. END EMulIncASASLoop;
  2635. OPERATOR ".*+"*(CONST left,right: ARRAY [?] OF SHORTINT): ARRAY [?] OF SHORTINT;
  2636. BEGIN
  2637. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2638. SIZEOF( SHORTINT ), EMulIncASASLoop );
  2639. END ".*+";
  2640. (** INTEGER *)
  2641. PROCEDURE EMulIncAIAILoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2642. VAR lval, rval,dval: INTEGER;
  2643. BEGIN
  2644. WHILE (len > 0) DO
  2645. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );SYSTEM.GET(dadr,dval); dval := dval + lval * rval;
  2646. SYSTEM.PUT( dadr, dval ); INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc );
  2647. DEC( len );
  2648. END;
  2649. END EMulIncAIAILoop;
  2650. OPERATOR ".*+"*(CONST left,right: ARRAY [?] OF INTEGER): ARRAY [?] OF INTEGER;
  2651. BEGIN
  2652. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2653. SIZEOF( INTEGER ), EMulIncAIAILoop );
  2654. END ".*+";
  2655. (** LONGINT *)
  2656. PROCEDURE EMulIncALALLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2657. VAR lval, rval,dval: LONGINT;
  2658. BEGIN
  2659. WHILE (len > 0) DO
  2660. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.GET(dadr,dval); SYSTEM.PUT( dadr, dval+ lval * rval );
  2661. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2662. END;
  2663. END EMulIncALALLoop;
  2664. OPERATOR ".*+"*(CONST left,right: ARRAY [?] OF LONGINT): ARRAY [?] OF LONGINT;
  2665. BEGIN
  2666. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2667. SIZEOF( LONGINT ), EMulIncALALLoop );
  2668. END ".*+";
  2669. (** REAL *)
  2670. PROCEDURE EMulIncARARLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2671. VAR lval, rval,dval: REAL;
  2672. BEGIN
  2673. WHILE (len > 0) DO
  2674. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.GET(dadr,dval); SYSTEM.PUT( dadr, dval+ lval * rval );
  2675. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2676. END;
  2677. END EMulIncARARLoop;
  2678. OPERATOR ".*+"*(CONST left,right: ARRAY [?] OF REAL): ARRAY [?] OF REAL;
  2679. BEGIN
  2680. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  2681. EMulIncARARLoop );
  2682. END ".*+";
  2683. (** LONGREAL *)
  2684. PROCEDURE EMulIncAXAXLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  2685. VAR lval, rval,dval: LONGREAL;
  2686. BEGIN
  2687. WHILE (len > 0) DO
  2688. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.GET(dadr,dval); SYSTEM.PUT( dadr,dval+ lval * rval );
  2689. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  2690. END;
  2691. END EMulIncAXAXLoop;
  2692. OPERATOR ".*+"*(CONST left,right: ARRAY [?] OF LONGREAL): ARRAY [?] OF LONGREAL;
  2693. BEGIN
  2694. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2695. SIZEOF( LONGREAL ), EMulIncAXAXLoop );
  2696. END ".*+";
  2697. (*** multiply array x scalar -> array and scalar + array -> array ********************************************************************)
  2698. (** SHORTINT *)
  2699. PROCEDURE MulASSSLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2700. VAR lval, rval: SHORTINT;
  2701. BEGIN
  2702. SYSTEM.GET( radr, rval );
  2703. WHILE (len > 0) DO
  2704. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval * rval ); INC( ladr, linc );
  2705. INC( dadr, dinc ); DEC( len );
  2706. END;
  2707. END MulASSSLoop;
  2708. OPERATOR "*"*(CONST left: ARRAY [ ? ] OF SHORTINT; right: SHORTINT ): ARRAY [ ? ] OF SHORTINT;
  2709. BEGIN
  2710. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2711. SIZEOF( SHORTINT ), MulASSSLoop );
  2712. RETURN RESULT
  2713. END "*";
  2714. OPERATOR "*"*(left: SHORTINT; CONST right: ARRAY [ ? ] OF SHORTINT): ARRAY [ ? ] OF SHORTINT;
  2715. BEGIN
  2716. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2717. SIZEOF( SHORTINT ), MulASSSLoop );
  2718. RETURN RESULT
  2719. END "*";
  2720. (** INTEGER *)
  2721. PROCEDURE MulAISILoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2722. VAR lval, rval: INTEGER;
  2723. BEGIN
  2724. SYSTEM.GET( radr, rval );
  2725. WHILE (len > 0) DO
  2726. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval * rval ); INC( ladr, linc );
  2727. INC( dadr, dinc ); DEC( len );
  2728. END;
  2729. END MulAISILoop;
  2730. OPERATOR "*"*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): ARRAY [ ? ] OF INTEGER;
  2731. BEGIN
  2732. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2733. SIZEOF( INTEGER ), MulAISILoop );
  2734. RETURN RESULT
  2735. END "*";
  2736. OPERATOR "*"*(left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER): ARRAY [ ? ] OF INTEGER;
  2737. BEGIN
  2738. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2739. SIZEOF( INTEGER ), MulAISILoop );
  2740. RETURN RESULT
  2741. END "*";
  2742. (** LONGINT *)
  2743. PROCEDURE MulALSLLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2744. VAR lval, rval: LONGINT;
  2745. BEGIN
  2746. SYSTEM.GET( radr, rval );
  2747. WHILE (len > 0) DO
  2748. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval * rval ); INC( ladr, linc );
  2749. INC( dadr, dinc ); DEC( len );
  2750. END;
  2751. END MulALSLLoop;
  2752. OPERATOR "*"*(CONST left: ARRAY [ ? ] OF LONGINT; right: LONGINT ): ARRAY [ ? ] OF LONGINT;
  2753. BEGIN
  2754. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2755. SIZEOF( LONGINT ), MulALSLLoop );
  2756. RETURN RESULT
  2757. END "*";
  2758. OPERATOR "*"*(left: LONGINT; CONST right: ARRAY [ ? ] OF LONGINT): ARRAY [ ? ] OF LONGINT;
  2759. BEGIN
  2760. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2761. SIZEOF( LONGINT ), MulALSLLoop );
  2762. RETURN RESULT
  2763. END "*";
  2764. (** REAL *)
  2765. PROCEDURE MulARSRLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2766. VAR lval, rval: REAL;
  2767. BEGIN
  2768. SYSTEM.GET( radr, rval );
  2769. WHILE (len > 0) DO
  2770. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval * rval ); INC( ladr, linc );
  2771. INC( dadr, dinc ); DEC( len );
  2772. END;
  2773. END MulARSRLoop;
  2774. OPERATOR "*"*(CONST left: ARRAY [ ? ] OF REAL; right: REAL ): ARRAY [ ? ] OF REAL;
  2775. BEGIN
  2776. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  2777. loopMulARSR );
  2778. RETURN RESULT
  2779. END "*";
  2780. OPERATOR "*"*(left: REAL; CONST right: ARRAY [ ? ] OF REAL): ARRAY [ ? ] OF REAL;
  2781. BEGIN
  2782. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ), SIZEOF( REAL ),
  2783. loopMulARSR );
  2784. RETURN RESULT
  2785. END "*";
  2786. (** LONGREAL *)
  2787. PROCEDURE MulAXSXLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2788. VAR lval, rval: LONGREAL;
  2789. BEGIN
  2790. IF debug THEN
  2791. KernelLog.String( "MulAXSXLoop, ladr,radr,dadr,linc,dinc,len= " ); KernelLog.Int( ladr, 10 ); KernelLog.Int( radr, 10 );
  2792. KernelLog.Int( dadr, 10 ); KernelLog.Int( linc, 10 ); KernelLog.Int( dinc, 10 );
  2793. KernelLog.Int( len, 10 ); KernelLog.Ln;
  2794. END;
  2795. SYSTEM.GET( radr, rval );
  2796. WHILE (len > 0) DO
  2797. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval * rval ); INC( ladr, linc );
  2798. INC( dadr, dinc ); DEC( len );
  2799. END;
  2800. END MulAXSXLoop;
  2801. OPERATOR "*"*(CONST left: ARRAY [ ? ] OF LONGREAL; right: LONGREAL ): ARRAY [ ? ] OF LONGREAL;
  2802. BEGIN
  2803. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2804. SIZEOF( LONGREAL ), loopMulAXSX );
  2805. RETURN RESULT
  2806. END "*";
  2807. OPERATOR "*"*(left: LONGREAL; CONST right: ARRAY [ ? ] OF LONGREAL): ARRAY [ ? ] OF LONGREAL;
  2808. BEGIN
  2809. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2810. SIZEOF( LONGREAL ), loopMulAXSX );
  2811. RETURN RESULT
  2812. END "*";
  2813. (** COMPLEX *)
  2814. PROCEDURE MulAZSZLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2815. VAR lval, rval: COMPLEX;
  2816. BEGIN
  2817. SYSTEM.GET( radr, rval );
  2818. WHILE (len > 0) DO
  2819. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval * rval ); INC( ladr, linc );
  2820. INC( dadr, dinc ); DEC( len );
  2821. END;
  2822. END MulAZSZLoop;
  2823. OPERATOR "*"*(CONST left: ARRAY [ ? ] OF COMPLEX; right: COMPLEX ): ARRAY [ ? ] OF COMPLEX;
  2824. BEGIN
  2825. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( COMPLEX ),
  2826. loopMulAZSZ );
  2827. RETURN RESULT
  2828. END "*";
  2829. OPERATOR "*"*(left: COMPLEX; CONST right: ARRAY [ ? ] OF COMPLEX): ARRAY [ ? ] OF COMPLEX;
  2830. BEGIN
  2831. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ), SIZEOF( COMPLEX ),
  2832. loopMulAZSZ );
  2833. RETURN RESULT
  2834. END "*";
  2835. (** LONGCOMPLEX *)
  2836. PROCEDURE MulALZSLZLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2837. VAR lvalRe, lvalIm, rvalRe, rvalIm: LONGREAL;
  2838. BEGIN
  2839. SYSTEM.GET( radr, rvalRe ); SYSTEM.GET( radr+SIZEOF(LONGREAL), rvalIm );
  2840. WHILE (len > 0) DO
  2841. SYSTEM.GET( ladr, lvalRe ); SYSTEM.GET( ladr+SIZEOF(LONGREAL), lvalIm );
  2842. SYSTEM.PUT( dadr, lvalRe * rvalRe - lvalIm*rvalIm ); SYSTEM.PUT( dadr+SIZEOF(LONGREAL), lvalRe * rvalIm + lvalIm*rvalRe );
  2843. INC( ladr, linc );
  2844. INC( dadr, dinc ); DEC( len );
  2845. END;
  2846. END MulALZSLZLoop;
  2847. OPERATOR "*"*(CONST left: ARRAY [ ? ] OF LONGCOMPLEX; right: LONGCOMPLEX ): ARRAY [ ? ] OF LONGCOMPLEX;
  2848. BEGIN
  2849. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( LONGCOMPLEX ),
  2850. loopMulALZSLZ );
  2851. RETURN RESULT
  2852. END "*";
  2853. OPERATOR "*"*(left: LONGCOMPLEX; CONST right: ARRAY [ ? ] OF LONGCOMPLEX): ARRAY [ ? ] OF LONGCOMPLEX;
  2854. BEGIN
  2855. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ), SIZEOF( LONGCOMPLEX ),
  2856. loopMulALZSLZ );
  2857. RETURN RESULT
  2858. END "*";
  2859. (*** multiply and add array * scalar -> array and scalar * array -> array ********************************************************************)
  2860. (** SHORTINT *)
  2861. PROCEDURE IncMulASSSLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2862. VAR lval, rval, dval: SHORTINT;
  2863. BEGIN
  2864. SYSTEM.GET( radr, rval );
  2865. WHILE (len > 0) DO
  2866. SYSTEM.GET( ladr, lval ); SYSTEM.GET( dadr, dval ); SYSTEM.PUT( dadr, dval + lval * rval );
  2867. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  2868. END;
  2869. END IncMulASSSLoop;
  2870. OPERATOR "IncMul"*(CONST left: ARRAY [ ? ] OF SHORTINT; right: SHORTINT ): ARRAY [ ? ] OF SHORTINT;
  2871. BEGIN
  2872. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2873. SIZEOF( SHORTINT ), IncMulASSSLoop );
  2874. END "IncMul";
  2875. OPERATOR "IncMul"*(left: SHORTINT; CONST right: ARRAY [ ? ] OF SHORTINT): ARRAY [ ? ] OF SHORTINT;
  2876. BEGIN
  2877. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2878. SIZEOF( SHORTINT ), IncMulASSSLoop );
  2879. RETURN RESULT
  2880. END "IncMul";
  2881. OPERATOR "DecMul"*(CONST left: ARRAY [ ? ] OF SHORTINT; right: SHORTINT ): ARRAY [ ? ] OF SHORTINT;
  2882. BEGIN
  2883. RESULT := -RESULT;
  2884. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2885. SIZEOF( SHORTINT ), IncMulASSSLoop );
  2886. RESULT := -RESULT;
  2887. RETURN RESULT
  2888. END "DecMul";
  2889. OPERATOR "DecMul"*(left: SHORTINT; CONST right: ARRAY [ ? ] OF SHORTINT): ARRAY [ ? ] OF SHORTINT;
  2890. BEGIN
  2891. RESULT := -RESULT;
  2892. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2893. SIZEOF( SHORTINT ), IncMulASSSLoop );
  2894. RESULT := -RESULT;
  2895. RETURN RESULT
  2896. END "DecMul";
  2897. (** INTEGER *)
  2898. PROCEDURE IncMulAISILoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2899. VAR lval, rval, dval: INTEGER;
  2900. BEGIN
  2901. SYSTEM.GET( radr, rval );
  2902. WHILE (len > 0) DO
  2903. SYSTEM.GET( ladr, lval ); SYSTEM.GET( dadr, dval ); SYSTEM.PUT( dadr, dval + lval * rval );
  2904. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  2905. END;
  2906. END IncMulAISILoop;
  2907. OPERATOR "IncMul"*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): ARRAY [ ? ] OF INTEGER;
  2908. BEGIN
  2909. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2910. SIZEOF( INTEGER ), IncMulAISILoop );
  2911. RETURN RESULT
  2912. END "IncMul";
  2913. OPERATOR "IncMul"*(left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER): ARRAY [ ? ] OF INTEGER;
  2914. BEGIN
  2915. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2916. SIZEOF( INTEGER ), IncMulAISILoop );
  2917. RETURN RESULT
  2918. END "IncMul";
  2919. OPERATOR "DecMul"*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): ARRAY [ ? ] OF INTEGER;
  2920. BEGIN
  2921. RESULT := -RESULT;
  2922. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2923. SIZEOF( INTEGER ), IncMulAISILoop );
  2924. RESULT := -RESULT;
  2925. RETURN RESULT
  2926. END "DecMul";
  2927. OPERATOR "DecMul"*(left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER): ARRAY [ ? ] OF INTEGER;
  2928. BEGIN
  2929. RESULT := -RESULT;
  2930. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2931. SIZEOF( INTEGER ), IncMulAISILoop );
  2932. RESULT := -RESULT;
  2933. RETURN RESULT
  2934. END "DecMul";
  2935. (** LONGINT *)
  2936. PROCEDURE IncMulALSLLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2937. VAR lval, rval, dval: LONGINT;
  2938. BEGIN
  2939. SYSTEM.GET( radr, rval );
  2940. WHILE (len > 0) DO
  2941. SYSTEM.GET( ladr, lval ); SYSTEM.GET( dadr, dval ); SYSTEM.PUT( dadr, dval + lval * rval );
  2942. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  2943. END;
  2944. END IncMulALSLLoop;
  2945. OPERATOR "IncMul"*(CONST left: ARRAY [ ? ] OF LONGINT; right: LONGINT ): ARRAY [ ? ] OF LONGINT;
  2946. BEGIN
  2947. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2948. SIZEOF( LONGINT ), IncMulALSLLoop );
  2949. RETURN RESULT
  2950. END "IncMul";
  2951. OPERATOR "IncMul"*(left: LONGINT; CONST right: ARRAY [ ? ] OF LONGINT): ARRAY [ ? ] OF LONGINT;
  2952. BEGIN
  2953. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2954. SIZEOF( LONGINT ), IncMulALSLLoop );
  2955. RETURN RESULT
  2956. END "IncMul";
  2957. OPERATOR "DecMul"*(CONST left: ARRAY [ ? ] OF LONGINT; right: LONGINT ): ARRAY [ ? ] OF LONGINT;
  2958. BEGIN
  2959. RESULT := -RESULT;
  2960. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  2961. SIZEOF( LONGINT ), IncMulALSLLoop );
  2962. RESULT := -RESULT;
  2963. RETURN RESULT
  2964. END "DecMul";
  2965. OPERATOR "DecMul"*(left: LONGINT; CONST right: ARRAY [ ? ] OF LONGINT): ARRAY [ ? ] OF LONGINT;
  2966. BEGIN
  2967. RESULT := -RESULT;
  2968. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  2969. SIZEOF( LONGINT ), IncMulALSLLoop );
  2970. RESULT := -RESULT;
  2971. RETURN RESULT
  2972. END "DecMul";
  2973. (** REAL *)
  2974. PROCEDURE IncMulARSRLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  2975. VAR lval, rval, dval: REAL;
  2976. BEGIN
  2977. SYSTEM.GET( radr, rval );
  2978. WHILE (len > 0) DO
  2979. SYSTEM.GET( ladr, lval ); SYSTEM.GET( dadr, dval ); SYSTEM.PUT( dadr, dval + lval * rval );
  2980. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  2981. END;
  2982. END IncMulARSRLoop;
  2983. OPERATOR "IncMul"*(CONST left: ARRAY [ ? ] OF REAL; right: REAL ): ARRAY [ ? ] OF REAL;
  2984. BEGIN
  2985. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  2986. loopIncMulARSR );
  2987. RETURN RESULT
  2988. END "IncMul";
  2989. OPERATOR "IncMul"*(left: REAL; CONST right: ARRAY [ ? ] OF REAL): ARRAY [ ? ] OF REAL;
  2990. BEGIN
  2991. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ), SIZEOF( REAL ),
  2992. loopIncMulARSR );
  2993. RETURN RESULT
  2994. END "IncMul";
  2995. OPERATOR "DecMul"*(CONST left: ARRAY [ ? ] OF REAL; right: REAL ): ARRAY [ ? ] OF REAL;
  2996. BEGIN
  2997. RESULT := -RESULT;
  2998. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  2999. loopIncMulARSR );
  3000. RESULT := -RESULT;
  3001. RETURN RESULT
  3002. END "DecMul";
  3003. OPERATOR "DecMul"*(left: REAL; CONST right: ARRAY [ ? ] OF REAL): ARRAY [ ? ] OF REAL;
  3004. BEGIN
  3005. RESULT := -RESULT;
  3006. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ), SIZEOF( REAL ),
  3007. loopIncMulARSR );
  3008. RESULT := -RESULT;
  3009. RETURN RESULT
  3010. END "DecMul";
  3011. (** LONGREAL *)
  3012. PROCEDURE IncMulAXSXLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3013. VAR lval, rval, dval: LONGREAL;
  3014. BEGIN
  3015. IF debug THEN
  3016. KernelLog.String( "IncMulAXSXLoop, ladr,radr,dadr,linc,dinc,len= " ); KernelLog.Int( ladr, 10 ); KernelLog.Int( radr, 10 );
  3017. KernelLog.Int( dadr, 10 ); KernelLog.Int( linc, 10 ); KernelLog.Int( dinc, 10 );
  3018. KernelLog.Int( len, 10 ); KernelLog.Ln;
  3019. END;
  3020. SYSTEM.GET( radr, rval );
  3021. WHILE (len > 0) DO
  3022. SYSTEM.GET( ladr, lval ); SYSTEM.GET( dadr, dval ); SYSTEM.PUT( dadr, dval + lval * rval );
  3023. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  3024. END;
  3025. END IncMulAXSXLoop;
  3026. OPERATOR "IncMul"*(CONST left: ARRAY [ ? ] OF LONGREAL; right: LONGREAL ): ARRAY [ ? ] OF LONGREAL;
  3027. BEGIN
  3028. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3029. SIZEOF( LONGREAL ), loopIncMulAXSX );
  3030. RETURN RESULT
  3031. END "IncMul";
  3032. OPERATOR "IncMul"*(left: LONGREAL; CONST right: ARRAY [ ? ] OF LONGREAL): ARRAY [ ? ] OF LONGREAL;
  3033. BEGIN
  3034. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  3035. SIZEOF( LONGREAL ), loopIncMulAXSX );
  3036. RETURN RESULT
  3037. END "IncMul";
  3038. OPERATOR "DecMul"*(CONST left: ARRAY [ ? ] OF LONGREAL; right: LONGREAL ): ARRAY [ ? ] OF LONGREAL;
  3039. BEGIN
  3040. RESULT := -RESULT;
  3041. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3042. SIZEOF( LONGREAL ), loopIncMulAXSX );
  3043. RESULT := -RESULT;
  3044. RETURN RESULT
  3045. END "DecMul";
  3046. OPERATOR "DecMul"*(left: LONGREAL; CONST right: ARRAY [ ? ] OF LONGREAL): ARRAY [ ? ] OF LONGREAL;
  3047. BEGIN
  3048. RESULT := -RESULT;
  3049. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  3050. SIZEOF( LONGREAL ), loopIncMulAXSX );
  3051. RESULT := -RESULT;
  3052. RETURN RESULT
  3053. END "DecMul";
  3054. (*** element-wise division array / array -> array ********************************************************************)
  3055. (** SHORTINT *)
  3056. PROCEDURE EDivideASASLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3057. VAR lval, rval: SHORTINT; dval: REAL;
  3058. BEGIN
  3059. WHILE (len > 0) DO
  3060. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := lval / rval;
  3061. SYSTEM.PUT( dadr, dval ); INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc );
  3062. DEC( len );
  3063. END;
  3064. END EDivideASASLoop;
  3065. OPERATOR "./"*(CONST left,right: ARRAY [?] OF SHORTINT): ARRAY [?] OF REAL;
  3066. BEGIN
  3067. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  3068. EDivideASASLoop );
  3069. RETURN RESULT
  3070. END "./";
  3071. (** INTEGER *)
  3072. PROCEDURE EDivideAIAILoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3073. VAR lval, rval: INTEGER; dval: REAL;
  3074. BEGIN
  3075. WHILE (len > 0) DO
  3076. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := lval / rval;
  3077. SYSTEM.PUT( dadr, dval ); INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc );
  3078. DEC( len );
  3079. END;
  3080. END EDivideAIAILoop;
  3081. OPERATOR "./"*(CONST left,right: ARRAY [?] OF INTEGER): ARRAY [?] OF REAL;
  3082. BEGIN
  3083. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  3084. EDivideAIAILoop );
  3085. RETURN RESULT
  3086. END "./";
  3087. (** LONGINT *)
  3088. PROCEDURE EDivideALALLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3089. VAR lval, rval: LONGINT; dval: REAL;
  3090. BEGIN
  3091. WHILE (len > 0) DO
  3092. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := lval / rval;
  3093. SYSTEM.PUT( dadr, dval ); INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc );
  3094. DEC( len );
  3095. END;
  3096. END EDivideALALLoop;
  3097. OPERATOR "./"*(CONST left,right: ARRAY [?] OF LONGINT): ARRAY [?] OF REAL;
  3098. BEGIN
  3099. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  3100. EDivideALALLoop );
  3101. RETURN RESULT
  3102. END "./";
  3103. (** REAL *)
  3104. PROCEDURE EDivideARARLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3105. VAR lval, rval: REAL; dval: REAL;
  3106. BEGIN
  3107. WHILE (len > 0) DO
  3108. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := lval / rval;
  3109. SYSTEM.PUT( dadr, dval ); INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc );
  3110. DEC( len );
  3111. END;
  3112. END EDivideARARLoop;
  3113. OPERATOR "./"*(CONST left,right: ARRAY [?] OF REAL): ARRAY [?] OF REAL;
  3114. BEGIN
  3115. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  3116. EDivideARARLoop );
  3117. RETURN RESULT
  3118. END "./";
  3119. (** LONGREAL *)
  3120. PROCEDURE EDivideAXAXLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3121. VAR lval, rval: LONGREAL; dval: LONGREAL;
  3122. BEGIN
  3123. WHILE (len > 0) DO
  3124. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := lval / rval;
  3125. SYSTEM.PUT( dadr, dval ); INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc );
  3126. DEC( len );
  3127. END;
  3128. END EDivideAXAXLoop;
  3129. OPERATOR "./"*(CONST left,right: ARRAY [?] OF LONGREAL): ARRAY [?] OF LONGREAL;
  3130. BEGIN
  3131. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3132. SIZEOF( LONGREAL ), EDivideAXAXLoop );
  3133. RETURN RESULT
  3134. END "./";
  3135. (** COMPLEX *)
  3136. PROCEDURE EDivideAZAZLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3137. VAR lval, rval: COMPLEX; dval: COMPLEX;
  3138. BEGIN
  3139. WHILE (len > 0) DO
  3140. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := lval / rval;
  3141. SYSTEM.PUT( dadr, dval ); INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc );
  3142. DEC( len );
  3143. END;
  3144. END EDivideAZAZLoop;
  3145. OPERATOR "./"*(CONST left,right: ARRAY [?] OF COMPLEX): ARRAY [?] OF COMPLEX;
  3146. BEGIN
  3147. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3148. SIZEOF( COMPLEX ), EDivideAZAZLoop );
  3149. RETURN RESULT
  3150. END "./";
  3151. (** LONGCOMPLEX *)
  3152. PROCEDURE EDivideALZALZLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3153. VAR lvalRe, lvalIm, rvalRe, rvalIm: LONGREAL; dvalRe, dvalIm: LONGREAL; v: LONGREAL;
  3154. BEGIN
  3155. WHILE (len > 0) DO
  3156. SYSTEM.GET( ladr, lvalRe ); SYSTEM.GET( ladr+SIZEOF(LONGREAL), lvalIm );
  3157. SYSTEM.GET( radr, rvalRe ); SYSTEM.GET( radr+SIZEOF(LONGREAL), rvalIm );
  3158. IF rvalIm # 0.0D0 THEN
  3159. v := 1.0D0/(rvalRe*rvalRe + rvalIm*rvalIm);
  3160. dvalRe := v*(lvalRe*rvalRe+lvalIm*rvalIm);
  3161. dvalIm := v*(lvalIm*rvalRe-lvalRe*rvalIm);
  3162. ELSE
  3163. dvalRe := lvalRe/rvalRe;
  3164. dvalIm := lvalIm/rvalRe;
  3165. END;
  3166. SYSTEM.PUT( dadr, dvalRe ); SYSTEM.PUT( dadr+SIZEOF(LONGREAL), dvalIm );
  3167. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc );
  3168. DEC( len );
  3169. END;
  3170. END EDivideALZALZLoop;
  3171. OPERATOR "./"*(CONST left,right: ARRAY [?] OF LONGCOMPLEX): ARRAY [?] OF LONGCOMPLEX;
  3172. BEGIN
  3173. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3174. SIZEOF( LONGCOMPLEX ), EDivideALZALZLoop );
  3175. RETURN RESULT
  3176. END "./";
  3177. (*** division array / scalar -> array and scalar / array -> array ********************************************************************)
  3178. (** SHORTINT *)
  3179. PROCEDURE DivideASSSLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3180. VAR lval, rval: SHORTINT; dval: REAL;
  3181. BEGIN
  3182. SYSTEM.GET( radr, rval );
  3183. WHILE (len > 0) DO
  3184. SYSTEM.GET( ladr, lval ); dval := lval / rval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  3185. INC( dadr, dinc ); DEC( len );
  3186. END;
  3187. END DivideASSSLoop;
  3188. OPERATOR "/"*(CONST left: ARRAY [ ? ] OF SHORTINT; right: SHORTINT ): ARRAY [ ? ] OF REAL;
  3189. BEGIN
  3190. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  3191. DivideASSSLoop );
  3192. RETURN RESULT
  3193. END "/";
  3194. PROCEDURE DivideSSASLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3195. VAR lval, rval: SHORTINT; dval: REAL;
  3196. BEGIN
  3197. SYSTEM.GET( radr, rval );
  3198. WHILE (len > 0) DO
  3199. SYSTEM.GET( ladr, lval ); dval := rval / lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  3200. INC( dadr, dinc ); DEC( len );
  3201. END;
  3202. END DivideSSASLoop;
  3203. OPERATOR "/"*(left: SHORTINT; CONST right: ARRAY [ ? ] OF SHORTINT): ARRAY [ ? ] OF REAL;
  3204. BEGIN
  3205. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ), SIZEOF( REAL ),
  3206. DivideSSASLoop );
  3207. RETURN RESULT
  3208. END "/";
  3209. (** INTEGER *)
  3210. PROCEDURE DivideAISILoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3211. VAR lval, rval: INTEGER; dval: REAL;
  3212. BEGIN
  3213. SYSTEM.GET( radr, rval );
  3214. WHILE (len > 0) DO
  3215. SYSTEM.GET( ladr, lval ); dval := lval / rval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  3216. INC( dadr, dinc ); DEC( len );
  3217. END;
  3218. END DivideAISILoop;
  3219. OPERATOR "/"*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): ARRAY [ ? ] OF REAL;
  3220. BEGIN
  3221. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  3222. DivideAISILoop );
  3223. RETURN RESULT
  3224. END "/";
  3225. PROCEDURE DivideSIAILoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3226. VAR lval, rval: INTEGER; dval: REAL;
  3227. BEGIN
  3228. SYSTEM.GET( radr, rval );
  3229. WHILE (len > 0) DO
  3230. SYSTEM.GET( ladr, lval ); dval := rval / lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  3231. INC( dadr, dinc ); DEC( len );
  3232. END;
  3233. END DivideSIAILoop;
  3234. OPERATOR "/"*(left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER): ARRAY [ ? ] OF REAL;
  3235. BEGIN
  3236. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ), SIZEOF( REAL ),
  3237. DivideSIAILoop );
  3238. RETURN RESULT
  3239. END "/";
  3240. (** LONGINT *)
  3241. PROCEDURE DivideALSLLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3242. VAR lval, rval: LONGINT; dval: REAL;
  3243. BEGIN
  3244. SYSTEM.GET( radr, rval );
  3245. WHILE (len > 0) DO
  3246. SYSTEM.GET( ladr, lval ); dval := lval / rval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  3247. INC( dadr, dinc ); DEC( len );
  3248. END;
  3249. END DivideALSLLoop;
  3250. OPERATOR "/"*(CONST left: ARRAY [ ? ] OF LONGINT; right: LONGINT ): ARRAY [ ? ] OF REAL;
  3251. BEGIN
  3252. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  3253. DivideALSLLoop );
  3254. RETURN RESULT
  3255. END "/";
  3256. PROCEDURE DivideSLALLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3257. VAR lval, rval: LONGINT; dval: REAL;
  3258. BEGIN
  3259. SYSTEM.GET( radr, rval );
  3260. WHILE (len > 0) DO
  3261. SYSTEM.GET( ladr, lval ); dval := rval / lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  3262. INC( dadr, dinc ); DEC( len );
  3263. END;
  3264. END DivideSLALLoop;
  3265. OPERATOR "/"*(left: LONGINT; CONST right: ARRAY [ ? ] OF LONGINT): ARRAY [ ? ] OF REAL;
  3266. BEGIN
  3267. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ), SIZEOF( REAL ),
  3268. DivideSLALLoop );
  3269. RETURN RESULT
  3270. END "/";
  3271. (** REAL *)
  3272. PROCEDURE DivideARSRLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3273. VAR lval, rval: REAL; dval: REAL;
  3274. BEGIN
  3275. SYSTEM.GET( radr, rval );
  3276. WHILE (len > 0) DO
  3277. SYSTEM.GET( ladr, lval ); dval := lval / rval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  3278. INC( dadr, dinc ); DEC( len );
  3279. END;
  3280. END DivideARSRLoop;
  3281. OPERATOR "/"*(CONST left: ARRAY [ ? ] OF REAL; right: REAL ): ARRAY [ ? ] OF REAL;
  3282. BEGIN
  3283. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  3284. DivideARSRLoop );
  3285. RETURN RESULT
  3286. END "/";
  3287. PROCEDURE DivideSRARLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3288. VAR lval, rval: REAL; dval: REAL;
  3289. BEGIN
  3290. SYSTEM.GET( radr, rval );
  3291. WHILE (len > 0) DO
  3292. SYSTEM.GET( ladr, lval ); dval := rval / lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  3293. INC( dadr, dinc ); DEC( len );
  3294. END;
  3295. END DivideSRARLoop;
  3296. OPERATOR "/"*(left: REAL; CONST right: ARRAY [ ? ] OF REAL): ARRAY [ ? ] OF REAL;
  3297. BEGIN
  3298. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ), SIZEOF( REAL ),
  3299. DivideSRARLoop );
  3300. RETURN RESULT
  3301. END "/";
  3302. (** LONGREAL *)
  3303. PROCEDURE DivideAXSXLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3304. VAR lval, rval: LONGREAL; dval: LONGREAL;
  3305. BEGIN
  3306. SYSTEM.GET( radr, rval );
  3307. WHILE (len > 0) DO
  3308. SYSTEM.GET( ladr, lval ); dval := lval / rval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  3309. INC( dadr, dinc ); DEC( len );
  3310. END;
  3311. END DivideAXSXLoop;
  3312. OPERATOR "/"*(CONST left: ARRAY [ ? ] OF LONGREAL; right: LONGREAL ): ARRAY [ ? ] OF LONGREAL;
  3313. BEGIN
  3314. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3315. SIZEOF( LONGREAL ), DivideAXSXLoop );
  3316. RETURN RESULT
  3317. END "/";
  3318. PROCEDURE DivideSXAXLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3319. VAR lval, rval: LONGREAL; dval: LONGREAL;
  3320. BEGIN
  3321. SYSTEM.GET( radr, rval );
  3322. WHILE (len > 0) DO
  3323. SYSTEM.GET( ladr, lval ); dval := rval / lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  3324. INC( dadr, dinc ); DEC( len );
  3325. END;
  3326. END DivideSXAXLoop;
  3327. OPERATOR "/"*(left: LONGREAL; CONST right: ARRAY [ ? ] OF LONGREAL): ARRAY [ ? ] OF LONGREAL;
  3328. BEGIN
  3329. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  3330. SIZEOF( LONGREAL ), DivideSXAXLoop );
  3331. RETURN RESULT
  3332. END "/";
  3333. (** COMPLEX *)
  3334. PROCEDURE DivideAZSZLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3335. VAR lval, rval: COMPLEX; dval: COMPLEX;
  3336. BEGIN
  3337. SYSTEM.GET( radr, rval );
  3338. WHILE (len > 0) DO
  3339. SYSTEM.GET( ladr, lval ); dval := lval / rval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  3340. INC( dadr, dinc ); DEC( len );
  3341. END;
  3342. END DivideAZSZLoop;
  3343. OPERATOR "/"*(CONST left: ARRAY [ ? ] OF COMPLEX; right: COMPLEX ): ARRAY [ ? ] OF COMPLEX;
  3344. BEGIN
  3345. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3346. SIZEOF( COMPLEX ), DivideAZSZLoop );
  3347. RETURN RESULT
  3348. END "/";
  3349. PROCEDURE DivideSZAZLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3350. VAR lval, rval: COMPLEX; dval: COMPLEX;
  3351. BEGIN
  3352. SYSTEM.GET( radr, rval );
  3353. WHILE (len > 0) DO
  3354. SYSTEM.GET( ladr, lval ); dval := rval / lval; SYSTEM.PUT( dadr, dval ); INC( ladr, linc );
  3355. INC( dadr, dinc ); DEC( len );
  3356. END;
  3357. END DivideSZAZLoop;
  3358. OPERATOR "/"*(left: COMPLEX; CONST right: ARRAY [ ? ] OF COMPLEX): ARRAY [ ? ] OF COMPLEX;
  3359. BEGIN
  3360. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  3361. SIZEOF( COMPLEX ), DivideSZAZLoop );
  3362. RETURN RESULT
  3363. END "/";
  3364. (** LONGCOMPLEX *)
  3365. PROCEDURE DivideALZSLZLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3366. VAR lvalRe, lvalIm, rvalRe, rvalIm: LONGREAL; dvalRe, dvalIm: LONGREAL; v: LONGREAL;
  3367. BEGIN
  3368. SYSTEM.GET( radr, rvalRe ); SYSTEM.GET( radr+SIZEOF(LONGREAL), rvalIm );
  3369. IF rvalIm # 0.0D0 THEN
  3370. v := 1.0D0/(rvalRe*rvalRe + rvalIm*rvalIm);
  3371. WHILE (len > 0) DO
  3372. SYSTEM.GET( ladr, lvalRe ); SYSTEM.GET( ladr+SIZEOF(LONGREAL), lvalIm );
  3373. dvalRe := v*(lvalRe*rvalRe+lvalIm*rvalIm);
  3374. dvalIm := v*(lvalIm*rvalRe-lvalRe*rvalIm);
  3375. SYSTEM.PUT( dadr, dvalRe ); SYSTEM.PUT( dadr+SIZEOF(LONGREAL), dvalIm );
  3376. INC( ladr, linc );
  3377. INC( dadr, dinc ); DEC( len );
  3378. END;
  3379. ELSE
  3380. WHILE (len > 0) DO
  3381. SYSTEM.GET( ladr, lvalRe ); SYSTEM.GET( ladr+SIZEOF(LONGREAL), lvalIm );
  3382. dvalRe := lvalRe / rvalRe; dvalIm := lvalIm / rvalRe;
  3383. SYSTEM.PUT( dadr, dvalRe ); SYSTEM.PUT( dadr+SIZEOF(LONGREAL), dvalIm );
  3384. INC( ladr, linc );
  3385. INC( dadr, dinc ); DEC( len );
  3386. END;
  3387. END;
  3388. END DivideALZSLZLoop;
  3389. OPERATOR "/"*(CONST left: ARRAY [ ? ] OF LONGCOMPLEX; right: LONGCOMPLEX ): ARRAY [ ? ] OF LONGCOMPLEX;
  3390. BEGIN
  3391. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3392. SIZEOF( LONGCOMPLEX ), DivideALZSLZLoop );
  3393. RETURN RESULT
  3394. END "/";
  3395. PROCEDURE DivideSLZALZLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3396. VAR lvalRe, lvalIm, rvalRe, rvalIm: LONGREAL; dvalRe, dvalIm: LONGREAL; v: LONGREAL;
  3397. BEGIN
  3398. SYSTEM.GET( radr, rvalRe ); SYSTEM.GET( radr+SIZEOF(LONGREAL), rvalIm );
  3399. WHILE (len > 0) DO
  3400. SYSTEM.GET( ladr, lvalRe ); SYSTEM.GET( ladr+SIZEOF(LONGREAL), lvalIm );
  3401. v := 1.0D0/(lvalRe*lvalRe + lvalIm*lvalIm);
  3402. dvalRe := v*(rvalRe*lvalRe+rvalIm*lvalIm);
  3403. dvalIm := v*(rvalIm*lvalRe-rvalRe*lvalIm);
  3404. SYSTEM.PUT( dadr, dvalRe ); SYSTEM.PUT( dadr+SIZEOF(LONGREAL), dvalIm );
  3405. INC( ladr, linc );
  3406. INC( dadr, dinc ); DEC( len );
  3407. END;
  3408. END DivideSLZALZLoop;
  3409. OPERATOR "/"*(left: LONGCOMPLEX; CONST right: ARRAY [ ? ] OF LONGCOMPLEX): ARRAY [ ? ] OF LONGCOMPLEX;
  3410. BEGIN
  3411. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  3412. SIZEOF( LONGCOMPLEX ), DivideSLZALZLoop );
  3413. RETURN RESULT
  3414. END "/";
  3415. (*** element-wise DIV array DIV array -> array ********************************************************************)
  3416. (** SHORTINT *)
  3417. PROCEDURE EDivASASLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3418. VAR lval, rval: SHORTINT; dval: SHORTINT;
  3419. BEGIN
  3420. WHILE (len > 0) DO
  3421. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := lval DIV rval;
  3422. SYSTEM.PUT( dadr, dval ); INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc );
  3423. DEC( len );
  3424. END;
  3425. END EDivASASLoop;
  3426. OPERATOR "DIV"*(CONST left,right: ARRAY [?] OF SHORTINT): ARRAY [?] OF SHORTINT;
  3427. BEGIN
  3428. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3429. SIZEOF( SHORTINT ), EDivASASLoop );
  3430. RETURN RESULT
  3431. END "DIV";
  3432. (** INTEGER *)
  3433. PROCEDURE EDivAIAILoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3434. VAR lval, rval: INTEGER; dval: INTEGER;
  3435. BEGIN
  3436. WHILE (len > 0) DO
  3437. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := lval DIV rval;
  3438. SYSTEM.PUT( dadr, dval ); INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc );
  3439. DEC( len );
  3440. END;
  3441. END EDivAIAILoop;
  3442. OPERATOR "DIV"*(CONST left,right: ARRAY [?] OF INTEGER): ARRAY [?] OF INTEGER;
  3443. BEGIN
  3444. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3445. SIZEOF( INTEGER ), EDivAIAILoop );
  3446. RETURN RESULT
  3447. END "DIV";
  3448. (** LONGINT *)
  3449. PROCEDURE EDivALALLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3450. VAR lval, rval: LONGINT; dval: LONGINT;
  3451. BEGIN
  3452. WHILE (len > 0) DO
  3453. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := lval DIV rval;
  3454. SYSTEM.PUT( dadr, dval ); INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc );
  3455. DEC( len );
  3456. END;
  3457. END EDivALALLoop;
  3458. OPERATOR "DIV"*(CONST left,right: ARRAY [?] OF LONGINT): ARRAY [?] OF LONGINT;
  3459. BEGIN
  3460. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3461. SIZEOF( LONGINT ), EDivALALLoop );
  3462. RETURN RESULT
  3463. END "DIV";
  3464. (*** division array DIV scalar -> array and scalar DIV array -> array ********************************************************************)
  3465. (** SHORTINT *)
  3466. PROCEDURE DivASSSLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3467. VAR lval, rval: SHORTINT; dval: SHORTINT;
  3468. BEGIN
  3469. SYSTEM.GET( radr, rval );
  3470. WHILE (len > 0) DO
  3471. SYSTEM.GET( ladr, lval ); dval := lval DIV rval; SYSTEM.PUT( dadr, dval );
  3472. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  3473. END;
  3474. END DivASSSLoop;
  3475. OPERATOR "DIV"*(CONST left: ARRAY [ ? ] OF SHORTINT; right: SHORTINT ): ARRAY [ ? ] OF SHORTINT;
  3476. BEGIN
  3477. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3478. SIZEOF( SHORTINT ), DivASSSLoop );
  3479. RETURN RESULT
  3480. END "DIV";
  3481. PROCEDURE DivSSASLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3482. VAR lval, rval: SHORTINT; dval: SHORTINT;
  3483. BEGIN
  3484. SYSTEM.GET( radr, rval );
  3485. WHILE (len > 0) DO
  3486. SYSTEM.GET( ladr, lval ); dval := rval DIV lval; SYSTEM.PUT( dadr, dval );
  3487. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  3488. END;
  3489. END DivSSASLoop;
  3490. OPERATOR "DIV"*(left: SHORTINT; CONST right: ARRAY [ ? ] OF SHORTINT): ARRAY [ ? ] OF SHORTINT;
  3491. BEGIN
  3492. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  3493. SIZEOF( SHORTINT ), DivSSASLoop );
  3494. RETURN RESULT
  3495. END "DIV";
  3496. (** INTEGER *)
  3497. PROCEDURE DivAISILoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3498. VAR lval, rval: INTEGER; dval: INTEGER;
  3499. BEGIN
  3500. SYSTEM.GET( radr, rval );
  3501. WHILE (len > 0) DO
  3502. SYSTEM.GET( ladr, lval ); dval := lval DIV rval; SYSTEM.PUT( dadr, dval );
  3503. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  3504. END;
  3505. END DivAISILoop;
  3506. OPERATOR "DIV"*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): ARRAY [ ? ] OF INTEGER;
  3507. BEGIN
  3508. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3509. SIZEOF( INTEGER ), DivAISILoop );
  3510. RETURN RESULT
  3511. END "DIV";
  3512. PROCEDURE DivSIAILoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3513. VAR lval, rval: INTEGER; dval: INTEGER;
  3514. BEGIN
  3515. SYSTEM.GET( radr, rval );
  3516. WHILE (len > 0) DO
  3517. SYSTEM.GET( ladr, lval ); dval := rval DIV lval; SYSTEM.PUT( dadr, dval );
  3518. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  3519. END;
  3520. END DivSIAILoop;
  3521. OPERATOR "DIV"*(left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER): ARRAY [ ? ] OF INTEGER;
  3522. BEGIN
  3523. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  3524. SIZEOF( INTEGER ), DivSIAILoop );
  3525. RETURN RESULT
  3526. END "DIV";
  3527. (** LONGINT *)
  3528. PROCEDURE DivALSLLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3529. VAR lval, rval: LONGINT; dval: LONGINT;
  3530. BEGIN
  3531. SYSTEM.GET( radr, rval );
  3532. WHILE (len > 0) DO
  3533. SYSTEM.GET( ladr, lval ); dval := lval DIV rval; SYSTEM.PUT( dadr, dval );
  3534. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  3535. END;
  3536. END DivALSLLoop;
  3537. OPERATOR "DIV"*(CONST left: ARRAY [ ? ] OF LONGINT; right: LONGINT ): ARRAY [ ? ] OF LONGINT;
  3538. BEGIN
  3539. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3540. SIZEOF( LONGINT ), DivALSLLoop );
  3541. RETURN RESULT
  3542. END "DIV";
  3543. PROCEDURE DivSLALLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3544. VAR lval, rval: LONGINT; dval: LONGINT;
  3545. BEGIN
  3546. SYSTEM.GET( radr, rval );
  3547. WHILE (len > 0) DO
  3548. SYSTEM.GET( ladr, lval ); dval := rval DIV lval; SYSTEM.PUT( dadr, dval );
  3549. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  3550. END;
  3551. END DivSLALLoop;
  3552. OPERATOR "DIV"*(left: LONGINT; CONST right: ARRAY [ ? ] OF LONGINT): ARRAY [ ? ] OF LONGINT;
  3553. BEGIN
  3554. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  3555. SIZEOF( LONGINT ), DivSLALLoop );
  3556. RETURN RESULT
  3557. END "DIV";
  3558. (*** element-wise modulus array MOD array -> array ********************************************************************)
  3559. (** SHORTINT *)
  3560. PROCEDURE EModASASLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3561. VAR lval, rval: SHORTINT; dval: SHORTINT;
  3562. BEGIN
  3563. WHILE (len > 0) DO
  3564. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := lval MOD rval;
  3565. SYSTEM.PUT( dadr, dval ); INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc );
  3566. DEC( len );
  3567. END;
  3568. END EModASASLoop;
  3569. OPERATOR "MOD"*(CONST left,right: ARRAY [?] OF SHORTINT): ARRAY [?] OF SHORTINT;
  3570. BEGIN
  3571. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3572. SIZEOF( SHORTINT ), EModASASLoop );
  3573. RETURN RESULT
  3574. END "MOD";
  3575. (** INTEGER *)
  3576. PROCEDURE EModAIAILoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3577. VAR lval, rval: INTEGER; dval: INTEGER;
  3578. BEGIN
  3579. WHILE (len > 0) DO
  3580. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := lval MOD rval;
  3581. SYSTEM.PUT( dadr, dval ); INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc );
  3582. DEC( len );
  3583. END;
  3584. END EModAIAILoop;
  3585. OPERATOR "MOD"*(CONST left,right: ARRAY [?] OF INTEGER): ARRAY [?] OF INTEGER;
  3586. BEGIN
  3587. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3588. SIZEOF( INTEGER ), EModAIAILoop );
  3589. RETURN RESULT
  3590. END "MOD";
  3591. (** LONGINT *)
  3592. PROCEDURE EModALALLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3593. VAR lval, rval: LONGINT; dval: LONGINT;
  3594. BEGIN
  3595. WHILE (len > 0) DO
  3596. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := lval MOD rval;
  3597. SYSTEM.PUT( dadr, dval ); INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc );
  3598. DEC( len );
  3599. END;
  3600. END EModALALLoop;
  3601. OPERATOR "MOD"*(CONST left,right: ARRAY [?] OF LONGINT): ARRAY [?] OF LONGINT;
  3602. BEGIN
  3603. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3604. SIZEOF( LONGINT ), EModALALLoop );
  3605. RETURN RESULT
  3606. END "MOD";
  3607. (*** modulus array MOD scalar -> array and scalar MOD array -> array ********************************************************************)
  3608. (** SHORTINT *)
  3609. PROCEDURE ModASSSLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3610. VAR lval, rval: SHORTINT; dval: SHORTINT;
  3611. BEGIN
  3612. SYSTEM.GET( radr, rval );
  3613. WHILE (len > 0) DO
  3614. SYSTEM.GET( ladr, lval ); dval := lval MOD rval; SYSTEM.PUT( dadr, dval );
  3615. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  3616. END;
  3617. END ModASSSLoop;
  3618. OPERATOR "MOD"*(CONST left: ARRAY [ ? ] OF SHORTINT; right: SHORTINT ): ARRAY [ ? ] OF SHORTINT;
  3619. BEGIN
  3620. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3621. SIZEOF( SHORTINT ), ModASSSLoop );
  3622. RETURN RESULT
  3623. END "MOD";
  3624. PROCEDURE ModSSASLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3625. VAR lval, rval: SHORTINT; dval: SHORTINT;
  3626. BEGIN
  3627. SYSTEM.GET( radr, rval );
  3628. WHILE (len > 0) DO
  3629. SYSTEM.GET( ladr, lval ); dval := rval MOD lval; SYSTEM.PUT( dadr, dval );
  3630. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  3631. END;
  3632. END ModSSASLoop;
  3633. OPERATOR "MOD"*(left: SHORTINT; CONST right: ARRAY [ ? ] OF SHORTINT): ARRAY [ ? ] OF SHORTINT;
  3634. BEGIN
  3635. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  3636. SIZEOF( SHORTINT ), ModSSASLoop );
  3637. RETURN RESULT
  3638. END "MOD";
  3639. (** INTEGER *)
  3640. PROCEDURE ModAISILoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3641. VAR lval, rval: INTEGER; dval: INTEGER;
  3642. BEGIN
  3643. SYSTEM.GET( radr, rval );
  3644. WHILE (len > 0) DO
  3645. SYSTEM.GET( ladr, lval ); dval := lval MOD rval; SYSTEM.PUT( dadr, dval );
  3646. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  3647. END;
  3648. END ModAISILoop;
  3649. OPERATOR "MOD"*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): ARRAY [ ? ] OF INTEGER;
  3650. BEGIN
  3651. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3652. SIZEOF( INTEGER ), ModAISILoop );
  3653. RETURN RESULT
  3654. END "MOD";
  3655. PROCEDURE ModSIAILoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3656. VAR lval, rval: INTEGER; dval: INTEGER;
  3657. BEGIN
  3658. SYSTEM.GET( radr, rval );
  3659. WHILE (len > 0) DO
  3660. SYSTEM.GET( ladr, lval ); dval := rval MOD lval; SYSTEM.PUT( dadr, dval );
  3661. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  3662. END;
  3663. END ModSIAILoop;
  3664. OPERATOR "MOD"*(left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER): ARRAY [ ? ] OF INTEGER;
  3665. BEGIN
  3666. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  3667. SIZEOF( INTEGER ), ModSIAILoop );
  3668. RETURN RESULT
  3669. END "MOD";
  3670. (** LONGINT *)
  3671. PROCEDURE ModALSLLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3672. VAR lval, rval: LONGINT; dval: LONGINT;
  3673. BEGIN
  3674. SYSTEM.GET( radr, rval );
  3675. WHILE (len > 0) DO
  3676. SYSTEM.GET( ladr, lval ); dval := lval MOD rval; SYSTEM.PUT( dadr, dval );
  3677. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  3678. END;
  3679. END ModALSLLoop;
  3680. OPERATOR "MOD"*(CONST left: ARRAY [ ? ] OF LONGINT; right: LONGINT ): ARRAY [ ? ] OF LONGINT;
  3681. BEGIN
  3682. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3683. SIZEOF( LONGINT ), ModALSLLoop );
  3684. RETURN RESULT
  3685. END "MOD";
  3686. PROCEDURE ModSLALLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3687. VAR lval, rval: LONGINT; dval: LONGINT;
  3688. BEGIN
  3689. SYSTEM.GET( radr, rval );
  3690. WHILE (len > 0) DO
  3691. SYSTEM.GET( ladr, lval ); dval := rval MOD lval; SYSTEM.PUT( dadr, dval );
  3692. INC( ladr, linc ); INC( dadr, dinc ); DEC( len );
  3693. END;
  3694. END ModSLALLoop;
  3695. OPERATOR "MOD"*(left: LONGINT; CONST right: ARRAY [ ? ] OF LONGINT): ARRAY [ ? ] OF LONGINT;
  3696. BEGIN
  3697. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  3698. SIZEOF( LONGINT ), ModSLALLoop );
  3699. RETURN RESULT
  3700. END "MOD";
  3701. (*** scalar product <array,array> -> scalar ********************************************************************)
  3702. (** SHORTINT *)
  3703. PROCEDURE SPASASLoop( ladr, radr, dadr, linc, rinc, len: LONGINT );
  3704. VAR lval, rval: SHORTINT; dval: LONGINT;
  3705. BEGIN
  3706. SYSTEM.GET( dadr, dval );
  3707. WHILE (len > 0) DO
  3708. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := dval + rval * lval;
  3709. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  3710. END;
  3711. SYSTEM.PUT( dadr, dval );
  3712. END SPASASLoop;
  3713. OPERATOR "+*"*( CONST left, right: ARRAY [ ? ] OF SHORTINT ): LONGINT;
  3714. VAR dest: LONGINT;
  3715. BEGIN
  3716. dest := 0;
  3717. ApplyBinaryAASOp( ADDRESSOF( dest ), ADDRESSOF( left ), ADDRESSOF( right ), SPASASLoop );
  3718. RETURN dest;
  3719. END "+*";
  3720. (** INTEGER *)
  3721. PROCEDURE SPAIAILoop( ladr, radr, dadr, linc, rinc, len: LONGINT );
  3722. VAR lval, rval: INTEGER; dval: LONGINT;
  3723. BEGIN
  3724. SYSTEM.GET( dadr, dval );
  3725. WHILE (len > 0) DO
  3726. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := dval + rval * lval;
  3727. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  3728. END;
  3729. SYSTEM.PUT( dadr, dval );
  3730. END SPAIAILoop;
  3731. OPERATOR "+*"*( CONST left, right: ARRAY [ ? ] OF INTEGER ): LONGINT;
  3732. VAR dest: LONGINT;
  3733. BEGIN
  3734. dest := 0;
  3735. ApplyBinaryAASOp( ADDRESSOF( dest ), ADDRESSOF( left ), ADDRESSOF( right ), SPAIAILoop );
  3736. RETURN dest;
  3737. END "+*";
  3738. (** LONGINT *)
  3739. PROCEDURE SPALALLoop( ladr, radr, dadr, linc, rinc, len: LONGINT );
  3740. VAR lval, rval: LONGINT; dval: LONGINT;
  3741. BEGIN
  3742. SYSTEM.GET( dadr, dval );
  3743. WHILE (len > 0) DO
  3744. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := dval + rval * lval;
  3745. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  3746. END;
  3747. SYSTEM.PUT( dadr, dval );
  3748. END SPALALLoop;
  3749. OPERATOR "+*"*( CONST left, right: ARRAY [ ? ] OF LONGINT ): LONGINT;
  3750. VAR dest: LONGINT;
  3751. BEGIN
  3752. dest := 0;
  3753. ApplyBinaryAASOp( ADDRESSOF( dest ), ADDRESSOF( left ), ADDRESSOF( right ), SPALALLoop );
  3754. RETURN dest;
  3755. END "+*";
  3756. (** REAL *)
  3757. PROCEDURE SPARARLoop( ladr, radr, dadr, linc, rinc, len: LONGINT );
  3758. VAR lval, rval: REAL; dval: REAL;
  3759. BEGIN
  3760. SYSTEM.GET( dadr, dval );
  3761. WHILE (len > 0) DO
  3762. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := dval + rval * lval;
  3763. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  3764. END;
  3765. SYSTEM.PUT( dadr, dval );
  3766. END SPARARLoop;
  3767. OPERATOR "+*"*( CONST left, right: ARRAY [ ? ] OF REAL ): REAL;
  3768. VAR dest: REAL;
  3769. BEGIN
  3770. dest := 0;
  3771. ApplyBinaryAASOp( ADDRESSOF( dest ), ADDRESSOF( left ), ADDRESSOF( right ), loopSPARAR );
  3772. RETURN dest;
  3773. END "+*";
  3774. PROCEDURE SPAXAXLoop( ladr, radr, dadr, linc, rinc, len: LONGINT );
  3775. VAR lval, rval, dval: LONGREAL;
  3776. BEGIN
  3777. IF debug THEN
  3778. KernelLog.String( "SPAXAX, ladr,radr,dadr,linc,rinc,len= " ); KernelLog.Int( ladr, 10 ); KernelLog.Int( radr, 10 );
  3779. KernelLog.Int( dadr, 10 ); KernelLog.Int( linc, 10 ); KernelLog.Int( rinc, 10 );
  3780. KernelLog.Int( len, 10 ); KernelLog.Ln;
  3781. END;
  3782. SYSTEM.GET( dadr, dval );
  3783. WHILE (len > 0) DO
  3784. SYSTEM.GET( ladr, lval ); INC( ladr, linc ); SYSTEM.GET( radr, rval ); INC( radr, rinc );
  3785. dval := dval + rval * lval; DEC( len );
  3786. END;
  3787. SYSTEM.PUT( dadr, dval );
  3788. END SPAXAXLoop;
  3789. OPERATOR "+*"*( CONST left, right: ARRAY [ ? ] OF LONGREAL ): LONGREAL;
  3790. VAR dest: LONGREAL;
  3791. BEGIN
  3792. dest := 0;
  3793. ApplyBinaryAASOp( ADDRESSOF( dest ), ADDRESSOF( left ), ADDRESSOF( right ), loopSPAXAX );
  3794. RETURN dest;
  3795. END "+*";
  3796. (** COMPLEX *)
  3797. PROCEDURE SPAZAZLoop( ladr, radr, dadr, linc, rinc, len: LONGINT );
  3798. VAR lval, rval: COMPLEX; dval: COMPLEX;
  3799. BEGIN
  3800. SYSTEM.GET( dadr, dval );
  3801. WHILE (len > 0) DO
  3802. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  3803. RE(dval) := RE(dval) + RE(lval) * RE(rval) + IM(lval) * IM(rval);
  3804. IM(dval) := IM(dval) - RE(lval) * IM(rval) + IM(lval) * RE(rval);
  3805. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  3806. END;
  3807. SYSTEM.PUT( dadr, dval );
  3808. END SPAZAZLoop;
  3809. OPERATOR "+*"*( CONST left, right: ARRAY [ ? ] OF COMPLEX ): COMPLEX;
  3810. VAR dest: COMPLEX;
  3811. BEGIN
  3812. dest := 0;
  3813. ApplyBinaryAASOp( ADDRESSOF( dest ), ADDRESSOF( left ), ADDRESSOF( right ), loopSPAZAZ );
  3814. RETURN dest;
  3815. END "+*";
  3816. (** COMPLEX *)
  3817. PROCEDURE SPALZALZLoop( ladr, radr, dadr, linc, rinc, len: LONGINT );
  3818. VAR lvalRe, lvalIm, rvalRe, rvalIm: LONGREAL; dvalRe, dvalIm: LONGREAL;
  3819. BEGIN
  3820. SYSTEM.GET( dadr, dvalRe ); SYSTEM.GET( dadr+SIZEOF(LONGREAL), dvalIm );
  3821. WHILE (len > 0) DO
  3822. SYSTEM.GET( ladr, lvalRe ); SYSTEM.GET( ladr+SIZEOF(LONGREAL), lvalIm );
  3823. SYSTEM.GET( radr, rvalRe ); SYSTEM.GET( radr+SIZEOF(LONGREAL), rvalIm );
  3824. dvalRe := dvalRe + lvalRe * rvalRe + lvalIm * rvalIm;
  3825. dvalIm := dvalIm - lvalRe * rvalIm + lvalIm * rvalRe;
  3826. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  3827. END;
  3828. SYSTEM.PUT( dadr, dvalRe ); SYSTEM.PUT( dadr+SIZEOF(LONGREAL), dvalIm );
  3829. END SPALZALZLoop;
  3830. OPERATOR "+*"*( CONST left, right: ARRAY [ ? ] OF LONGCOMPLEX ): LONGCOMPLEX;
  3831. VAR dest: LONGCOMPLEX;
  3832. BEGIN
  3833. dest := 0;
  3834. ApplyBinaryAASOp( ADDRESSOF( dest ), ADDRESSOF( left ), ADDRESSOF( right ), loopSPALZALZ );
  3835. RETURN dest;
  3836. END "+*";
  3837. (*** element-wise equal: array x array -> array of boolean ********************************************************************)
  3838. (** BOOLEAN *)
  3839. PROCEDURE EEqlABABLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3840. VAR lval, rval: BOOLEAN;
  3841. BEGIN
  3842. WHILE (len > 0) DO
  3843. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval = rval );
  3844. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  3845. END;
  3846. END EEqlABABLoop;
  3847. OPERATOR ".="*(CONST left,right : ARRAY [?] OF BOOLEAN):ARRAY [ ? ] OF BOOLEAN;
  3848. BEGIN
  3849. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3850. SIZEOF( BOOLEAN ), EEqlABABLoop );
  3851. RETURN RESULT
  3852. END ".=";
  3853. (** SHORTINT *)
  3854. PROCEDURE EEqlASASLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3855. VAR lval, rval: SHORTINT;
  3856. BEGIN
  3857. WHILE (len > 0) DO
  3858. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval = rval );
  3859. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  3860. END;
  3861. END EEqlASASLoop;
  3862. OPERATOR ".="*(CONST left, right: ARRAY [ ? ] OF SHORTINT ): ARRAY [ ? ] OF BOOLEAN;
  3863. BEGIN
  3864. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3865. SIZEOF( BOOLEAN ), EEqlASASLoop );
  3866. RETURN RESULT
  3867. END ".=";
  3868. (** INTEGER *)
  3869. PROCEDURE EEqlAIAILoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3870. VAR lval, rval: INTEGER;
  3871. BEGIN
  3872. WHILE (len > 0) DO
  3873. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval = rval );
  3874. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  3875. END;
  3876. END EEqlAIAILoop;
  3877. OPERATOR ".="*(CONST left, right: ARRAY [ ? ] OF INTEGER ): ARRAY [ ? ] OF BOOLEAN;
  3878. BEGIN
  3879. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3880. SIZEOF( BOOLEAN ), EEqlAIAILoop );
  3881. RETURN RESULT
  3882. END ".=";
  3883. (** LONGINT *)
  3884. PROCEDURE EEqlALALLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3885. VAR lval, rval: LONGINT;
  3886. BEGIN
  3887. WHILE (len > 0) DO
  3888. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval = rval );
  3889. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  3890. END;
  3891. END EEqlALALLoop;
  3892. OPERATOR ".="*(CONST left, right: ARRAY [ ? ] OF LONGINT ): ARRAY [ ? ] OF BOOLEAN;
  3893. BEGIN
  3894. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3895. SIZEOF( BOOLEAN ), EEqlALALLoop );
  3896. RETURN RESULT
  3897. END ".=";
  3898. (** REAL *)
  3899. PROCEDURE EEqlARARLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3900. VAR lval, rval: REAL;
  3901. BEGIN
  3902. WHILE (len > 0) DO
  3903. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval = rval );
  3904. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  3905. END;
  3906. END EEqlARARLoop;
  3907. OPERATOR ".="*(CONST left, right: ARRAY [ ? ] OF REAL ): ARRAY [ ? ] OF BOOLEAN;
  3908. BEGIN
  3909. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3910. SIZEOF( BOOLEAN ), EEqlARARLoop );
  3911. RETURN RESULT
  3912. END ".=";
  3913. (** LONGREAL *)
  3914. PROCEDURE EEqlAXAXLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  3915. VAR lval, rval: LONGREAL;
  3916. BEGIN
  3917. WHILE (len > 0) DO
  3918. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval = rval );
  3919. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  3920. END;
  3921. END EEqlAXAXLoop;
  3922. OPERATOR ".="*(CONST left, right: ARRAY [ ? ] OF LONGREAL ): ARRAY [ ? ] OF BOOLEAN;
  3923. BEGIN
  3924. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3925. SIZEOF( BOOLEAN ), EEqlAXAXLoop );
  3926. RETURN RESULT
  3927. END ".=";
  3928. (*** elementwise equal array x scalar -> array of boolean ********************************************************************)
  3929. (** BOOLEAN *)
  3930. PROCEDURE EEqlABSBLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3931. VAR lval, rval: BOOLEAN;
  3932. BEGIN
  3933. SYSTEM.GET( radr, rval );
  3934. WHILE (len > 0) DO
  3935. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval = rval ); INC( ladr, linc );
  3936. INC( dadr, dinc ); DEC( len );
  3937. END;
  3938. END EEqlABSBLoop;
  3939. OPERATOR ".="*(CONST left : ARRAY [?] OF BOOLEAN; right: BOOLEAN):ARRAY [ ? ] OF BOOLEAN;
  3940. BEGIN
  3941. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3942. SIZEOF( BOOLEAN ), EEqlABSBLoop );
  3943. RETURN RESULT
  3944. END ".=";
  3945. OPERATOR ".="*(left: BOOLEAN; CONST right : ARRAY [?] OF BOOLEAN):ARRAY [ ? ] OF BOOLEAN;
  3946. BEGIN
  3947. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  3948. SIZEOF( BOOLEAN ), EEqlABSBLoop );
  3949. RETURN RESULT
  3950. END ".=";
  3951. (** SHORTINT *)
  3952. PROCEDURE EEqlASSSLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3953. VAR lval, rval: SHORTINT;
  3954. BEGIN
  3955. SYSTEM.GET( radr, rval );
  3956. WHILE (len > 0) DO
  3957. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval = rval ); INC( ladr, linc );
  3958. INC( dadr, dinc ); DEC( len );
  3959. END;
  3960. END EEqlASSSLoop;
  3961. OPERATOR ".="*(CONST left: ARRAY [ ? ] OF SHORTINT; right: SHORTINT ): ARRAY [ ? ] OF BOOLEAN;
  3962. BEGIN
  3963. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3964. SIZEOF( BOOLEAN ), EEqlASSSLoop );
  3965. RETURN RESULT
  3966. END ".=";
  3967. OPERATOR ".="*(left: SHORTINT; CONST right: ARRAY [ ? ] OF SHORTINT): ARRAY [ ? ] OF BOOLEAN;
  3968. BEGIN
  3969. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  3970. SIZEOF( BOOLEAN ), EEqlASSSLoop );
  3971. RETURN RESULT
  3972. END ".=";
  3973. (** INTEGER *)
  3974. PROCEDURE EEqlAISILoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3975. VAR lval, rval: INTEGER;
  3976. BEGIN
  3977. SYSTEM.GET( radr, rval );
  3978. WHILE (len > 0) DO
  3979. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval = rval ); INC( ladr, linc );
  3980. INC( dadr, dinc ); DEC( len );
  3981. END;
  3982. END EEqlAISILoop;
  3983. OPERATOR ".="*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): ARRAY [ ? ] OF BOOLEAN;
  3984. BEGIN
  3985. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  3986. SIZEOF( BOOLEAN ), EEqlAISILoop );
  3987. RETURN RESULT
  3988. END ".=";
  3989. OPERATOR ".="*(left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER): ARRAY [ ? ] OF BOOLEAN;
  3990. BEGIN
  3991. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  3992. SIZEOF( BOOLEAN ), EEqlAISILoop );
  3993. RETURN RESULT
  3994. END ".=";
  3995. (** LONGINT *)
  3996. PROCEDURE EEqlALSLLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  3997. VAR lval, rval: LONGINT;
  3998. BEGIN
  3999. SYSTEM.GET( radr, rval );
  4000. WHILE (len > 0) DO
  4001. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval = rval ); INC( ladr, linc );
  4002. INC( dadr, dinc ); DEC( len );
  4003. END;
  4004. END EEqlALSLLoop;
  4005. OPERATOR ".="*(CONST left: ARRAY [ ? ] OF LONGINT; right: LONGINT ): ARRAY [ ? ] OF BOOLEAN;
  4006. BEGIN
  4007. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4008. SIZEOF( BOOLEAN ), EEqlALSLLoop );
  4009. RETURN RESULT
  4010. END ".=";
  4011. OPERATOR ".="*(left: LONGINT; CONST right: ARRAY [ ? ] OF LONGINT): ARRAY [ ? ] OF BOOLEAN;
  4012. BEGIN
  4013. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4014. SIZEOF( BOOLEAN ), EEqlALSLLoop );
  4015. RETURN RESULT
  4016. END ".=";
  4017. (** REAL *)
  4018. PROCEDURE EEqlARSRLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4019. VAR lval, rval: REAL;
  4020. BEGIN
  4021. SYSTEM.GET( radr, rval );
  4022. WHILE (len > 0) DO
  4023. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval = rval ); INC( ladr, linc );
  4024. INC( dadr, dinc ); DEC( len );
  4025. END;
  4026. END EEqlARSRLoop;
  4027. OPERATOR ".="*(CONST left: ARRAY [ ? ] OF REAL; right: REAL ): ARRAY [ ? ] OF BOOLEAN;
  4028. BEGIN
  4029. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4030. SIZEOF( BOOLEAN ), EEqlARSRLoop );
  4031. RETURN RESULT
  4032. END ".=";
  4033. OPERATOR ".="*(left: REAL; CONST right: ARRAY [ ? ] OF REAL): ARRAY [ ? ] OF BOOLEAN;
  4034. BEGIN
  4035. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4036. SIZEOF( BOOLEAN ), EEqlARSRLoop );
  4037. RETURN RESULT
  4038. END ".=";
  4039. (** LONGREAL *)
  4040. PROCEDURE EEqlAXSXLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4041. VAR lval, rval: LONGREAL;
  4042. BEGIN
  4043. SYSTEM.GET( radr, rval );
  4044. WHILE (len > 0) DO
  4045. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval = rval ); INC( ladr, linc );
  4046. INC( dadr, dinc ); DEC( len );
  4047. END;
  4048. END EEqlAXSXLoop;
  4049. OPERATOR ".="*(CONST left: ARRAY [ ? ] OF LONGREAL; right: LONGREAL ): ARRAY [ ? ] OF BOOLEAN;
  4050. BEGIN
  4051. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4052. SIZEOF( BOOLEAN ), EEqlAXSXLoop );
  4053. RETURN RESULT
  4054. END ".=";
  4055. OPERATOR ".="*(left: LONGREAL; CONST right: ARRAY [ ? ] OF LONGREAL): ARRAY [ ? ] OF BOOLEAN;
  4056. BEGIN
  4057. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4058. SIZEOF( BOOLEAN ), EEqlAXSXLoop );
  4059. RETURN RESULT
  4060. END ".=";
  4061. (*** elementwise nequal: array x array -> array of boolean ********************************************************************)
  4062. (** BOOLEAN *)
  4063. PROCEDURE ENeqABABLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4064. VAR lval, rval: BOOLEAN;
  4065. BEGIN
  4066. WHILE (len > 0) DO
  4067. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval # rval );
  4068. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4069. END;
  4070. END ENeqABABLoop;
  4071. OPERATOR ".#"*(CONST left,right : ARRAY [?] OF BOOLEAN):ARRAY [ ? ] OF BOOLEAN;
  4072. BEGIN
  4073. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4074. SIZEOF( BOOLEAN ), ENeqABABLoop );
  4075. RETURN RESULT
  4076. END ".#";
  4077. (** SHORTINT *)
  4078. PROCEDURE ENeqASASLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4079. VAR lval, rval: SHORTINT;
  4080. BEGIN
  4081. WHILE (len > 0) DO
  4082. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval # rval );
  4083. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4084. END;
  4085. END ENeqASASLoop;
  4086. OPERATOR ".#"*(CONST left, right: ARRAY [ ? ] OF SHORTINT ): ARRAY [ ? ] OF BOOLEAN;
  4087. BEGIN
  4088. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4089. SIZEOF( BOOLEAN ), ENeqASASLoop );
  4090. RETURN RESULT
  4091. END ".#";
  4092. (** INTEGER*)
  4093. PROCEDURE ENeqAIAILoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4094. VAR lval, rval: INTEGER;
  4095. BEGIN
  4096. WHILE (len > 0) DO
  4097. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval # rval );
  4098. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4099. END;
  4100. END ENeqAIAILoop;
  4101. OPERATOR ".#"*(CONST left, right: ARRAY [ ? ] OF INTEGER ): ARRAY [ ? ] OF BOOLEAN;
  4102. BEGIN
  4103. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4104. SIZEOF( BOOLEAN ), ENeqAIAILoop );
  4105. RETURN RESULT
  4106. END ".#";
  4107. (** LONGINT*)
  4108. PROCEDURE ENeqALALLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4109. VAR lval, rval: LONGINT;
  4110. BEGIN
  4111. WHILE (len > 0) DO
  4112. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval # rval );
  4113. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4114. END;
  4115. END ENeqALALLoop;
  4116. OPERATOR ".#"*(CONST left, right: ARRAY [ ? ] OF LONGINT ): ARRAY [ ? ] OF BOOLEAN;
  4117. BEGIN
  4118. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4119. SIZEOF( BOOLEAN ), ENeqALALLoop );
  4120. RETURN RESULT
  4121. END ".#";
  4122. (** REAL *)
  4123. PROCEDURE ENeqARARLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4124. VAR lval, rval: REAL;
  4125. BEGIN
  4126. WHILE (len > 0) DO
  4127. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval # rval );
  4128. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4129. END;
  4130. END ENeqARARLoop;
  4131. OPERATOR ".#"*(CONST left, right: ARRAY [ ? ] OF REAL ): ARRAY [ ? ] OF BOOLEAN;
  4132. BEGIN
  4133. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4134. SIZEOF( BOOLEAN ), ENeqARARLoop );
  4135. RETURN RESULT
  4136. END ".#";
  4137. (** LONGREAL *)
  4138. PROCEDURE ENeqAXAXLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4139. VAR lval, rval: LONGREAL;
  4140. BEGIN
  4141. WHILE (len > 0) DO
  4142. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval # rval );
  4143. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4144. END;
  4145. END ENeqAXAXLoop;
  4146. OPERATOR ".#"*(CONST left, right: ARRAY [ ? ] OF LONGREAL ): ARRAY [ ? ] OF BOOLEAN;
  4147. BEGIN
  4148. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4149. SIZEOF( BOOLEAN ), ENeqAXAXLoop );
  4150. RETURN RESULT
  4151. END ".#";
  4152. (*** elementwise nequal array x scalar -> array of boolean ********************************************************************)
  4153. (** BOOLEAN *)
  4154. PROCEDURE ENeqABSBLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4155. VAR lval, rval: BOOLEAN;
  4156. BEGIN
  4157. SYSTEM.GET( radr, rval );
  4158. WHILE (len > 0) DO
  4159. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval # rval ); INC( ladr, linc );
  4160. INC( dadr, dinc ); DEC( len );
  4161. END;
  4162. END ENeqABSBLoop;
  4163. OPERATOR ".#"*(CONST left : ARRAY [?] OF BOOLEAN; right: BOOLEAN):ARRAY [ ? ] OF BOOLEAN;
  4164. BEGIN
  4165. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4166. SIZEOF( BOOLEAN ), ENeqABSBLoop );
  4167. RETURN RESULT
  4168. END ".#";
  4169. OPERATOR ".#"*(left: BOOLEAN; CONST right : ARRAY [?] OF BOOLEAN):ARRAY [ ? ] OF BOOLEAN;
  4170. BEGIN
  4171. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4172. SIZEOF( BOOLEAN ), ENeqABSBLoop );
  4173. RETURN RESULT
  4174. END ".#";
  4175. (** SHORTINT *)
  4176. PROCEDURE ENeqASSSLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4177. VAR lval, rval: SHORTINT;
  4178. BEGIN
  4179. SYSTEM.GET( radr, rval );
  4180. WHILE (len > 0) DO
  4181. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval # rval ); INC( ladr, linc );
  4182. INC( dadr, dinc ); DEC( len );
  4183. END;
  4184. END ENeqASSSLoop;
  4185. OPERATOR ".#"*(CONST left: ARRAY [ ? ] OF SHORTINT; right: SHORTINT ): ARRAY [ ? ] OF BOOLEAN;
  4186. BEGIN
  4187. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4188. SIZEOF( BOOLEAN ), ENeqASSSLoop );
  4189. RETURN RESULT
  4190. END ".#";
  4191. OPERATOR ".#"*(left: SHORTINT; CONST right: ARRAY [ ? ] OF SHORTINT): ARRAY [ ? ] OF BOOLEAN;
  4192. BEGIN
  4193. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4194. SIZEOF( BOOLEAN ), ENeqASSSLoop );
  4195. RETURN RESULT
  4196. END ".#";
  4197. (** INTEGER *)
  4198. PROCEDURE ENeqAISILoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4199. VAR lval, rval: INTEGER;
  4200. BEGIN
  4201. SYSTEM.GET( radr, rval );
  4202. WHILE (len > 0) DO
  4203. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval # rval ); INC( ladr, linc );
  4204. INC( dadr, dinc ); DEC( len );
  4205. END;
  4206. END ENeqAISILoop;
  4207. OPERATOR ".#"*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): ARRAY [ ? ] OF BOOLEAN;
  4208. BEGIN
  4209. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4210. SIZEOF( BOOLEAN ), ENeqAISILoop );
  4211. RETURN RESULT
  4212. END ".#";
  4213. OPERATOR ".#"*(left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER): ARRAY [ ? ] OF BOOLEAN;
  4214. BEGIN
  4215. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4216. SIZEOF( BOOLEAN ), ENeqAISILoop );
  4217. RETURN RESULT
  4218. END ".#";
  4219. (** LONGINT *)
  4220. PROCEDURE ENeqALSLLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4221. VAR lval, rval: LONGINT;
  4222. BEGIN
  4223. SYSTEM.GET( radr, rval );
  4224. WHILE (len > 0) DO
  4225. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval # rval ); INC( ladr, linc );
  4226. INC( dadr, dinc ); DEC( len );
  4227. END;
  4228. END ENeqALSLLoop;
  4229. OPERATOR ".#"*(CONST left: ARRAY [ ? ] OF LONGINT; right: LONGINT ): ARRAY [ ? ] OF BOOLEAN;
  4230. BEGIN
  4231. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4232. SIZEOF( BOOLEAN ), ENeqALSLLoop );
  4233. RETURN RESULT
  4234. END ".#";
  4235. OPERATOR ".#"*(left: LONGINT; CONST right: ARRAY [ ? ] OF LONGINT): ARRAY [ ? ] OF BOOLEAN;
  4236. BEGIN
  4237. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4238. SIZEOF( BOOLEAN ), ENeqALSLLoop );
  4239. RETURN RESULT
  4240. END ".#";
  4241. (** REAL *)
  4242. PROCEDURE ENeqARSRLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4243. VAR lval, rval: REAL;
  4244. BEGIN
  4245. SYSTEM.GET( radr, rval );
  4246. WHILE (len > 0) DO
  4247. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval # rval ); INC( ladr, linc );
  4248. INC( dadr, dinc ); DEC( len );
  4249. END;
  4250. END ENeqARSRLoop;
  4251. OPERATOR ".#"*(CONST left: ARRAY [ ? ] OF REAL; right: REAL ): ARRAY [ ? ] OF BOOLEAN;
  4252. BEGIN
  4253. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4254. SIZEOF( BOOLEAN ), ENeqARSRLoop );
  4255. RETURN RESULT
  4256. END ".#";
  4257. OPERATOR ".#"*(left: REAL; CONST right: ARRAY [ ? ] OF REAL): ARRAY [ ? ] OF BOOLEAN;
  4258. BEGIN
  4259. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4260. SIZEOF( BOOLEAN ), ENeqARSRLoop );
  4261. RETURN RESULT
  4262. END ".#";
  4263. (** LONGREAL *)
  4264. PROCEDURE ENeqAXSXLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4265. VAR lval, rval: LONGREAL;
  4266. BEGIN
  4267. SYSTEM.GET( radr, rval );
  4268. WHILE (len > 0) DO
  4269. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval # rval ); INC( ladr, linc );
  4270. INC( dadr, dinc ); DEC( len );
  4271. END;
  4272. END ENeqAXSXLoop;
  4273. OPERATOR ".#"*(CONST left: ARRAY [ ? ] OF LONGREAL; right: LONGREAL ): ARRAY [ ? ] OF BOOLEAN;
  4274. BEGIN
  4275. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4276. SIZEOF( BOOLEAN ), ENeqAXSXLoop );
  4277. RETURN RESULT
  4278. END ".#";
  4279. OPERATOR ".#"*(left: LONGREAL; CONST right: ARRAY [ ? ] OF LONGREAL): ARRAY [ ? ] OF BOOLEAN;
  4280. BEGIN
  4281. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4282. SIZEOF( BOOLEAN ), ENeqAXSXLoop );
  4283. RETURN RESULT
  4284. END ".#";
  4285. (*** elementwise greater than: array x array -> array of boolean ********************************************************************)
  4286. (** SHORTINT *)
  4287. PROCEDURE EGtrASASLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4288. VAR lval, rval: SHORTINT;
  4289. BEGIN
  4290. WHILE (len > 0) DO
  4291. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval > rval );
  4292. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4293. END;
  4294. END EGtrASASLoop;
  4295. OPERATOR ".>"*(CONST left, right: ARRAY [ ? ] OF SHORTINT ): ARRAY [ ? ] OF BOOLEAN;
  4296. BEGIN
  4297. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4298. SIZEOF( BOOLEAN ), EGtrASASLoop );
  4299. RETURN RESULT
  4300. END ".>";
  4301. (** INTEGER *)
  4302. PROCEDURE EGtrAIAILoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4303. VAR lval, rval: INTEGER;
  4304. BEGIN
  4305. WHILE (len > 0) DO
  4306. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval > rval );
  4307. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4308. END;
  4309. END EGtrAIAILoop;
  4310. OPERATOR ".>"*(CONST left, right: ARRAY [ ? ] OF INTEGER ): ARRAY [ ? ] OF BOOLEAN;
  4311. BEGIN
  4312. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4313. SIZEOF( BOOLEAN ), EGtrAIAILoop );
  4314. RETURN RESULT
  4315. END ".>";
  4316. (** LONGINT *)
  4317. PROCEDURE EGtrALALLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4318. VAR lval, rval: LONGINT;
  4319. BEGIN
  4320. WHILE (len > 0) DO
  4321. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval > rval );
  4322. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4323. END;
  4324. END EGtrALALLoop;
  4325. OPERATOR ".>"*(CONST left, right: ARRAY [ ? ] OF LONGINT ): ARRAY [ ? ] OF BOOLEAN;
  4326. BEGIN
  4327. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4328. SIZEOF( BOOLEAN ), EGtrALALLoop );
  4329. RETURN RESULT
  4330. END ".>";
  4331. (** REAL *)
  4332. PROCEDURE EGtrARARLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4333. VAR lval, rval: REAL;
  4334. BEGIN
  4335. WHILE (len > 0) DO
  4336. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval > rval );
  4337. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4338. END;
  4339. END EGtrARARLoop;
  4340. OPERATOR ".>"*(CONST left, right: ARRAY [ ? ] OF REAL ): ARRAY [ ? ] OF BOOLEAN;
  4341. BEGIN
  4342. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4343. SIZEOF( BOOLEAN ), EGtrARARLoop );
  4344. RETURN RESULT
  4345. END ".>";
  4346. (** LONGREAL *)
  4347. PROCEDURE EGtrAXAXLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4348. VAR lval, rval: LONGREAL;
  4349. BEGIN
  4350. WHILE (len > 0) DO
  4351. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval > rval );
  4352. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4353. END;
  4354. END EGtrAXAXLoop;
  4355. OPERATOR ".>"*(CONST left, right: ARRAY [ ? ] OF LONGREAL ): ARRAY [ ? ] OF BOOLEAN;
  4356. BEGIN
  4357. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4358. SIZEOF( BOOLEAN ), EGtrAXAXLoop );
  4359. RETURN RESULT
  4360. END ".>";
  4361. (*** elementwise greater array x scalar -> array of boolean ********************************************************************)
  4362. (** SHORTINT *)
  4363. PROCEDURE EGtrASSSLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4364. VAR lval, rval: SHORTINT;
  4365. BEGIN
  4366. SYSTEM.GET( radr, rval );
  4367. WHILE (len > 0) DO
  4368. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval > rval ); INC( ladr, linc );
  4369. INC( dadr, dinc ); DEC( len );
  4370. END;
  4371. END EGtrASSSLoop;
  4372. OPERATOR ".>"*(CONST left: ARRAY [ ? ] OF SHORTINT; right: SHORTINT ): ARRAY [ ? ] OF BOOLEAN;
  4373. BEGIN
  4374. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4375. SIZEOF( BOOLEAN ), EGtrASSSLoop );
  4376. RETURN RESULT
  4377. END ".>";
  4378. OPERATOR ".<"*(left: SHORTINT; CONST right: ARRAY [ ? ] OF SHORTINT): ARRAY [ ? ] OF BOOLEAN;
  4379. BEGIN
  4380. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4381. SIZEOF( BOOLEAN ), EGtrASSSLoop );
  4382. RETURN RESULT
  4383. END ".<";
  4384. (** INTEGER *)
  4385. PROCEDURE EGtrAISILoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4386. VAR lval, rval: INTEGER;
  4387. BEGIN
  4388. SYSTEM.GET( radr, rval );
  4389. WHILE (len > 0) DO
  4390. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval > rval ); INC( ladr, linc );
  4391. INC( dadr, dinc ); DEC( len );
  4392. END;
  4393. END EGtrAISILoop;
  4394. OPERATOR ".>"*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): ARRAY [ ? ] OF BOOLEAN;
  4395. BEGIN
  4396. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4397. SIZEOF( BOOLEAN ), EGtrAISILoop );
  4398. RETURN RESULT
  4399. END ".>";
  4400. OPERATOR ".<"*(left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER): ARRAY [ ? ] OF BOOLEAN;
  4401. BEGIN
  4402. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4403. SIZEOF( BOOLEAN ), EGtrAISILoop );
  4404. RETURN RESULT
  4405. END ".<";
  4406. (** LONGINT *)
  4407. PROCEDURE EGtrALSLLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4408. VAR lval, rval: LONGINT;
  4409. BEGIN
  4410. SYSTEM.GET( radr, rval );
  4411. WHILE (len > 0) DO
  4412. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval > rval ); INC( ladr, linc );
  4413. INC( dadr, dinc ); DEC( len );
  4414. END;
  4415. END EGtrALSLLoop;
  4416. OPERATOR ".>"*(CONST left: ARRAY [ ? ] OF LONGINT; right: LONGINT ): ARRAY [ ? ] OF BOOLEAN;
  4417. BEGIN
  4418. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4419. SIZEOF( BOOLEAN ), EGtrALSLLoop );
  4420. RETURN RESULT
  4421. END ".>";
  4422. OPERATOR ".<"*(left: LONGINT; CONST right: ARRAY [ ? ] OF LONGINT): ARRAY [ ? ] OF BOOLEAN;
  4423. BEGIN
  4424. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4425. SIZEOF( BOOLEAN ), EGtrALSLLoop );
  4426. RETURN RESULT
  4427. END ".<";
  4428. (** REAL *)
  4429. PROCEDURE EGtrARSRLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4430. VAR lval, rval: REAL;
  4431. BEGIN
  4432. SYSTEM.GET( radr, rval );
  4433. WHILE (len > 0) DO
  4434. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval > rval ); INC( ladr, linc );
  4435. INC( dadr, dinc ); DEC( len );
  4436. END;
  4437. END EGtrARSRLoop;
  4438. OPERATOR ".>"*(CONST left: ARRAY [ ? ] OF REAL; right: REAL ): ARRAY [ ? ] OF BOOLEAN;
  4439. BEGIN
  4440. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4441. SIZEOF( BOOLEAN ), EGtrARSRLoop );
  4442. RETURN RESULT
  4443. END ".>";
  4444. OPERATOR ".<"*(left: REAL; CONST right: ARRAY [ ? ] OF REAL): ARRAY [ ? ] OF BOOLEAN;
  4445. BEGIN
  4446. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4447. SIZEOF( BOOLEAN ), EGtrARSRLoop );
  4448. RETURN RESULT
  4449. END ".<";
  4450. (** LONGREAL *)
  4451. PROCEDURE EGtrAXSXLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4452. VAR lval, rval: LONGREAL;
  4453. BEGIN
  4454. SYSTEM.GET( radr, rval );
  4455. WHILE (len > 0) DO
  4456. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval > rval ); INC( ladr, linc );
  4457. INC( dadr, dinc ); DEC( len );
  4458. END;
  4459. END EGtrAXSXLoop;
  4460. OPERATOR ".>"*(CONST left: ARRAY [ ? ] OF LONGREAL; right: LONGREAL ): ARRAY [ ? ] OF BOOLEAN;
  4461. BEGIN
  4462. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4463. SIZEOF( BOOLEAN ), EGtrAXSXLoop );
  4464. RETURN RESULT
  4465. END ".>";
  4466. OPERATOR ".<"*(left: LONGREAL; CONST right: ARRAY [ ? ] OF LONGREAL): ARRAY [ ? ] OF BOOLEAN;
  4467. BEGIN
  4468. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4469. SIZEOF( BOOLEAN ), EGtrAXSXLoop );
  4470. RETURN RESULT
  4471. END ".<";
  4472. (*** elementwise greater or equal: array x array -> array of boolean ********************************************************************)
  4473. (** SHORTINT *)
  4474. PROCEDURE EGeqASASLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4475. VAR lval, rval: SHORTINT;
  4476. BEGIN
  4477. WHILE (len > 0) DO
  4478. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval >= rval );
  4479. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4480. END;
  4481. END EGeqASASLoop;
  4482. OPERATOR ".>="*(CONST left, right: ARRAY [ ? ] OF SHORTINT ): ARRAY [ ? ] OF BOOLEAN;
  4483. BEGIN
  4484. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4485. SIZEOF( BOOLEAN ), EGeqASASLoop );
  4486. RETURN RESULT
  4487. END ".>=";
  4488. (** INTEGER *)
  4489. PROCEDURE EGeqAIAILoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4490. VAR lval, rval: INTEGER;
  4491. BEGIN
  4492. WHILE (len > 0) DO
  4493. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval >= rval );
  4494. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4495. END;
  4496. END EGeqAIAILoop;
  4497. OPERATOR ".>="*(CONST left, right: ARRAY [ ? ] OF INTEGER ): ARRAY [ ? ] OF BOOLEAN;
  4498. BEGIN
  4499. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4500. SIZEOF( BOOLEAN ), EGeqAIAILoop );
  4501. RETURN RESULT
  4502. END ".>=";
  4503. (** LONGINT *)
  4504. PROCEDURE EGeqALALLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4505. VAR lval, rval: LONGINT;
  4506. BEGIN
  4507. WHILE (len > 0) DO
  4508. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval >= rval );
  4509. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4510. END;
  4511. END EGeqALALLoop;
  4512. OPERATOR ".>="*(CONST left, right: ARRAY [ ? ] OF LONGINT ): ARRAY [ ? ] OF BOOLEAN;
  4513. BEGIN
  4514. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4515. SIZEOF( BOOLEAN ), EGeqALALLoop );
  4516. RETURN RESULT
  4517. END ".>=";
  4518. (** REAL *)
  4519. PROCEDURE EGeqARARLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4520. VAR lval, rval: REAL;
  4521. BEGIN
  4522. WHILE (len > 0) DO
  4523. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval >= rval );
  4524. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4525. END;
  4526. END EGeqARARLoop;
  4527. OPERATOR ".>="*(CONST left, right: ARRAY [ ? ] OF REAL ): ARRAY [ ? ] OF BOOLEAN;
  4528. BEGIN
  4529. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4530. SIZEOF( BOOLEAN ), EGeqARARLoop );
  4531. RETURN RESULT
  4532. END ".>=";
  4533. (** LONGREAL *)
  4534. PROCEDURE EGeqAXAXLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4535. VAR lval, rval: LONGREAL;
  4536. BEGIN
  4537. WHILE (len > 0) DO
  4538. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval >= rval );
  4539. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4540. END;
  4541. END EGeqAXAXLoop;
  4542. OPERATOR ".>="*(CONST left, right: ARRAY [ ? ] OF LONGREAL ): ARRAY [ ? ] OF BOOLEAN;
  4543. BEGIN
  4544. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4545. SIZEOF( BOOLEAN ), EGeqAXAXLoop );
  4546. RETURN RESULT
  4547. END ".>=";
  4548. (*** elementwise geq array x scalar -> array of boolean ********************************************************************)
  4549. (** SHORTINT *)
  4550. PROCEDURE EGeqASSSLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4551. VAR lval, rval: SHORTINT;
  4552. BEGIN
  4553. SYSTEM.GET( radr, rval );
  4554. WHILE (len > 0) DO
  4555. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval >= rval ); INC( ladr, linc );
  4556. INC( dadr, dinc ); DEC( len );
  4557. END;
  4558. END EGeqASSSLoop;
  4559. OPERATOR ".>="*(CONST left: ARRAY [ ? ] OF SHORTINT; right: SHORTINT ): ARRAY [ ? ] OF BOOLEAN;
  4560. BEGIN
  4561. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4562. SIZEOF( BOOLEAN ), EGeqASSSLoop );
  4563. RETURN RESULT
  4564. END ".>=";
  4565. OPERATOR ".<="*(left: SHORTINT; CONST right: ARRAY [ ? ] OF SHORTINT): ARRAY [ ? ] OF BOOLEAN;
  4566. BEGIN
  4567. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4568. SIZEOF( BOOLEAN ), EGeqASSSLoop );
  4569. RETURN RESULT
  4570. END ".<=";
  4571. (** INTEGER *)
  4572. PROCEDURE EGeqAISILoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4573. VAR lval, rval: INTEGER;
  4574. BEGIN
  4575. SYSTEM.GET( radr, rval );
  4576. WHILE (len > 0) DO
  4577. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval >= rval ); INC( ladr, linc );
  4578. INC( dadr, dinc ); DEC( len );
  4579. END;
  4580. END EGeqAISILoop;
  4581. OPERATOR ".>="*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): ARRAY [ ? ] OF BOOLEAN;
  4582. BEGIN
  4583. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4584. SIZEOF( BOOLEAN ), EGeqAISILoop );
  4585. RETURN RESULT
  4586. END ".>=";
  4587. OPERATOR ".<="*(left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER): ARRAY [ ? ] OF BOOLEAN;
  4588. BEGIN
  4589. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4590. SIZEOF( BOOLEAN ), EGeqAISILoop );
  4591. RETURN RESULT
  4592. END ".<=";
  4593. (** LONGINT *)
  4594. PROCEDURE EGeqALSLLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4595. VAR lval, rval: LONGINT;
  4596. BEGIN
  4597. SYSTEM.GET( radr, rval );
  4598. WHILE (len > 0) DO
  4599. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval >= rval ); INC( ladr, linc );
  4600. INC( dadr, dinc ); DEC( len );
  4601. END;
  4602. END EGeqALSLLoop;
  4603. OPERATOR ".>="*(CONST left: ARRAY [ ? ] OF LONGINT; right: LONGINT ): ARRAY [ ? ] OF BOOLEAN;
  4604. BEGIN
  4605. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4606. SIZEOF( BOOLEAN ), EGeqALSLLoop );
  4607. RETURN RESULT
  4608. END ".>=";
  4609. OPERATOR ".<="*(left: LONGINT; CONST right: ARRAY [ ? ] OF LONGINT): ARRAY [ ? ] OF BOOLEAN;
  4610. BEGIN
  4611. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4612. SIZEOF( BOOLEAN ), EGeqALSLLoop );
  4613. RETURN RESULT
  4614. END ".<=";
  4615. (** REAL *)
  4616. PROCEDURE EGeqARSRLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4617. VAR lval, rval: REAL;
  4618. BEGIN
  4619. SYSTEM.GET( radr, rval );
  4620. WHILE (len > 0) DO
  4621. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval >= rval ); INC( ladr, linc );
  4622. INC( dadr, dinc ); DEC( len );
  4623. END;
  4624. END EGeqARSRLoop;
  4625. OPERATOR ".>="*(CONST left: ARRAY [ ? ] OF REAL; right: REAL ): ARRAY [ ? ] OF BOOLEAN;
  4626. BEGIN
  4627. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4628. SIZEOF( BOOLEAN ), EGeqARSRLoop );
  4629. RETURN RESULT
  4630. END ".>=";
  4631. OPERATOR ".<="*(left: REAL; CONST right: ARRAY [ ? ] OF REAL): ARRAY [ ? ] OF BOOLEAN;
  4632. BEGIN
  4633. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4634. SIZEOF( BOOLEAN ), EGeqARSRLoop );
  4635. RETURN RESULT
  4636. END ".<=";
  4637. (** LONGREAL *)
  4638. PROCEDURE EGeqAXSXLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4639. VAR lval, rval: LONGREAL;
  4640. BEGIN
  4641. SYSTEM.GET( radr, rval );
  4642. WHILE (len > 0) DO
  4643. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval >= rval ); INC( ladr, linc );
  4644. INC( dadr, dinc ); DEC( len );
  4645. END;
  4646. END EGeqAXSXLoop;
  4647. OPERATOR ".>="*(CONST left: ARRAY [ ? ] OF LONGREAL; right: LONGREAL ): ARRAY [ ? ] OF BOOLEAN;
  4648. BEGIN
  4649. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4650. SIZEOF( BOOLEAN ), EGeqAXSXLoop );
  4651. RETURN RESULT
  4652. END ".>=";
  4653. OPERATOR ".<="*(left: LONGREAL; CONST right: ARRAY [ ? ] OF LONGREAL): ARRAY [ ? ] OF BOOLEAN;
  4654. BEGIN
  4655. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4656. SIZEOF( BOOLEAN ), EGeqAXSXLoop );
  4657. RETURN RESULT
  4658. END ".<=";
  4659. (*** elementwise less than: array x array -> array of boolean ********************************************************************)
  4660. (** SHORTINT *)
  4661. PROCEDURE ELssASASLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4662. VAR lval, rval: SHORTINT;
  4663. BEGIN
  4664. WHILE (len > 0) DO
  4665. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval < rval );
  4666. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4667. END;
  4668. END ELssASASLoop;
  4669. OPERATOR ".<"*(CONST left, right: ARRAY [ ? ] OF SHORTINT ): ARRAY [ ? ] OF BOOLEAN;
  4670. BEGIN
  4671. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4672. SIZEOF( BOOLEAN ), ELssASASLoop );
  4673. RETURN RESULT
  4674. END ".<";
  4675. (** INTEGER *)
  4676. PROCEDURE ELssAIAILoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4677. VAR lval, rval: INTEGER;
  4678. BEGIN
  4679. WHILE (len > 0) DO
  4680. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval < rval );
  4681. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4682. END;
  4683. END ELssAIAILoop;
  4684. OPERATOR ".<"*(CONST left, right: ARRAY [ ? ] OF INTEGER ): ARRAY [ ? ] OF BOOLEAN;
  4685. BEGIN
  4686. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4687. SIZEOF( BOOLEAN ), ELssAIAILoop );
  4688. RETURN RESULT
  4689. END ".<";
  4690. (** LONGINT*)
  4691. PROCEDURE ELssALALLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4692. VAR lval, rval: LONGINT;
  4693. BEGIN
  4694. WHILE (len > 0) DO
  4695. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval < rval );
  4696. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4697. END;
  4698. END ELssALALLoop;
  4699. OPERATOR ".<"*(CONST left, right: ARRAY [ ? ] OF LONGINT ): ARRAY [ ? ] OF BOOLEAN;
  4700. BEGIN
  4701. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4702. SIZEOF( BOOLEAN ), ELssALALLoop );
  4703. RETURN RESULT
  4704. END ".<";
  4705. (** REAL *)
  4706. PROCEDURE ELssARARLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4707. VAR lval, rval: REAL;
  4708. BEGIN
  4709. WHILE (len > 0) DO
  4710. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval < rval );
  4711. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4712. END;
  4713. END ELssARARLoop;
  4714. OPERATOR ".<"*(CONST left, right: ARRAY [ ? ] OF REAL ): ARRAY [ ? ] OF BOOLEAN;
  4715. BEGIN
  4716. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4717. SIZEOF( BOOLEAN ), ELssARARLoop );
  4718. RETURN RESULT
  4719. END ".<";
  4720. (** LONGREAL *)
  4721. PROCEDURE ELssAXAXLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4722. VAR lval, rval: LONGREAL;
  4723. BEGIN
  4724. WHILE (len > 0) DO
  4725. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval < rval );
  4726. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4727. END;
  4728. END ELssAXAXLoop;
  4729. OPERATOR ".<"*(CONST left, right: ARRAY [ ? ] OF LONGREAL ): ARRAY [ ? ] OF BOOLEAN;
  4730. BEGIN
  4731. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4732. SIZEOF( BOOLEAN ), ELssAXAXLoop );
  4733. RETURN RESULT
  4734. END ".<";
  4735. (*** elementwise less array x scalar -> array of boolean ********************************************************************)
  4736. (** SHORTINT *)
  4737. PROCEDURE ELssASSSLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4738. VAR lval, rval: SHORTINT;
  4739. BEGIN
  4740. SYSTEM.GET( radr, rval );
  4741. WHILE (len > 0) DO
  4742. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval < rval ); INC( ladr, linc );
  4743. INC( dadr, dinc ); DEC( len );
  4744. END;
  4745. END ELssASSSLoop;
  4746. OPERATOR ".<"*(CONST left: ARRAY [ ? ] OF SHORTINT; right: SHORTINT ): ARRAY [ ? ] OF BOOLEAN;
  4747. BEGIN
  4748. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4749. SIZEOF( BOOLEAN ), ELssASSSLoop );
  4750. RETURN RESULT
  4751. END ".<";
  4752. OPERATOR ".>"*(left: SHORTINT; CONST right: ARRAY [ ? ] OF SHORTINT): ARRAY [ ? ] OF BOOLEAN;
  4753. BEGIN
  4754. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4755. SIZEOF( BOOLEAN ), ELssASSSLoop );
  4756. RETURN RESULT
  4757. END ".>";
  4758. (** INTEGER *)
  4759. PROCEDURE ELssAISILoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4760. VAR lval, rval: INTEGER;
  4761. BEGIN
  4762. SYSTEM.GET( radr, rval );
  4763. WHILE (len > 0) DO
  4764. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval < rval ); INC( ladr, linc );
  4765. INC( dadr, dinc ); DEC( len );
  4766. END;
  4767. END ELssAISILoop;
  4768. OPERATOR ".<"*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): ARRAY [ ? ] OF BOOLEAN;
  4769. BEGIN
  4770. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4771. SIZEOF( BOOLEAN ), ELssAISILoop );
  4772. RETURN RESULT
  4773. END ".<";
  4774. OPERATOR ".>"*(left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER): ARRAY [ ? ] OF BOOLEAN;
  4775. BEGIN
  4776. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4777. SIZEOF( BOOLEAN ), ELssAISILoop );
  4778. RETURN RESULT
  4779. END ".>";
  4780. (** LONGINT *)
  4781. PROCEDURE ELssALSLLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4782. VAR lval, rval: LONGINT;
  4783. BEGIN
  4784. SYSTEM.GET( radr, rval );
  4785. WHILE (len > 0) DO
  4786. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval < rval ); INC( ladr, linc );
  4787. INC( dadr, dinc ); DEC( len );
  4788. END;
  4789. END ELssALSLLoop;
  4790. OPERATOR ".<"*(CONST left: ARRAY [ ? ] OF LONGINT; right: LONGINT ): ARRAY [ ? ] OF BOOLEAN;
  4791. BEGIN
  4792. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4793. SIZEOF( BOOLEAN ), ELssALSLLoop );
  4794. RETURN RESULT
  4795. END ".<";
  4796. OPERATOR ".>"*(left: LONGINT; CONST right: ARRAY [ ? ] OF LONGINT): ARRAY [ ? ] OF BOOLEAN;
  4797. BEGIN
  4798. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4799. SIZEOF( BOOLEAN ), ELssALSLLoop );
  4800. RETURN RESULT
  4801. END ".>";
  4802. (** REAL *)
  4803. PROCEDURE ELssARSRLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4804. VAR lval, rval: REAL;
  4805. BEGIN
  4806. SYSTEM.GET( radr, rval );
  4807. WHILE (len > 0) DO
  4808. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval < rval ); INC( ladr, linc );
  4809. INC( dadr, dinc ); DEC( len );
  4810. END;
  4811. END ELssARSRLoop;
  4812. OPERATOR ".<"*(CONST left: ARRAY [ ? ] OF REAL; right: REAL ): ARRAY [ ? ] OF BOOLEAN;
  4813. BEGIN
  4814. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4815. SIZEOF( BOOLEAN ), ELssARSRLoop );
  4816. RETURN RESULT
  4817. END ".<";
  4818. OPERATOR ".>"*(left: REAL; CONST right: ARRAY [ ? ] OF REAL): ARRAY [ ? ] OF BOOLEAN;
  4819. BEGIN
  4820. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4821. SIZEOF( BOOLEAN ), ELssARSRLoop );
  4822. RETURN RESULT
  4823. END ".>";
  4824. (** LONGREAL *)
  4825. PROCEDURE ELssAXSXLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4826. VAR lval, rval: LONGREAL;
  4827. BEGIN
  4828. SYSTEM.GET( radr, rval );
  4829. WHILE (len > 0) DO
  4830. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval < rval ); INC( ladr, linc );
  4831. INC( dadr, dinc ); DEC( len );
  4832. END;
  4833. END ELssAXSXLoop;
  4834. OPERATOR ".<"*(CONST left: ARRAY [ ? ] OF LONGREAL; right: LONGREAL ): ARRAY [ ? ] OF BOOLEAN;
  4835. BEGIN
  4836. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4837. SIZEOF( BOOLEAN ), ELssAXSXLoop );
  4838. RETURN RESULT
  4839. END ".<";
  4840. OPERATOR ".>"*(left: LONGREAL; CONST right: ARRAY [ ? ] OF LONGREAL): ARRAY [ ? ] OF BOOLEAN;
  4841. BEGIN
  4842. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4843. SIZEOF( BOOLEAN ), ELssAXSXLoop );
  4844. RETURN RESULT
  4845. END ".>";
  4846. (*** elementwise less or equal: array x array -> array of boolean ********************************************************************)
  4847. (** SHORTINT *)
  4848. PROCEDURE ELeqASASLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4849. VAR lval, rval: SHORTINT;
  4850. BEGIN
  4851. WHILE (len > 0) DO
  4852. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval <= rval );
  4853. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4854. END;
  4855. END ELeqASASLoop;
  4856. OPERATOR ".<="*(CONST left, right: ARRAY [ ? ] OF SHORTINT ): ARRAY [ ? ] OF BOOLEAN;
  4857. BEGIN
  4858. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4859. SIZEOF( BOOLEAN ), ELeqASASLoop );
  4860. RETURN RESULT
  4861. END ".<=";
  4862. (** INTEGER *)
  4863. PROCEDURE ELeqAIAILoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4864. VAR lval, rval: INTEGER;
  4865. BEGIN
  4866. WHILE (len > 0) DO
  4867. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval <= rval );
  4868. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4869. END;
  4870. END ELeqAIAILoop;
  4871. OPERATOR ".<="*(CONST left, right: ARRAY [ ? ] OF INTEGER ): ARRAY [ ? ] OF BOOLEAN;
  4872. BEGIN
  4873. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4874. SIZEOF( BOOLEAN ), ELeqAIAILoop );
  4875. RETURN RESULT
  4876. END ".<=";
  4877. (** LONGINT *)
  4878. PROCEDURE ELeqALALLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4879. VAR lval, rval: LONGINT;
  4880. BEGIN
  4881. WHILE (len > 0) DO
  4882. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval <= rval );
  4883. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4884. END;
  4885. END ELeqALALLoop;
  4886. OPERATOR ".<="*(CONST left, right: ARRAY [ ? ] OF LONGINT ): ARRAY [ ? ] OF BOOLEAN;
  4887. BEGIN
  4888. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4889. SIZEOF( BOOLEAN ), ELeqALALLoop );
  4890. RETURN RESULT
  4891. END ".<=";
  4892. (** REAL *)
  4893. PROCEDURE ELeqARARLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4894. VAR lval, rval: REAL;
  4895. BEGIN
  4896. WHILE (len > 0) DO
  4897. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval <= rval );
  4898. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4899. END;
  4900. END ELeqARARLoop;
  4901. OPERATOR ".<="*(CONST left, right: ARRAY [ ? ] OF REAL ): ARRAY [ ? ] OF BOOLEAN;
  4902. BEGIN
  4903. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4904. SIZEOF( BOOLEAN ), ELeqARARLoop );
  4905. RETURN RESULT
  4906. END ".<=";
  4907. (** LONGREAL*)
  4908. PROCEDURE ELeqAXAXLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  4909. VAR lval, rval: LONGREAL;
  4910. BEGIN
  4911. WHILE (len > 0) DO
  4912. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval <= rval );
  4913. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  4914. END;
  4915. END ELeqAXAXLoop;
  4916. OPERATOR ".<="*(CONST left, right: ARRAY [ ? ] OF LONGREAL ): ARRAY [ ? ] OF BOOLEAN;
  4917. BEGIN
  4918. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4919. SIZEOF( BOOLEAN ), ELeqAXAXLoop );
  4920. RETURN RESULT
  4921. END ".<=";
  4922. (*** elementwise leq array x scalar -> array of boolean ********************************************************************)
  4923. (** SHORTINT *)
  4924. PROCEDURE ELeqASSSLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4925. VAR lval, rval: SHORTINT;
  4926. BEGIN
  4927. SYSTEM.GET( radr, rval );
  4928. WHILE (len > 0) DO
  4929. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval <= rval ); INC( ladr, linc );
  4930. INC( dadr, dinc ); DEC( len );
  4931. END;
  4932. END ELeqASSSLoop;
  4933. OPERATOR ".<="*(CONST left: ARRAY [ ? ] OF SHORTINT; right: SHORTINT ): ARRAY [ ? ] OF BOOLEAN;
  4934. BEGIN
  4935. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4936. SIZEOF( BOOLEAN ), ELeqASSSLoop );
  4937. RETURN RESULT
  4938. END ".<=";
  4939. OPERATOR ".>="*(left: SHORTINT; CONST right: ARRAY [ ? ] OF SHORTINT): ARRAY [ ? ] OF BOOLEAN;
  4940. BEGIN
  4941. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4942. SIZEOF( BOOLEAN ), ELeqASSSLoop );
  4943. RETURN RESULT
  4944. END ".>=";
  4945. (** INTEGER *)
  4946. PROCEDURE ELeqAISILoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4947. VAR lval, rval: INTEGER;
  4948. BEGIN
  4949. SYSTEM.GET( radr, rval );
  4950. WHILE (len > 0) DO
  4951. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval <= rval ); INC( ladr, linc );
  4952. INC( dadr, dinc ); DEC( len );
  4953. END;
  4954. END ELeqAISILoop;
  4955. OPERATOR ".<="*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): ARRAY [ ? ] OF BOOLEAN;
  4956. BEGIN
  4957. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4958. SIZEOF( BOOLEAN ), ELeqAISILoop );
  4959. RETURN RESULT
  4960. END ".<=";
  4961. OPERATOR ".>="*(left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER): ARRAY [ ? ] OF BOOLEAN;
  4962. BEGIN
  4963. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4964. SIZEOF( BOOLEAN ), ELeqAISILoop );
  4965. RETURN RESULT
  4966. END ".>=";
  4967. (** LONGINT *)
  4968. PROCEDURE ELeqALSLLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4969. VAR lval, rval: LONGINT;
  4970. BEGIN
  4971. SYSTEM.GET( radr, rval );
  4972. WHILE (len > 0) DO
  4973. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval <= rval ); INC( ladr, linc );
  4974. INC( dadr, dinc ); DEC( len );
  4975. END;
  4976. END ELeqALSLLoop;
  4977. OPERATOR ".<="*(CONST left: ARRAY [ ? ] OF LONGINT; right: LONGINT ): ARRAY [ ? ] OF BOOLEAN;
  4978. BEGIN
  4979. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  4980. SIZEOF( BOOLEAN ), ELeqALSLLoop );
  4981. RETURN RESULT
  4982. END ".<=";
  4983. OPERATOR ".>="*(left: LONGINT; CONST right: ARRAY [ ? ] OF LONGINT): ARRAY [ ? ] OF BOOLEAN;
  4984. BEGIN
  4985. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  4986. SIZEOF( BOOLEAN ), ELeqALSLLoop );
  4987. RETURN RESULT
  4988. END ".>=";
  4989. (** REAL *)
  4990. PROCEDURE ELeqARSRLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  4991. VAR lval, rval: REAL;
  4992. BEGIN
  4993. SYSTEM.GET( radr, rval );
  4994. WHILE (len > 0) DO
  4995. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval <= rval ); INC( ladr, linc );
  4996. INC( dadr, dinc ); DEC( len );
  4997. END;
  4998. END ELeqARSRLoop;
  4999. OPERATOR ".<="*(CONST left: ARRAY [ ? ] OF REAL; right: REAL ): ARRAY [ ? ] OF BOOLEAN;
  5000. BEGIN
  5001. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  5002. SIZEOF( BOOLEAN ), ELeqARSRLoop );
  5003. RETURN RESULT
  5004. END ".<=";
  5005. OPERATOR ".>="*(left: REAL; CONST right: ARRAY [ ? ] OF REAL): ARRAY [ ? ] OF BOOLEAN;
  5006. BEGIN
  5007. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  5008. SIZEOF( BOOLEAN ), ELeqARSRLoop );
  5009. RETURN RESULT
  5010. END ".>=";
  5011. (** LONGREAL *)
  5012. PROCEDURE ELeqAXSXLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  5013. VAR lval, rval: LONGREAL;
  5014. BEGIN
  5015. SYSTEM.GET( radr, rval );
  5016. WHILE (len > 0) DO
  5017. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval <= rval ); INC( ladr, linc );
  5018. INC( dadr, dinc ); DEC( len );
  5019. END;
  5020. END ELeqAXSXLoop;
  5021. OPERATOR ".<="*(CONST left: ARRAY [ ? ] OF LONGREAL; right: LONGREAL ): ARRAY [ ? ] OF BOOLEAN;
  5022. BEGIN
  5023. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  5024. SIZEOF( BOOLEAN ), ELeqAXSXLoop );
  5025. RETURN RESULT
  5026. END ".<=";
  5027. OPERATOR ".>="*(left: LONGREAL; CONST right: ARRAY [ ? ] OF LONGREAL): ARRAY [ ? ] OF BOOLEAN;
  5028. BEGIN
  5029. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  5030. SIZEOF( BOOLEAN ), ELeqAXSXLoop );
  5031. RETURN RESULT
  5032. END ".>=";
  5033. (*** elementwise or, elementwise and ********************************************************************)
  5034. (** array x array *)
  5035. PROCEDURE ElOrABABLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  5036. VAR lval, rval: BOOLEAN;
  5037. BEGIN
  5038. WHILE (len > 0) DO
  5039. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, (lval OR rval) );
  5040. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  5041. END;
  5042. END ElOrABABLoop;
  5043. OPERATOR "OR"*(CONST left,right : ARRAY [?] OF BOOLEAN):ARRAY [ ? ] OF BOOLEAN;
  5044. BEGIN
  5045. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  5046. SIZEOF( BOOLEAN ), ElOrABABLoop );
  5047. RETURN RESULT
  5048. END "OR";
  5049. PROCEDURE ElAndABABLoop( ladr, radr, dadr, linc, rinc, dinc, len: LONGINT );
  5050. VAR lval, rval: BOOLEAN;
  5051. BEGIN
  5052. WHILE (len > 0) DO
  5053. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); SYSTEM.PUT( dadr, lval & rval );
  5054. INC( ladr, linc ); INC( radr, rinc ); INC( dadr, dinc ); DEC( len );
  5055. END;
  5056. END ElAndABABLoop;
  5057. OPERATOR "&"*(CONST left,right : ARRAY [?] OF BOOLEAN):ARRAY [ ? ] OF BOOLEAN;
  5058. BEGIN
  5059. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  5060. SIZEOF( BOOLEAN ), ElAndABABLoop );
  5061. RETURN RESULT
  5062. END "&";
  5063. (** array x boolean *)
  5064. PROCEDURE ElOrABSBLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  5065. VAR lval, rval: BOOLEAN;
  5066. BEGIN
  5067. SYSTEM.GET( radr, rval );
  5068. WHILE (len > 0) DO
  5069. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval OR rval ); INC( ladr, linc );
  5070. INC( dadr, dinc ); DEC( len );
  5071. END;
  5072. END ElOrABSBLoop;
  5073. OPERATOR "OR"*(CONST left : ARRAY [?] OF BOOLEAN; right: BOOLEAN):ARRAY [ ? ] OF BOOLEAN;
  5074. BEGIN
  5075. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  5076. SIZEOF( BOOLEAN ), ElOrABSBLoop );
  5077. RETURN RESULT
  5078. END "OR";
  5079. OPERATOR "OR"*(left: BOOLEAN; CONST right : ARRAY [?] OF BOOLEAN):ARRAY [ ? ] OF BOOLEAN;
  5080. BEGIN
  5081. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  5082. SIZEOF( BOOLEAN ), ElOrABSBLoop );
  5083. RETURN RESULT
  5084. END "OR";
  5085. PROCEDURE ElAndABSBLoop( ladr, radr, dadr, linc, dinc, len: LONGINT );
  5086. VAR lval, rval: BOOLEAN;
  5087. BEGIN
  5088. SYSTEM.GET( radr, rval );
  5089. WHILE (len > 0) DO
  5090. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, lval & rval ); INC( ladr, linc );
  5091. INC( dadr, dinc ); DEC( len );
  5092. END;
  5093. END ElAndABSBLoop;
  5094. OPERATOR "&"*(CONST left : ARRAY [?] OF BOOLEAN; right: BOOLEAN):ARRAY [ ? ] OF BOOLEAN;
  5095. BEGIN
  5096. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  5097. SIZEOF( BOOLEAN ), ElAndABSBLoop );
  5098. RETURN RESULT
  5099. END "&";
  5100. OPERATOR "&"*(left: BOOLEAN; CONST right : ARRAY [?] OF BOOLEAN):ARRAY [ ? ] OF BOOLEAN;
  5101. BEGIN
  5102. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( right ), ADDRESSOF( left ),
  5103. SIZEOF( BOOLEAN ), ElAndABSBLoop );
  5104. RETURN RESULT
  5105. END "&";
  5106. (*** less than, greater or equal: array x array -> boolean ********************************************************************)
  5107. (** SHORTINT *)
  5108. PROCEDURE LssASASLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5109. VAR lval, rval: SHORTINT;
  5110. BEGIN
  5111. WHILE (len > 0) DO
  5112. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5113. IF rval <= lval THEN RETURN FALSE END;
  5114. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5115. END;
  5116. RETURN TRUE;
  5117. END LssASASLoop;
  5118. OPERATOR "<"*( CONST left, right: ARRAY [ ? ] OF SHORTINT ): BOOLEAN;
  5119. BEGIN
  5120. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), LssASASLoop , FALSE);
  5121. END "<";
  5122. PROCEDURE GeqASASLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5123. VAR lval, rval: SHORTINT;
  5124. BEGIN
  5125. WHILE (len > 0) DO
  5126. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5127. IF rval > lval THEN RETURN FALSE END;
  5128. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5129. END;
  5130. RETURN TRUE;
  5131. END GeqASASLoop;
  5132. OPERATOR ">="*( CONST left, right: ARRAY [ ? ] OF SHORTINT ): BOOLEAN;
  5133. BEGIN
  5134. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), GeqASASLoop , FALSE);
  5135. END ">=";
  5136. (** INTEGER *)
  5137. PROCEDURE LssAIAILoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5138. VAR lval, rval: INTEGER;
  5139. BEGIN
  5140. WHILE (len > 0) DO
  5141. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5142. IF rval <= lval THEN RETURN FALSE END;
  5143. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5144. END;
  5145. RETURN TRUE;
  5146. END LssAIAILoop;
  5147. OPERATOR "<"*( CONST left, right: ARRAY [ ? ] OF INTEGER ): BOOLEAN;
  5148. BEGIN
  5149. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), LssAIAILoop , FALSE);
  5150. END "<";
  5151. PROCEDURE GeqAIAILoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5152. VAR lval, rval: INTEGER;
  5153. BEGIN
  5154. WHILE (len > 0) DO
  5155. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5156. IF rval > lval THEN RETURN FALSE END;
  5157. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5158. END;
  5159. RETURN TRUE;
  5160. END GeqAIAILoop;
  5161. OPERATOR ">="*( CONST left, right: ARRAY [ ? ] OF INTEGER ): BOOLEAN;
  5162. BEGIN
  5163. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), GeqAIAILoop , FALSE);
  5164. END ">=";
  5165. (** LONGINT *)
  5166. PROCEDURE LssALALLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5167. VAR lval, rval: LONGINT;
  5168. BEGIN
  5169. WHILE (len > 0) DO
  5170. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5171. IF rval <= lval THEN RETURN FALSE END;
  5172. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5173. END;
  5174. RETURN TRUE;
  5175. END LssALALLoop;
  5176. OPERATOR "<"*( CONST left, right: ARRAY [ ? ] OF LONGINT ): BOOLEAN;
  5177. BEGIN
  5178. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), LssALALLoop , FALSE);
  5179. END "<";
  5180. PROCEDURE GeqALALLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5181. VAR lval, rval: LONGINT;
  5182. BEGIN
  5183. WHILE (len > 0) DO
  5184. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5185. IF rval > lval THEN RETURN FALSE END;
  5186. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5187. END;
  5188. RETURN TRUE;
  5189. END GeqALALLoop;
  5190. OPERATOR ">="*( CONST left, right: ARRAY [ ? ] OF LONGINT ): BOOLEAN;
  5191. BEGIN
  5192. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), GeqALALLoop , FALSE);
  5193. END ">=";
  5194. (** REAL *)
  5195. PROCEDURE LssARARLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5196. VAR lval, rval: REAL;
  5197. BEGIN
  5198. WHILE (len > 0) DO
  5199. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5200. IF rval <= lval THEN RETURN FALSE END;
  5201. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5202. END;
  5203. RETURN TRUE;
  5204. END LssARARLoop;
  5205. OPERATOR "<"*( CONST left, right: ARRAY [ ? ] OF REAL ): BOOLEAN;
  5206. BEGIN
  5207. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), LssARARLoop , FALSE);
  5208. END "<";
  5209. PROCEDURE GeqARARLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5210. VAR lval, rval: REAL;
  5211. BEGIN
  5212. WHILE (len > 0) DO
  5213. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5214. IF rval > lval THEN RETURN FALSE END;
  5215. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5216. END;
  5217. RETURN TRUE;
  5218. END GeqARARLoop;
  5219. OPERATOR ">="*( CONST left, right: ARRAY [ ? ] OF REAL ): BOOLEAN;
  5220. BEGIN
  5221. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), GeqARARLoop , FALSE);
  5222. END ">=";
  5223. (** LONGREAL *)
  5224. PROCEDURE LssAXAXLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5225. VAR lval, rval: LONGREAL;
  5226. BEGIN
  5227. WHILE (len > 0) DO
  5228. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5229. IF rval <= lval THEN RETURN FALSE END;
  5230. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5231. END;
  5232. RETURN TRUE;
  5233. END LssAXAXLoop;
  5234. OPERATOR "<"*( CONST left, right: ARRAY [ ? ] OF LONGREAL ): BOOLEAN;
  5235. BEGIN
  5236. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), LssAXAXLoop , FALSE);
  5237. END "<";
  5238. PROCEDURE GeqAXAXLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5239. VAR lval, rval: LONGREAL;
  5240. BEGIN
  5241. WHILE (len > 0) DO
  5242. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5243. IF rval > lval THEN RETURN FALSE END;
  5244. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5245. END;
  5246. RETURN TRUE;
  5247. END GeqAXAXLoop;
  5248. OPERATOR ">="*( CONST left, right: ARRAY [ ? ] OF LONGREAL ): BOOLEAN;
  5249. BEGIN
  5250. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), GeqAXAXLoop , FALSE);
  5251. END ">=";
  5252. (*** less than, greater or equal: array x array -> boolean ********************************************************************)
  5253. (** SHORTINT *)
  5254. PROCEDURE GtrASASLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5255. VAR lval, rval: SHORTINT;
  5256. BEGIN
  5257. WHILE (len > 0) DO
  5258. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5259. IF rval >= lval THEN RETURN FALSE END;
  5260. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5261. END;
  5262. RETURN TRUE;
  5263. END GtrASASLoop;
  5264. OPERATOR ">"*( CONST left, right: ARRAY [ ? ] OF SHORTINT ): BOOLEAN;
  5265. BEGIN
  5266. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), GtrASASLoop , FALSE);
  5267. END ">";
  5268. PROCEDURE LeqASASLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5269. VAR lval, rval: SHORTINT;
  5270. BEGIN
  5271. WHILE (len > 0) DO
  5272. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5273. IF rval < lval THEN RETURN FALSE END;
  5274. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5275. END;
  5276. RETURN TRUE;
  5277. END LeqASASLoop;
  5278. OPERATOR "<="*( CONST left, right: ARRAY [ ? ] OF SHORTINT ): BOOLEAN;
  5279. BEGIN
  5280. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), LeqASASLoop , FALSE);
  5281. END "<=";
  5282. (** INTEGER *)
  5283. PROCEDURE GtrAIAILoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5284. VAR lval, rval: INTEGER;
  5285. BEGIN
  5286. WHILE (len > 0) DO
  5287. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5288. IF rval >= lval THEN RETURN FALSE END;
  5289. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5290. END;
  5291. RETURN TRUE;
  5292. END GtrAIAILoop;
  5293. OPERATOR ">"*( CONST left, right: ARRAY [ ? ] OF INTEGER ): BOOLEAN;
  5294. BEGIN
  5295. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), GtrAIAILoop , FALSE);
  5296. END ">";
  5297. PROCEDURE LeqAIAILoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5298. VAR lval, rval: INTEGER;
  5299. BEGIN
  5300. WHILE (len > 0) DO
  5301. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5302. IF rval < lval THEN RETURN FALSE END;
  5303. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5304. END;
  5305. RETURN TRUE;
  5306. END LeqAIAILoop;
  5307. OPERATOR "<="*( CONST left, right: ARRAY [ ? ] OF INTEGER ): BOOLEAN;
  5308. BEGIN
  5309. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), LeqAIAILoop ,FALSE);
  5310. END "<=";
  5311. (** LONGINT *)
  5312. PROCEDURE GtrALALLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5313. VAR lval, rval: LONGINT;
  5314. BEGIN
  5315. WHILE (len > 0) DO
  5316. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5317. IF rval >= lval THEN RETURN FALSE END;
  5318. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5319. END;
  5320. RETURN TRUE;
  5321. END GtrALALLoop;
  5322. OPERATOR ">"*( CONST left, right: ARRAY [ ? ] OF LONGINT ): BOOLEAN;
  5323. BEGIN
  5324. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), GtrALALLoop , FALSE);
  5325. END ">";
  5326. PROCEDURE LeqALALLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5327. VAR lval, rval: LONGINT;
  5328. BEGIN
  5329. WHILE (len > 0) DO
  5330. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5331. IF rval < lval THEN RETURN FALSE END;
  5332. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5333. END;
  5334. RETURN TRUE;
  5335. END LeqALALLoop;
  5336. OPERATOR "<="*( CONST left, right: ARRAY [ ? ] OF LONGINT ): BOOLEAN;
  5337. BEGIN
  5338. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), LeqALALLoop , FALSE);
  5339. END "<=";
  5340. (** REAL *)
  5341. PROCEDURE GtrARARLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5342. VAR lval, rval: REAL;
  5343. BEGIN
  5344. WHILE (len > 0) DO
  5345. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5346. IF rval >= lval THEN RETURN FALSE END;
  5347. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5348. END;
  5349. RETURN TRUE;
  5350. END GtrARARLoop;
  5351. OPERATOR ">"*( CONST left, right: ARRAY [ ? ] OF REAL ): BOOLEAN;
  5352. BEGIN
  5353. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), GtrARARLoop , FALSE);
  5354. END ">";
  5355. PROCEDURE LeqARARLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5356. VAR lval, rval: REAL;
  5357. BEGIN
  5358. WHILE (len > 0) DO
  5359. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5360. IF rval < lval THEN RETURN FALSE END;
  5361. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5362. END;
  5363. RETURN TRUE;
  5364. END LeqARARLoop;
  5365. OPERATOR "<="*( CONST left, right: ARRAY [ ? ] OF REAL ): BOOLEAN;
  5366. BEGIN
  5367. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), LeqARARLoop , FALSE);
  5368. END "<=";
  5369. (** LONGREAL *)
  5370. PROCEDURE GtrAXAXLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5371. VAR lval, rval: LONGREAL;
  5372. BEGIN
  5373. WHILE (len > 0) DO
  5374. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5375. IF rval >= lval THEN RETURN FALSE END;
  5376. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5377. END;
  5378. RETURN TRUE;
  5379. END GtrAXAXLoop;
  5380. OPERATOR ">"*( CONST left, right: ARRAY [ ? ] OF LONGREAL ): BOOLEAN;
  5381. BEGIN
  5382. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), GtrAXAXLoop , FALSE);
  5383. END ">";
  5384. PROCEDURE LeqAXAXLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5385. VAR lval, rval: LONGREAL;
  5386. BEGIN
  5387. WHILE (len > 0) DO
  5388. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5389. IF rval < lval THEN RETURN FALSE END;
  5390. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5391. END;
  5392. RETURN TRUE;
  5393. END LeqAXAXLoop;
  5394. OPERATOR "<="*( CONST left, right: ARRAY [ ? ] OF LONGREAL ): BOOLEAN;
  5395. BEGIN
  5396. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), LeqAXAXLoop , FALSE);
  5397. END "<=";
  5398. (*** equals: array x array -> boolean ********************************************************************)
  5399. (** BOOLEAN *)
  5400. PROCEDURE EqlABABLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5401. VAR lval, rval: BOOLEAN;
  5402. BEGIN
  5403. WHILE (len > 0) DO
  5404. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5405. IF rval # lval THEN RETURN FALSE END;
  5406. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5407. END;
  5408. RETURN TRUE;
  5409. END EqlABABLoop;
  5410. OPERATOR "="*( CONST left, right: ARRAY [ ? ] OF BOOLEAN ): BOOLEAN;
  5411. BEGIN
  5412. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlABABLoop, FALSE);
  5413. END "=";
  5414. OPERATOR "#"*( CONST left, right: ARRAY [ ? ] OF BOOLEAN ): BOOLEAN;
  5415. BEGIN
  5416. RETURN ~ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlABABLoop, FALSE);
  5417. END "#";
  5418. (** SHORTINT *)
  5419. PROCEDURE EqlASASLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5420. VAR lval, rval: SHORTINT;
  5421. BEGIN
  5422. WHILE (len > 0) DO
  5423. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5424. IF rval # lval THEN RETURN FALSE END;
  5425. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5426. END;
  5427. RETURN TRUE;
  5428. END EqlASASLoop;
  5429. OPERATOR "="*( CONST left, right: ARRAY [ ? ] OF SHORTINT ): BOOLEAN;
  5430. BEGIN
  5431. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlASASLoop , FALSE);
  5432. END "=";
  5433. OPERATOR "#"*( CONST left, right: ARRAY [ ? ] OF SHORTINT ): BOOLEAN;
  5434. BEGIN
  5435. RETURN ~ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlASASLoop, FALSE );
  5436. END "#";
  5437. (** INTEGER *)
  5438. PROCEDURE EqlAIAILoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5439. VAR lval, rval: INTEGER;
  5440. BEGIN
  5441. WHILE (len > 0) DO
  5442. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5443. IF rval # lval THEN RETURN FALSE END;
  5444. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5445. END;
  5446. RETURN TRUE;
  5447. END EqlAIAILoop;
  5448. OPERATOR "="*( CONST left, right: ARRAY [ ? ] OF INTEGER ): BOOLEAN;
  5449. BEGIN
  5450. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlAIAILoop, FALSE );
  5451. END "=";
  5452. OPERATOR "#"*( CONST left, right: ARRAY [ ? ] OF INTEGER ): BOOLEAN;
  5453. BEGIN
  5454. RETURN ~ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlAIAILoop, FALSE );
  5455. END "#";
  5456. (** LONGINT *)
  5457. PROCEDURE EqlALALLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5458. VAR lval, rval: LONGINT;
  5459. BEGIN
  5460. WHILE (len > 0) DO
  5461. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5462. IF rval # lval THEN RETURN FALSE END;
  5463. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5464. END;
  5465. RETURN TRUE;
  5466. END EqlALALLoop;
  5467. OPERATOR "="*( CONST left, right: ARRAY [ ? ] OF LONGINT ): BOOLEAN;
  5468. BEGIN
  5469. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlALALLoop, FALSE );
  5470. END "=";
  5471. OPERATOR "#"*( CONST left, right: ARRAY [ ? ] OF LONGINT ): BOOLEAN;
  5472. BEGIN
  5473. RETURN ~ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlALALLoop, FALSE );
  5474. END "#";
  5475. (** REAL *)
  5476. PROCEDURE EqlARARLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5477. VAR lval, rval: REAL;
  5478. BEGIN
  5479. WHILE (len > 0) DO
  5480. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5481. IF rval # lval THEN RETURN FALSE END;
  5482. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5483. END;
  5484. RETURN TRUE;
  5485. END EqlARARLoop;
  5486. OPERATOR "="*( CONST left, right: ARRAY [ ? ] OF REAL ): BOOLEAN;
  5487. BEGIN
  5488. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlARARLoop, FALSE );
  5489. END "=";
  5490. OPERATOR "#"*( CONST left, right: ARRAY [ ? ] OF REAL ): BOOLEAN;
  5491. BEGIN
  5492. RETURN ~ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlARARLoop, FALSE );
  5493. END "#";
  5494. (** LONGREAL *)
  5495. PROCEDURE EqlAXAXLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5496. VAR lval, rval: LONGREAL;
  5497. BEGIN
  5498. WHILE (len > 0) DO
  5499. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5500. IF rval # lval THEN RETURN FALSE END;
  5501. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5502. END;
  5503. RETURN TRUE;
  5504. END EqlAXAXLoop;
  5505. OPERATOR "="*( CONST left, right: ARRAY [ ? ] OF LONGREAL ): BOOLEAN;
  5506. BEGIN
  5507. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlAXAXLoop, FALSE );
  5508. END "=";
  5509. OPERATOR "#"*( CONST left, right: ARRAY [ ? ] OF LONGREAL ): BOOLEAN;
  5510. BEGIN
  5511. RETURN ~ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlAXAXLoop, FALSE );
  5512. END "#";
  5513. (** COMPLEX *)
  5514. PROCEDURE EqlAZAZLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5515. VAR lval, rval: COMPLEX;
  5516. BEGIN
  5517. WHILE (len > 0) DO
  5518. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  5519. IF rval # lval THEN RETURN FALSE END;
  5520. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5521. END;
  5522. RETURN TRUE;
  5523. END EqlAZAZLoop;
  5524. OPERATOR "="*( CONST left, right: ARRAY [ ? ] OF COMPLEX ): BOOLEAN;
  5525. BEGIN
  5526. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlAZAZLoop, FALSE );
  5527. END "=";
  5528. OPERATOR "#"*( CONST left, right: ARRAY [ ? ] OF COMPLEX ): BOOLEAN;
  5529. BEGIN
  5530. RETURN ~ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlAZAZLoop, FALSE );
  5531. END "#";
  5532. (** LONGCOMPLEX *)
  5533. PROCEDURE EqlALZALZLoop( ladr, radr, linc, rinc, len: LONGINT ): BOOLEAN;
  5534. VAR lvalRe, lvalIm, rvalRe, rvalIm: LONGREAL;
  5535. BEGIN
  5536. WHILE (len > 0) DO
  5537. SYSTEM.GET( ladr, lvalRe ); SYSTEM.GET( ladr+SIZEOF(LONGREAL), lvalIm );
  5538. SYSTEM.GET( radr, rvalRe ); SYSTEM.GET( radr+SIZEOF(LONGREAL), rvalIm );
  5539. IF (rvalRe # lvalRe) OR (rvalIm # lvalIm) THEN RETURN FALSE END;
  5540. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  5541. END;
  5542. RETURN TRUE;
  5543. END EqlALZALZLoop;
  5544. OPERATOR "="*( CONST left, right: ARRAY [ ? ] OF LONGCOMPLEX ): BOOLEAN;
  5545. BEGIN
  5546. RETURN ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlALZALZLoop, FALSE );
  5547. END "=";
  5548. OPERATOR "#"*( CONST left, right: ARRAY [ ? ] OF LONGCOMPLEX ): BOOLEAN;
  5549. BEGIN
  5550. RETURN ~ApplyBinaryAABOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlALZALZLoop, FALSE );
  5551. END "#";
  5552. (*** equals: array x scalar -> boolean ********************************************************************)
  5553. (** BOOLEAN *)
  5554. PROCEDURE EqlABSBLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5555. VAR lval, rval: BOOLEAN;
  5556. BEGIN
  5557. SYSTEM.GET( radr, rval );
  5558. WHILE (len > 0) DO
  5559. SYSTEM.GET( ladr, lval );
  5560. IF lval # rval THEN RETURN FALSE END;
  5561. INC( ladr, linc ); DEC( len );
  5562. END;
  5563. RETURN TRUE;
  5564. END EqlABSBLoop;
  5565. OPERATOR "="*( CONST left: ARRAY [ ? ] OF BOOLEAN;
  5566. right: BOOLEAN ): BOOLEAN;
  5567. BEGIN
  5568. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlABSBLoop );
  5569. END "=";
  5570. OPERATOR "="*( left: BOOLEAN;
  5571. CONST right: ARRAY [ ? ] OF BOOLEAN ): BOOLEAN;
  5572. BEGIN
  5573. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), EqlABSBLoop );
  5574. END "=";
  5575. OPERATOR "#"*( CONST left: ARRAY [ ? ] OF BOOLEAN;
  5576. right: BOOLEAN ): BOOLEAN;
  5577. BEGIN
  5578. RETURN ~(left = right);
  5579. END "#";
  5580. OPERATOR "#"*( left: BOOLEAN;
  5581. CONST right: ARRAY [ ? ] OF BOOLEAN ): BOOLEAN;
  5582. BEGIN
  5583. RETURN ~( left = right );
  5584. END "#";
  5585. (** SHORTINT *)
  5586. PROCEDURE EqlASSSLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5587. VAR lval, rval: SHORTINT;
  5588. BEGIN
  5589. SYSTEM.GET( radr, rval );
  5590. WHILE (len > 0) DO
  5591. SYSTEM.GET( ladr, lval );
  5592. IF lval # rval THEN RETURN FALSE END;
  5593. INC( ladr, linc ); DEC( len );
  5594. END;
  5595. RETURN TRUE;
  5596. END EqlASSSLoop;
  5597. OPERATOR "="*( CONST left: ARRAY [ ? ] OF SHORTINT;right: SHORTINT ): BOOLEAN;
  5598. BEGIN
  5599. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlASSSLoop );
  5600. END "=";
  5601. OPERATOR "="*( left: SHORTINT;CONST right: ARRAY [ ? ] OF SHORTINT ): BOOLEAN;
  5602. BEGIN
  5603. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), EqlASSSLoop );
  5604. END "=";
  5605. OPERATOR "#"*( CONST left: ARRAY [ ? ] OF SHORTINT; right: SHORTINT ): BOOLEAN;
  5606. BEGIN
  5607. RETURN ~( left= right );
  5608. END "#";
  5609. OPERATOR "#"*( left: SHORTINT; CONST right: ARRAY [ ? ] OF SHORTINT ): BOOLEAN;
  5610. BEGIN
  5611. RETURN ~( left= right );
  5612. END "#";
  5613. (** INTEGER *)
  5614. PROCEDURE EqlAISILoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5615. VAR lval, rval: INTEGER;
  5616. BEGIN
  5617. SYSTEM.GET( radr, rval );
  5618. WHILE (len > 0) DO
  5619. SYSTEM.GET( ladr, lval );
  5620. IF lval # rval THEN RETURN FALSE END;
  5621. INC( ladr, linc ); DEC( len );
  5622. END;
  5623. RETURN TRUE;
  5624. END EqlAISILoop;
  5625. OPERATOR "="*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): BOOLEAN;
  5626. BEGIN
  5627. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlAISILoop );
  5628. END "=";
  5629. OPERATOR "="*( left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER ): BOOLEAN;
  5630. BEGIN
  5631. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), EqlAISILoop );
  5632. END "=";
  5633. OPERATOR "#"*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): BOOLEAN;
  5634. BEGIN
  5635. RETURN ~( left = right );
  5636. END "#";
  5637. OPERATOR "#"*( left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER ): BOOLEAN;
  5638. BEGIN
  5639. RETURN ~( left = right );
  5640. END "#";
  5641. (** LONGINT *)
  5642. PROCEDURE EqlALSLLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5643. VAR lval, rval: LONGINT;
  5644. BEGIN
  5645. SYSTEM.GET( radr, rval );
  5646. WHILE (len > 0) DO
  5647. SYSTEM.GET( ladr, lval );
  5648. IF lval # rval THEN RETURN FALSE END;
  5649. INC( ladr, linc ); DEC( len );
  5650. END;
  5651. RETURN TRUE;
  5652. END EqlALSLLoop;
  5653. OPERATOR "="*( CONST left: ARRAY [ ? ] OF LONGINT;
  5654. right: LONGINT ): BOOLEAN;
  5655. BEGIN
  5656. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlALSLLoop );
  5657. END "=";
  5658. OPERATOR "="*( left: LONGINT;
  5659. CONST right: ARRAY [ ? ] OF LONGINT ): BOOLEAN;
  5660. BEGIN
  5661. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), EqlALSLLoop );
  5662. END "=";
  5663. OPERATOR "#"*( CONST left: ARRAY [ ? ] OF LONGINT;
  5664. right: LONGINT ): BOOLEAN;
  5665. BEGIN
  5666. RETURN ~(left = right);
  5667. END "#";
  5668. OPERATOR "#"*( left: LONGINT;
  5669. CONST right: ARRAY [ ? ] OF LONGINT ): BOOLEAN;
  5670. BEGIN
  5671. RETURN ~(left = right);
  5672. END "#";
  5673. (** REAL *)
  5674. PROCEDURE EqlARSRLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5675. VAR lval, rval: REAL;
  5676. BEGIN
  5677. SYSTEM.GET( radr, rval );
  5678. WHILE (len > 0) DO
  5679. SYSTEM.GET( ladr, lval );
  5680. IF lval # rval THEN RETURN FALSE END;
  5681. INC( ladr, linc ); DEC( len );
  5682. END;
  5683. RETURN TRUE;
  5684. END EqlARSRLoop;
  5685. OPERATOR "="*( CONST left: ARRAY [ ? ] OF REAL;
  5686. right: REAL ): BOOLEAN;
  5687. BEGIN
  5688. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlARSRLoop );
  5689. END "=";
  5690. OPERATOR "="*( left: REAL;
  5691. CONST right: ARRAY [ ? ] OF REAL ): BOOLEAN;
  5692. BEGIN
  5693. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), EqlARSRLoop );
  5694. END "=";
  5695. OPERATOR "#"*( CONST left: ARRAY [ ? ] OF REAL;
  5696. right: REAL ): BOOLEAN;
  5697. BEGIN
  5698. RETURN ~( left = right );
  5699. END "#";
  5700. OPERATOR "#"*( left: REAL;
  5701. CONST right: ARRAY [ ? ] OF REAL ): BOOLEAN;
  5702. BEGIN
  5703. RETURN ~( left = right );
  5704. END "#";
  5705. (** LONGREAL *)
  5706. PROCEDURE EqlAXSXLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5707. VAR lval, rval: LONGREAL;
  5708. BEGIN
  5709. SYSTEM.GET( radr, rval );
  5710. WHILE (len > 0) DO
  5711. SYSTEM.GET( ladr, lval );
  5712. IF lval # rval THEN RETURN FALSE END;
  5713. INC( ladr, linc ); DEC( len );
  5714. END;
  5715. RETURN TRUE;
  5716. END EqlAXSXLoop;
  5717. OPERATOR "="*( CONST left: ARRAY [ ? ] OF LONGREAL;
  5718. right: LONGREAL ): BOOLEAN;
  5719. BEGIN
  5720. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), EqlAXSXLoop );
  5721. END "=";
  5722. OPERATOR "="*( left: LONGREAL;
  5723. CONST right: ARRAY [ ? ] OF LONGREAL ): BOOLEAN;
  5724. BEGIN
  5725. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), EqlAXSXLoop );
  5726. END "=";
  5727. OPERATOR "#"*( CONST left: ARRAY [ ? ] OF LONGREAL;
  5728. right: LONGREAL ): BOOLEAN;
  5729. BEGIN
  5730. RETURN ~( left = right );
  5731. END "#";
  5732. OPERATOR "#"*( left: LONGREAL;CONST right: ARRAY [ ? ] OF LONGREAL ): BOOLEAN;
  5733. BEGIN
  5734. RETURN ~( left= right );
  5735. END "#";
  5736. (*** gtr : array x scalar -> boolean ********************************************************************)
  5737. (** SHORTINT *)
  5738. PROCEDURE GtrASSSLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5739. VAR lval, rval: SHORTINT;
  5740. BEGIN
  5741. SYSTEM.GET( radr, rval );
  5742. WHILE (len > 0) DO
  5743. SYSTEM.GET( ladr, lval );
  5744. IF lval <= rval THEN RETURN FALSE END;
  5745. INC( ladr, linc ); DEC( len );
  5746. END;
  5747. RETURN TRUE;
  5748. END GtrASSSLoop;
  5749. OPERATOR ">"*( CONST left: ARRAY [ ? ] OF SHORTINT; right: SHORTINT ): BOOLEAN;
  5750. BEGIN
  5751. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), GtrASSSLoop );
  5752. END ">";
  5753. OPERATOR "<"*( left: SHORTINT;CONST right: ARRAY [ ? ] OF SHORTINT ): BOOLEAN;
  5754. BEGIN
  5755. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), GtrASSSLoop );
  5756. END "<";
  5757. (** INTEGER *)
  5758. PROCEDURE GtrAISILoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5759. VAR lval, rval: INTEGER;
  5760. BEGIN
  5761. SYSTEM.GET( radr, rval );
  5762. WHILE (len > 0) DO
  5763. SYSTEM.GET( ladr, lval );
  5764. IF lval <= rval THEN RETURN FALSE END;
  5765. INC( ladr, linc ); DEC( len );
  5766. END;
  5767. RETURN TRUE;
  5768. END GtrAISILoop;
  5769. OPERATOR ">"*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): BOOLEAN;
  5770. BEGIN
  5771. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), GtrAISILoop );
  5772. END ">";
  5773. OPERATOR "<"*( left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER ): BOOLEAN;
  5774. BEGIN
  5775. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), GtrAISILoop );
  5776. END "<";
  5777. (** LONGINT *)
  5778. PROCEDURE GtrALSLLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5779. VAR lval, rval: LONGINT;
  5780. BEGIN
  5781. SYSTEM.GET( radr, rval );
  5782. WHILE (len > 0) DO
  5783. SYSTEM.GET( ladr, lval );
  5784. IF lval <= rval THEN RETURN FALSE END;
  5785. INC( ladr, linc ); DEC( len );
  5786. END;
  5787. RETURN TRUE;
  5788. END GtrALSLLoop;
  5789. OPERATOR ">"*( CONST left: ARRAY [ ? ] OF LONGINT; right: LONGINT ): BOOLEAN;
  5790. BEGIN
  5791. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), GtrALSLLoop );
  5792. END ">";
  5793. OPERATOR "<"*( left: LONGINT; CONST right: ARRAY [ ? ] OF LONGINT ): BOOLEAN;
  5794. BEGIN
  5795. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), GtrALSLLoop );
  5796. END "<";
  5797. (** REAL *)
  5798. PROCEDURE GtrARSRLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5799. VAR lval, rval: REAL;
  5800. BEGIN
  5801. SYSTEM.GET( radr, rval );
  5802. WHILE (len > 0) DO
  5803. SYSTEM.GET( ladr, lval );
  5804. IF lval <= rval THEN RETURN FALSE END;
  5805. INC( ladr, linc ); DEC( len );
  5806. END;
  5807. RETURN TRUE;
  5808. END GtrARSRLoop;
  5809. OPERATOR ">"*( CONST left: ARRAY [ ? ] OF REAL;
  5810. right: REAL ): BOOLEAN;
  5811. BEGIN
  5812. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), GtrARSRLoop );
  5813. END ">";
  5814. OPERATOR "<"*( left: REAL;
  5815. CONST right: ARRAY [ ? ] OF REAL ): BOOLEAN;
  5816. BEGIN
  5817. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), GtrARSRLoop );
  5818. END "<";
  5819. (** LONGREAL *)
  5820. PROCEDURE GtrAXSXLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5821. VAR lval, rval: LONGREAL;
  5822. BEGIN
  5823. SYSTEM.GET( radr, rval );
  5824. WHILE (len > 0) DO
  5825. SYSTEM.GET( ladr, lval );
  5826. IF lval <= rval THEN RETURN FALSE END;
  5827. INC( ladr, linc ); DEC( len );
  5828. END;
  5829. RETURN TRUE;
  5830. END GtrAXSXLoop;
  5831. OPERATOR ">"*( CONST left: ARRAY [ ? ] OF LONGREAL;
  5832. right: LONGREAL ): BOOLEAN;
  5833. BEGIN
  5834. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), GtrAXSXLoop );
  5835. END ">";
  5836. OPERATOR "<"*( left: LONGREAL;
  5837. CONST right: ARRAY [ ? ] OF LONGREAL ): BOOLEAN;
  5838. BEGIN
  5839. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), GtrAXSXLoop );
  5840. END "<";
  5841. (*** geq : array x scalar -> boolean ********************************************************************)
  5842. (** SHORTINT *)
  5843. PROCEDURE GeqASSSLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5844. VAR lval, rval: SHORTINT;
  5845. BEGIN
  5846. SYSTEM.GET( radr, rval );
  5847. WHILE (len > 0) DO
  5848. SYSTEM.GET( ladr, lval );
  5849. IF lval < rval THEN RETURN FALSE END;
  5850. INC( ladr, linc ); DEC( len );
  5851. END;
  5852. RETURN TRUE;
  5853. END GeqASSSLoop;
  5854. OPERATOR ">="*( CONST left: ARRAY [ ? ] OF SHORTINT;
  5855. right: SHORTINT ): BOOLEAN;
  5856. BEGIN
  5857. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), GeqASSSLoop );
  5858. END ">=";
  5859. OPERATOR "<="*( left: SHORTINT;
  5860. CONST right: ARRAY [ ? ] OF SHORTINT ): BOOLEAN;
  5861. BEGIN
  5862. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), GeqASSSLoop );
  5863. END "<=";
  5864. (** INTEGER *)
  5865. PROCEDURE GeqAISILoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5866. VAR lval, rval: INTEGER;
  5867. BEGIN
  5868. SYSTEM.GET( radr, rval );
  5869. WHILE (len > 0) DO
  5870. SYSTEM.GET( ladr, lval );
  5871. IF lval < rval THEN RETURN FALSE END;
  5872. INC( ladr, linc ); DEC( len );
  5873. END;
  5874. RETURN TRUE;
  5875. END GeqAISILoop;
  5876. OPERATOR ">="*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): BOOLEAN;
  5877. BEGIN
  5878. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), GeqAISILoop );
  5879. END ">=";
  5880. OPERATOR "<="*( left: INTEGER;
  5881. CONST right: ARRAY [ ? ] OF INTEGER ): BOOLEAN;
  5882. BEGIN
  5883. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), GeqAISILoop );
  5884. END "<=";
  5885. (** LONGINT *)
  5886. PROCEDURE GeqALSLLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5887. VAR lval, rval: LONGINT;
  5888. BEGIN
  5889. SYSTEM.GET( radr, rval );
  5890. WHILE (len > 0) DO
  5891. SYSTEM.GET( ladr, lval );
  5892. IF lval < rval THEN RETURN FALSE END;
  5893. INC( ladr, linc ); DEC( len );
  5894. END;
  5895. RETURN TRUE;
  5896. END GeqALSLLoop;
  5897. OPERATOR ">="*( CONST left: ARRAY [ ? ] OF LONGINT;
  5898. right: LONGINT ): BOOLEAN;
  5899. BEGIN
  5900. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), GeqALSLLoop );
  5901. END ">=";
  5902. OPERATOR "<="*( left: LONGINT;
  5903. CONST right: ARRAY [ ? ] OF LONGINT ): BOOLEAN;
  5904. BEGIN
  5905. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), GeqALSLLoop );
  5906. END "<=";
  5907. (** REAL *)
  5908. PROCEDURE GeqARSRLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5909. VAR lval, rval: REAL;
  5910. BEGIN
  5911. SYSTEM.GET( radr, rval );
  5912. WHILE (len > 0) DO
  5913. SYSTEM.GET( ladr, lval );
  5914. IF lval < rval THEN RETURN FALSE END;
  5915. INC( ladr, linc ); DEC( len );
  5916. END;
  5917. RETURN TRUE;
  5918. END GeqARSRLoop;
  5919. OPERATOR ">="*( CONST left: ARRAY [ ? ] OF REAL;
  5920. right: REAL ): BOOLEAN;
  5921. BEGIN
  5922. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), GeqARSRLoop );
  5923. END ">=";
  5924. OPERATOR "<="*( left: REAL; CONST right: ARRAY [ ? ] OF REAL ): BOOLEAN;
  5925. BEGIN
  5926. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), GeqARSRLoop );
  5927. END "<=";
  5928. (** LONGREAL *)
  5929. PROCEDURE GeqAXSXLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5930. VAR lval, rval: LONGREAL;
  5931. BEGIN
  5932. SYSTEM.GET( radr, rval );
  5933. WHILE (len > 0) DO
  5934. SYSTEM.GET( ladr, lval );
  5935. IF lval < rval THEN RETURN FALSE END;
  5936. INC( ladr, linc ); DEC( len );
  5937. END;
  5938. RETURN TRUE;
  5939. END GeqAXSXLoop;
  5940. OPERATOR ">="*( CONST left: ARRAY [ ? ] OF LONGREAL; right: LONGREAL ): BOOLEAN;
  5941. BEGIN
  5942. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), GeqAXSXLoop );
  5943. END ">=";
  5944. OPERATOR "<="*( left: LONGREAL; CONST right: ARRAY [ ? ] OF LONGREAL ): BOOLEAN;
  5945. BEGIN
  5946. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), GeqAXSXLoop );
  5947. END "<=";
  5948. (*** leq : array x scalar -> boolean ********************************************************************)
  5949. (** SHORTINT *)
  5950. PROCEDURE LeqASSSLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5951. VAR lval, rval: SHORTINT;
  5952. BEGIN
  5953. SYSTEM.GET( radr, rval );
  5954. WHILE (len > 0) DO
  5955. SYSTEM.GET( ladr, lval );
  5956. IF lval > rval THEN RETURN FALSE END;
  5957. INC( ladr, linc ); DEC( len );
  5958. END;
  5959. RETURN TRUE;
  5960. END LeqASSSLoop;
  5961. OPERATOR "<="*( CONST left: ARRAY [ ? ] OF SHORTINT;right: SHORTINT ): BOOLEAN;
  5962. BEGIN
  5963. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), LeqASSSLoop );
  5964. END "<=";
  5965. OPERATOR ">="*( left: SHORTINT; CONST right: ARRAY [ ? ] OF SHORTINT ): BOOLEAN;
  5966. BEGIN
  5967. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), LeqASSSLoop );
  5968. END ">=";
  5969. (** INTEGER *)
  5970. PROCEDURE LeqAISILoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5971. VAR lval, rval: INTEGER;
  5972. BEGIN
  5973. SYSTEM.GET( radr, rval );
  5974. WHILE (len > 0) DO
  5975. SYSTEM.GET( ladr, lval );
  5976. IF lval > rval THEN RETURN FALSE END;
  5977. INC( ladr, linc ); DEC( len );
  5978. END;
  5979. RETURN TRUE;
  5980. END LeqAISILoop;
  5981. OPERATOR "<="*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): BOOLEAN;
  5982. BEGIN
  5983. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), LeqAISILoop );
  5984. END "<=";
  5985. OPERATOR ">="*( left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER ): BOOLEAN;
  5986. BEGIN
  5987. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), LeqAISILoop );
  5988. END ">=";
  5989. (** LONGINT *)
  5990. PROCEDURE LeqALSLLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  5991. VAR lval, rval: LONGINT;
  5992. BEGIN
  5993. SYSTEM.GET( radr, rval );
  5994. WHILE (len > 0) DO
  5995. SYSTEM.GET( ladr, lval );
  5996. IF lval > rval THEN RETURN FALSE END;
  5997. INC( ladr, linc ); DEC( len );
  5998. END;
  5999. RETURN TRUE;
  6000. END LeqALSLLoop;
  6001. OPERATOR "<="*( CONST left: ARRAY [ ? ] OF LONGINT; right: LONGINT ): BOOLEAN;
  6002. BEGIN
  6003. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), LeqALSLLoop );
  6004. END "<=";
  6005. OPERATOR ">="*( left: LONGINT; CONST right: ARRAY [ ? ] OF LONGINT ): BOOLEAN;
  6006. BEGIN
  6007. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), LeqALSLLoop );
  6008. END ">=";
  6009. (** REAL *)
  6010. PROCEDURE LeqARSRLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  6011. VAR lval, rval: REAL;
  6012. BEGIN
  6013. SYSTEM.GET( radr, rval );
  6014. WHILE (len > 0) DO
  6015. SYSTEM.GET( ladr, lval );
  6016. IF lval > rval THEN RETURN FALSE END;
  6017. INC( ladr, linc ); DEC( len );
  6018. END;
  6019. RETURN TRUE;
  6020. END LeqARSRLoop;
  6021. OPERATOR "<="*( CONST left: ARRAY [ ? ] OF REAL; right: REAL ): BOOLEAN;
  6022. BEGIN
  6023. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), LeqARSRLoop );
  6024. END "<=";
  6025. OPERATOR ">="*( left: REAL; CONST right: ARRAY [ ? ] OF REAL ): BOOLEAN;
  6026. BEGIN
  6027. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), LeqARSRLoop );
  6028. END ">=";
  6029. (** LONGREAL *)
  6030. PROCEDURE LeqAXSXLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  6031. VAR lval, rval: LONGREAL;
  6032. BEGIN
  6033. SYSTEM.GET( radr, rval );
  6034. WHILE (len > 0) DO
  6035. SYSTEM.GET( ladr, lval );
  6036. IF lval > rval THEN RETURN FALSE END;
  6037. INC( ladr, linc ); DEC( len );
  6038. END;
  6039. RETURN TRUE;
  6040. END LeqAXSXLoop;
  6041. OPERATOR "<="*( CONST left: ARRAY [ ? ] OF LONGREAL; right: LONGREAL ): BOOLEAN;
  6042. BEGIN
  6043. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), LeqAXSXLoop );
  6044. END "<=";
  6045. OPERATOR ">="*( left: LONGREAL; CONST right: ARRAY [ ? ] OF LONGREAL ): BOOLEAN;
  6046. BEGIN
  6047. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), LeqAXSXLoop );
  6048. END ">=";
  6049. (*** lss: array x scalar -> boolean ********************************************************************)
  6050. (** SHORTINT *)
  6051. PROCEDURE LssASSSLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  6052. VAR lval, rval: SHORTINT;
  6053. BEGIN
  6054. SYSTEM.GET( radr, rval );
  6055. WHILE (len > 0) DO
  6056. SYSTEM.GET( ladr, lval );
  6057. IF lval >= rval THEN RETURN FALSE END;
  6058. INC( ladr, linc ); DEC( len );
  6059. END;
  6060. RETURN TRUE;
  6061. END LssASSSLoop;
  6062. OPERATOR "<"*( CONST left: ARRAY [ ? ] OF SHORTINT; right: SHORTINT ): BOOLEAN;
  6063. BEGIN
  6064. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), LssASSSLoop );
  6065. END "<";
  6066. OPERATOR ">"*( left: SHORTINT; CONST right: ARRAY [ ? ] OF SHORTINT ): BOOLEAN;
  6067. BEGIN
  6068. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), LssASSSLoop );
  6069. END ">";
  6070. (** INTEGER *)
  6071. PROCEDURE LssAISILoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  6072. VAR lval, rval: INTEGER;
  6073. BEGIN
  6074. SYSTEM.GET( radr, rval );
  6075. WHILE (len > 0) DO
  6076. SYSTEM.GET( ladr, lval );
  6077. IF lval >= rval THEN RETURN FALSE END;
  6078. INC( ladr, linc ); DEC( len );
  6079. END;
  6080. RETURN TRUE;
  6081. END LssAISILoop;
  6082. OPERATOR "<"*(CONST left: ARRAY [ ? ] OF INTEGER; right: INTEGER ): BOOLEAN;
  6083. BEGIN
  6084. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), LssAISILoop );
  6085. END "<";
  6086. OPERATOR ">"*( left: INTEGER; CONST right: ARRAY [ ? ] OF INTEGER ): BOOLEAN;
  6087. BEGIN
  6088. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), LssAISILoop );
  6089. END ">";
  6090. (** LONGINT *)
  6091. PROCEDURE LssALSLLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  6092. VAR lval, rval: LONGINT;
  6093. BEGIN
  6094. SYSTEM.GET( radr, rval );
  6095. WHILE (len > 0) DO
  6096. SYSTEM.GET( ladr, lval );
  6097. IF lval >= rval THEN RETURN FALSE END;
  6098. INC( ladr, linc ); DEC( len );
  6099. END;
  6100. RETURN TRUE;
  6101. END LssALSLLoop;
  6102. OPERATOR "<"*( CONST left: ARRAY [ ? ] OF LONGINT; right: LONGINT ): BOOLEAN;
  6103. BEGIN
  6104. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), LssALSLLoop );
  6105. END "<";
  6106. OPERATOR ">"*( left: LONGINT;CONST right: ARRAY [ ? ] OF LONGINT ): BOOLEAN;
  6107. BEGIN
  6108. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), LssALSLLoop );
  6109. END ">";
  6110. (** REAL *)
  6111. PROCEDURE LssARSRLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  6112. VAR lval, rval: REAL;
  6113. BEGIN
  6114. SYSTEM.GET( radr, rval );
  6115. WHILE (len > 0) DO
  6116. SYSTEM.GET( ladr, lval );
  6117. IF lval >= rval THEN RETURN FALSE END;
  6118. INC( ladr, linc ); DEC( len );
  6119. END;
  6120. RETURN TRUE;
  6121. END LssARSRLoop;
  6122. OPERATOR "<"*( CONST left: ARRAY [ ? ] OF REAL;
  6123. right: REAL ): BOOLEAN;
  6124. BEGIN
  6125. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), LssARSRLoop );
  6126. END "<";
  6127. OPERATOR ">"*( left: REAL;
  6128. CONST right: ARRAY [ ? ] OF REAL ): BOOLEAN;
  6129. BEGIN
  6130. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), LssARSRLoop );
  6131. END ">";
  6132. (** LONGREAL *)
  6133. PROCEDURE LssAXSXLoop( ladr, radr, linc, len: LONGINT ): BOOLEAN;
  6134. VAR lval, rval: LONGREAL;
  6135. BEGIN
  6136. SYSTEM.GET( radr, rval );
  6137. WHILE (len > 0) DO
  6138. SYSTEM.GET( ladr, lval );
  6139. IF lval >= rval THEN RETURN FALSE END;
  6140. INC( ladr, linc ); DEC( len );
  6141. END;
  6142. RETURN TRUE;
  6143. END LssAXSXLoop;
  6144. OPERATOR "<"*( CONST left: ARRAY [ ? ] OF LONGREAL;
  6145. right: LONGREAL ): BOOLEAN;
  6146. BEGIN
  6147. RETURN ApplyBinaryASBOp( ADDRESSOF( left ), ADDRESSOF( right ), LssAXSXLoop );
  6148. END "<";
  6149. OPERATOR ">"*( left: LONGREAL;
  6150. CONST right: ARRAY [ ? ] OF LONGREAL ): BOOLEAN;
  6151. BEGIN
  6152. RETURN ApplyBinaryASBOp( ADDRESSOF( right ), ADDRESSOF( left ), LssAXSXLoop );
  6153. END ">";
  6154. (**** binary max/min operators array x scalar-> array ********************************************************************)
  6155. PROCEDURE MaxAXSXLoop( ladr, radr, dadr, linc, dinc, len: Address );
  6156. VAR lval, val: LONGREAL;
  6157. BEGIN
  6158. SYSTEM.GET( radr, val );
  6159. WHILE (len > 0) DO
  6160. SYSTEM.GET( ladr, lval );
  6161. INC( ladr, linc ); DEC( len );
  6162. IF lval>val THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT(dadr, val) END;;
  6163. INC(dadr,dinc);
  6164. END;
  6165. END MaxAXSXLoop;
  6166. OPERATOR "MAX"*(CONST left: ARRAY [?] OF LONGREAL; right: LONGREAL): ARRAY [?] OF LONGREAL;
  6167. TYPE Type = LONGREAL;
  6168. BEGIN
  6169. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( Type ), MaxAXSXLoop );
  6170. RETURN RESULT
  6171. END "MAX";
  6172. PROCEDURE MaxARSRLoop( ladr, radr, dadr, linc, dinc, len: Address );
  6173. VAR lval, val: REAL;
  6174. BEGIN
  6175. SYSTEM.GET( radr, val );
  6176. WHILE (len > 0) DO
  6177. SYSTEM.GET( ladr, lval );
  6178. INC( ladr, linc ); DEC( len );
  6179. IF lval>val THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT(dadr, val) END;;
  6180. INC(dadr,dinc);
  6181. END;
  6182. END MaxARSRLoop;
  6183. OPERATOR "MAX"*(CONST left: ARRAY [?] OF REAL; right: REAL): ARRAY [?] OF REAL;
  6184. TYPE Type = REAL;
  6185. BEGIN
  6186. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( Type ), MaxARSRLoop );
  6187. RETURN RESULT
  6188. END "MAX";
  6189. PROCEDURE MaxALSLLoop( ladr, radr, dadr, linc, dinc, len: Address );
  6190. VAR lval, val: LONGINT;
  6191. BEGIN
  6192. SYSTEM.GET( radr, val );
  6193. WHILE (len > 0) DO
  6194. SYSTEM.GET( ladr, lval );
  6195. INC( ladr, linc ); DEC( len );
  6196. IF lval>val THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT(dadr, val) END;
  6197. INC(dadr,dinc);
  6198. END;
  6199. END MaxALSLLoop;
  6200. OPERATOR "MAX"*(CONST left: ARRAY [?] OF LONGINT; right: LONGINT): ARRAY [?] OF LONGINT;
  6201. TYPE Type = LONGINT;
  6202. BEGIN
  6203. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( Type ), MaxALSLLoop );
  6204. RETURN RESULT
  6205. END "MAX";
  6206. PROCEDURE MaxAISILoop( ladr, radr, dadr, linc, dinc, len: Address );
  6207. VAR lval, val: INTEGER;
  6208. BEGIN
  6209. SYSTEM.GET( radr, val );
  6210. WHILE (len > 0) DO
  6211. SYSTEM.GET( ladr, lval );
  6212. INC( ladr, linc ); DEC( len );
  6213. IF lval>val THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT(dadr, val) END;
  6214. INC(dadr,dinc);
  6215. END;
  6216. END MaxAISILoop;
  6217. OPERATOR "MAX"*(CONST left: ARRAY [?] OF INTEGER; right: INTEGER): ARRAY [?] OF INTEGER;
  6218. TYPE Type = INTEGER;
  6219. BEGIN
  6220. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( Type ), MaxAISILoop );
  6221. RETURN RESULT
  6222. END "MAX";
  6223. PROCEDURE MaxASSSLoop( ladr, radr, dadr, linc, dinc, len: Address );
  6224. VAR lval, val: SHORTINT;
  6225. BEGIN
  6226. SYSTEM.GET( radr, val );
  6227. WHILE (len > 0) DO
  6228. SYSTEM.GET( ladr, lval );
  6229. INC( ladr, linc ); DEC( len );
  6230. IF lval>val THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT(dadr, val) END;
  6231. INC(dadr,dinc);
  6232. END;
  6233. END MaxASSSLoop;
  6234. OPERATOR "MAX"*(CONST left: ARRAY [?] OF SHORTINT; right: SHORTINT): ARRAY [?] OF SHORTINT;
  6235. TYPE Type = SHORTINT;
  6236. BEGIN
  6237. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( Type ), MaxASSSLoop );
  6238. RETURN RESULT
  6239. END "MAX";
  6240. PROCEDURE MinAXSXLoop( ladr, radr, dadr, linc, dinc, len: Address );
  6241. VAR lval, val: LONGREAL;
  6242. BEGIN
  6243. SYSTEM.GET( radr, val );
  6244. WHILE (len > 0) DO
  6245. SYSTEM.GET( ladr, lval );
  6246. INC( ladr, linc ); DEC( len );
  6247. IF lval<val THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT(dadr, val) END;;
  6248. INC(dadr,dinc);
  6249. END;
  6250. END MinAXSXLoop;
  6251. OPERATOR "MIN"*(CONST left: ARRAY [?] OF LONGREAL; right: LONGREAL): ARRAY [?] OF LONGREAL;
  6252. TYPE Type = LONGREAL;
  6253. BEGIN
  6254. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( Type ), MinAXSXLoop );
  6255. RETURN RESULT
  6256. END "MIN";
  6257. PROCEDURE MinARSRLoop( ladr, radr, dadr, linc, dinc, len: Address );
  6258. VAR lval, val: REAL;
  6259. BEGIN
  6260. SYSTEM.GET( radr, val );
  6261. WHILE (len > 0) DO
  6262. SYSTEM.GET( ladr, lval );
  6263. INC( ladr, linc ); DEC( len );
  6264. IF lval<val THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT(dadr, val) END;;
  6265. INC(dadr,dinc);
  6266. END;
  6267. END MinARSRLoop;
  6268. OPERATOR "MIN"*(CONST left: ARRAY [?] OF REAL; right: REAL): ARRAY [?] OF REAL;
  6269. TYPE Type = REAL;
  6270. BEGIN
  6271. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( Type ), MinARSRLoop );
  6272. RETURN RESULT
  6273. END "MIN";
  6274. PROCEDURE MinALSLLoop( ladr, radr, dadr, linc, dinc, len: Address );
  6275. VAR lval, val: LONGINT;
  6276. BEGIN
  6277. SYSTEM.GET( radr, val );
  6278. WHILE (len > 0) DO
  6279. SYSTEM.GET( ladr, lval );
  6280. INC( ladr, linc ); DEC( len );
  6281. IF lval<val THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT(dadr, val) END;
  6282. INC(dadr,dinc);
  6283. END;
  6284. END MinALSLLoop;
  6285. OPERATOR "MIN"*(CONST left: ARRAY [?] OF LONGINT; right: LONGINT): ARRAY [?] OF LONGINT;
  6286. TYPE Type = LONGINT;
  6287. BEGIN
  6288. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( Type ), MinALSLLoop );
  6289. RETURN RESULT
  6290. END "MIN";
  6291. PROCEDURE MinAISILoop( ladr, radr, dadr, linc, dinc, len: Address );
  6292. VAR lval, val: INTEGER;
  6293. BEGIN
  6294. SYSTEM.GET( radr, val );
  6295. WHILE (len > 0) DO
  6296. SYSTEM.GET( ladr, lval );
  6297. INC( ladr, linc ); DEC( len );
  6298. IF lval<val THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT(dadr, val) END;
  6299. INC(dadr,dinc);
  6300. END;
  6301. END MinAISILoop;
  6302. OPERATOR "MIN"*(CONST left: ARRAY [?] OF INTEGER; right: INTEGER): ARRAY [?] OF INTEGER;
  6303. TYPE Type = INTEGER;
  6304. BEGIN
  6305. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( Type ), MinAISILoop );
  6306. RETURN RESULT
  6307. END "MIN";
  6308. PROCEDURE MinASSSLoop( ladr, radr, dadr, linc, dinc, len: Address );
  6309. VAR lval, val: SHORTINT;
  6310. BEGIN
  6311. SYSTEM.GET( radr, val );
  6312. WHILE (len > 0) DO
  6313. SYSTEM.GET( ladr, lval );
  6314. INC( ladr, linc ); DEC( len );
  6315. IF lval<val THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT(dadr, val) END;
  6316. INC(dadr,dinc);
  6317. END;
  6318. END MinASSSLoop;
  6319. OPERATOR "MIN"*(CONST left: ARRAY [?] OF SHORTINT; right: SHORTINT): ARRAY [?] OF SHORTINT;
  6320. TYPE Type = SHORTINT;
  6321. BEGIN
  6322. ApplyBinaryASAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( Type ), MinASSSLoop );
  6323. RETURN RESULT
  6324. END "MIN";
  6325. (**** binary max/min operators array x array -> array ********************************************************************)
  6326. PROCEDURE MaxAXAXLoop( ladr, radr, dadr, linc, rinc, dinc, len: Address );
  6327. VAR lval, rval: LONGREAL;
  6328. BEGIN
  6329. WHILE (len > 0) DO
  6330. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  6331. INC( ladr, linc ); INC(radr,rinc ); DEC( len );
  6332. IF lval>rval THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT (dadr,rval) END;
  6333. INC(dadr,dinc);
  6334. END;
  6335. END MaxAXAXLoop;
  6336. OPERATOR "MAX"*(CONST left, right: ARRAY [?] OF LONGREAL): ARRAY [?] OF LONGREAL;
  6337. BEGIN
  6338. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( LONGREAL ), MaxAXAXLoop );
  6339. RETURN RESULT
  6340. END "MAX";
  6341. PROCEDURE MaxARARLoop( ladr, radr, dadr, linc, rinc, dinc, len: Address );
  6342. VAR lval, rval: REAL ;
  6343. BEGIN
  6344. WHILE (len > 0) DO
  6345. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  6346. INC( ladr, linc ); INC(radr,rinc ); DEC( len );
  6347. IF lval>rval THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT (dadr,rval) END;
  6348. INC(dadr,dinc);
  6349. END;
  6350. END MaxARARLoop;
  6351. OPERATOR "MAX"*(CONST left, right: ARRAY [?] OF REAL): ARRAY [?] OF REAL;
  6352. BEGIN
  6353. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ), MaxARARLoop );
  6354. RETURN RESULT
  6355. END "MAX";
  6356. PROCEDURE MaxALALLoop( ladr, radr, dadr, linc, rinc, dinc, len: Address );
  6357. VAR lval, rval: LONGINT;
  6358. BEGIN
  6359. WHILE (len > 0) DO
  6360. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  6361. INC( ladr, linc ); INC(radr,rinc ); DEC( len );
  6362. IF lval>rval THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT (dadr,rval) END;
  6363. INC(dadr,dinc);
  6364. END;
  6365. END MaxALALLoop;
  6366. OPERATOR "MAX"*(CONST left, right: ARRAY [?] OF LONGINT): ARRAY [?] OF LONGINT ;
  6367. BEGIN
  6368. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( LONGINT ), MaxALALLoop );
  6369. RETURN RESULT
  6370. END "MAX";
  6371. PROCEDURE MaxAIAILoop( ladr, radr, dadr, linc, rinc, dinc, len: Address );
  6372. VAR lval, rval: INTEGER;
  6373. BEGIN
  6374. WHILE (len > 0) DO
  6375. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  6376. INC( ladr, linc ); INC(radr,rinc ); DEC( len );
  6377. IF lval>rval THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT (dadr,rval) END;
  6378. INC(dadr,dinc);
  6379. END;
  6380. END MaxAIAILoop;
  6381. OPERATOR "MAX"*(CONST left, right: ARRAY [?] OF INTEGER): ARRAY [?] OF INTEGER;
  6382. BEGIN
  6383. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( INTEGER ), MaxAIAILoop );
  6384. RETURN RESULT
  6385. END "MAX";
  6386. PROCEDURE MaxASASLoop( ladr, radr, dadr, linc, rinc, dinc, len: Address );
  6387. VAR lval, rval: SHORTINT;
  6388. BEGIN
  6389. WHILE (len > 0) DO
  6390. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  6391. INC( ladr, linc ); INC(radr,rinc ); DEC( len );
  6392. IF lval>rval THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT (dadr,rval) END;
  6393. INC(dadr,dinc);
  6394. END;
  6395. END MaxASASLoop;
  6396. OPERATOR "MAX"*(CONST left, right: ARRAY [?] OF SHORTINT): ARRAY [?] OF SHORTINT;
  6397. BEGIN
  6398. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( SHORTINT ), MaxASASLoop );
  6399. RETURN RESULT
  6400. END "MAX";
  6401. PROCEDURE MinAXAXLoop( ladr, radr, dadr, linc, rinc, dinc, len: Address );
  6402. VAR lval, rval: LONGREAL;
  6403. BEGIN
  6404. WHILE (len > 0) DO
  6405. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  6406. INC( ladr, linc ); INC(radr,rinc ); DEC( len );
  6407. IF lval<rval THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT (dadr,rval) END;
  6408. INC(dadr,dinc);
  6409. END;
  6410. END MinAXAXLoop;
  6411. OPERATOR "MIN"*(CONST left, right: ARRAY [?] OF LONGREAL): ARRAY [?] OF LONGREAL;
  6412. BEGIN
  6413. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( LONGREAL ), MinAXAXLoop );
  6414. RETURN RESULT
  6415. END "MIN";
  6416. PROCEDURE MinARARLoop( ladr, radr, dadr, linc, rinc, dinc, len: Address );
  6417. VAR lval, rval: REAL ;
  6418. BEGIN
  6419. WHILE (len > 0) DO
  6420. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  6421. INC( ladr, linc ); INC(radr,rinc ); DEC( len );
  6422. IF lval<rval THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT (dadr,rval) END;
  6423. INC(dadr,dinc);
  6424. END;
  6425. END MinARARLoop;
  6426. OPERATOR "MIN"*(CONST left, right: ARRAY [?] OF REAL): ARRAY [?] OF REAL;
  6427. BEGIN
  6428. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ), MinARARLoop );
  6429. RETURN RESULT
  6430. END "MIN";
  6431. PROCEDURE MinALALLoop( ladr, radr, dadr, linc, rinc, dinc, len: Address );
  6432. VAR lval, rval: LONGINT;
  6433. BEGIN
  6434. WHILE (len > 0) DO
  6435. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  6436. INC( ladr, linc ); INC(radr,rinc ); DEC( len );
  6437. IF lval<rval THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT (dadr,rval) END;
  6438. INC(dadr,dinc);
  6439. END;
  6440. END MinALALLoop;
  6441. OPERATOR "MIN"*(CONST left, right: ARRAY [?] OF LONGINT): ARRAY [?] OF LONGINT ;
  6442. BEGIN
  6443. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( LONGINT ), MinALALLoop );
  6444. RETURN RESULT
  6445. END "MIN";
  6446. PROCEDURE MinAIAILoop( ladr, radr, dadr, linc, rinc, dinc, len: Address );
  6447. VAR lval, rval: INTEGER;
  6448. BEGIN
  6449. WHILE (len > 0) DO
  6450. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  6451. INC( ladr, linc ); INC(radr,rinc ); DEC( len );
  6452. IF lval<rval THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT (dadr,rval) END;
  6453. INC(dadr,dinc);
  6454. END;
  6455. END MinAIAILoop;
  6456. OPERATOR "MIN"*(CONST left, right: ARRAY [?] OF INTEGER): ARRAY [?] OF INTEGER;
  6457. BEGIN
  6458. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( INTEGER ), MinAIAILoop );
  6459. RETURN RESULT
  6460. END "MIN";
  6461. PROCEDURE MinASASLoop( ladr, radr, dadr, linc, rinc, dinc, len: Address );
  6462. VAR lval, rval: SHORTINT;
  6463. BEGIN
  6464. WHILE (len > 0) DO
  6465. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval );
  6466. INC( ladr, linc ); INC(radr,rinc ); DEC( len );
  6467. IF lval<rval THEN SYSTEM.PUT( dadr, lval) ELSE SYSTEM.PUT (dadr,rval) END;
  6468. INC(dadr,dinc);
  6469. END;
  6470. END MinASASLoop;
  6471. OPERATOR "MIN"*(CONST left, right: ARRAY [?] OF SHORTINT): ARRAY [?] OF SHORTINT;
  6472. BEGIN
  6473. ApplyBinaryAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( SHORTINT ), MinASASLoop );
  6474. RETURN RESULT
  6475. END "MIN";
  6476. (**** unary operators array -> scalar ********************************************************************)
  6477. (*** min: array -> scalar ****************************************)
  6478. (** SHORTINT *)
  6479. PROCEDURE MinASLoop( ladr, dadr, linc, len: LONGINT );
  6480. VAR lval, dval: SHORTINT;
  6481. BEGIN
  6482. SYSTEM.GET( dadr, dval );
  6483. WHILE (len > 0) DO
  6484. SYSTEM.GET( ladr, lval );
  6485. IF lval < dval THEN dval := lval END;
  6486. INC( ladr, linc ); DEC( len );
  6487. END;
  6488. SYSTEM.PUT( dadr, dval );
  6489. END MinASLoop;
  6490. OPERATOR "MIN"*( CONST left: ARRAY [ ? ] OF SHORTINT ): SHORTINT;
  6491. TYPE Type = SHORTINT;
  6492. VAR val: Type;
  6493. BEGIN
  6494. val := MAX( Type );
  6495. ApplyUnaryASOp( ADDRESSOF( val ), ADDRESSOF( left ), MinASLoop ); RETURN val;
  6496. END "MIN";
  6497. (** INTEGER *)
  6498. PROCEDURE MinAILoop( ladr, dadr, linc, len: LONGINT );
  6499. VAR lval, dval: INTEGER;
  6500. BEGIN
  6501. SYSTEM.GET( dadr, dval );
  6502. WHILE (len > 0) DO
  6503. SYSTEM.GET( ladr, lval );
  6504. IF lval < dval THEN dval := lval END;
  6505. INC( ladr, linc ); DEC( len );
  6506. END;
  6507. SYSTEM.PUT( dadr, dval );
  6508. END MinAILoop;
  6509. OPERATOR "MIN"*( CONST left: ARRAY [ ? ] OF INTEGER ): INTEGER;
  6510. TYPE Type = INTEGER;
  6511. VAR val: Type;
  6512. BEGIN
  6513. val := MAX( Type );
  6514. ApplyUnaryASOp( ADDRESSOF( val ), ADDRESSOF( left ), MinAILoop ); RETURN val;
  6515. END "MIN";
  6516. (** LONGINT *)
  6517. PROCEDURE MinALLoop( ladr, dadr, linc, len: LONGINT );
  6518. VAR lval, dval: LONGINT;
  6519. BEGIN
  6520. SYSTEM.GET( dadr, dval );
  6521. WHILE (len > 0) DO
  6522. SYSTEM.GET( ladr, lval );
  6523. IF lval < dval THEN dval := lval END;
  6524. INC( ladr, linc ); DEC( len );
  6525. END;
  6526. SYSTEM.PUT( dadr, dval );
  6527. END MinALLoop;
  6528. OPERATOR "MIN"*( CONST left: ARRAY [ ? ] OF LONGINT ): LONGINT;
  6529. TYPE Type = LONGINT;
  6530. VAR val: Type;
  6531. BEGIN
  6532. val := MAX( Type );
  6533. ApplyUnaryASOp( ADDRESSOF( val ), ADDRESSOF( left ), MinALLoop ); RETURN val;
  6534. END "MIN";
  6535. (** REAL *)
  6536. PROCEDURE MinARLoop( ladr, dadr, linc, len: LONGINT );
  6537. VAR lval, dval: REAL;
  6538. BEGIN
  6539. SYSTEM.GET( dadr, dval );
  6540. WHILE (len > 0) DO
  6541. SYSTEM.GET( ladr, lval );
  6542. IF lval < dval THEN dval := lval END;
  6543. INC( ladr, linc ); DEC( len );
  6544. END;
  6545. SYSTEM.PUT( dadr, dval );
  6546. END MinARLoop;
  6547. OPERATOR "MIN"*( CONST left: ARRAY [ ? ] OF REAL ): REAL;
  6548. TYPE Type = REAL;
  6549. VAR val: Type;
  6550. BEGIN
  6551. val := MAX( Type );
  6552. ApplyUnaryASOp( ADDRESSOF( val ), ADDRESSOF( left ), MinARLoop ); RETURN val;
  6553. END "MIN";
  6554. (** LONGREAL *)
  6555. PROCEDURE MinAXLoop( ladr, dadr, linc, len: LONGINT );
  6556. VAR lval, dval: LONGREAL;
  6557. BEGIN
  6558. SYSTEM.GET( dadr, dval );
  6559. WHILE (len > 0) DO
  6560. SYSTEM.GET( ladr, lval );
  6561. IF lval < dval THEN dval := lval END;
  6562. INC( ladr, linc ); DEC( len );
  6563. END;
  6564. SYSTEM.PUT( dadr, dval );
  6565. END MinAXLoop;
  6566. OPERATOR "MIN"*( CONST left: ARRAY [ ? ] OF LONGREAL ): LONGREAL;
  6567. TYPE Type = LONGREAL;
  6568. VAR val: Type;
  6569. BEGIN
  6570. val := MAX( Type );
  6571. ApplyUnaryASOp( ADDRESSOF( val ), ADDRESSOF( left ), MinAXLoop ); RETURN val;
  6572. END "MIN";
  6573. (*** max: array -> scalar ********************************************************************)
  6574. (** SHORTINT *)
  6575. PROCEDURE MaxASLoop( ladr, dadr, linc, len: LONGINT );
  6576. VAR lval, dval: SHORTINT;
  6577. BEGIN
  6578. SYSTEM.GET( dadr, dval );
  6579. WHILE (len > 0) DO
  6580. SYSTEM.GET( ladr, lval );
  6581. IF lval > dval THEN dval := lval END;
  6582. INC( ladr, linc ); DEC( len );
  6583. END;
  6584. SYSTEM.PUT( dadr, dval );
  6585. END MaxASLoop;
  6586. OPERATOR "MAX"*( CONST left: ARRAY [ ? ] OF SHORTINT ): SHORTINT;
  6587. TYPE Type = SHORTINT;
  6588. VAR val: Type;
  6589. BEGIN
  6590. val := MIN( Type );
  6591. ApplyUnaryASOp( ADDRESSOF( val ), ADDRESSOF( left ), MaxASLoop ); RETURN val;
  6592. END "MAX";
  6593. (** INTEGER *)
  6594. PROCEDURE MaxAILoop( ladr, dadr, linc, len: LONGINT );
  6595. VAR lval, dval: INTEGER;
  6596. BEGIN
  6597. SYSTEM.GET( dadr, dval );
  6598. WHILE (len > 0) DO
  6599. SYSTEM.GET( ladr, lval );
  6600. IF lval > dval THEN dval := lval END;
  6601. INC( ladr, linc ); DEC( len );
  6602. END;
  6603. SYSTEM.PUT( dadr, dval );
  6604. END MaxAILoop;
  6605. OPERATOR "MAX"*( CONST left: ARRAY [ ? ] OF INTEGER ): INTEGER;
  6606. TYPE Type = INTEGER;
  6607. VAR val: Type;
  6608. BEGIN
  6609. val := MIN( Type );
  6610. ApplyUnaryASOp( ADDRESSOF( val ), ADDRESSOF( left ), MaxAILoop ); RETURN val;
  6611. END "MAX";
  6612. (** LONGINT *)
  6613. PROCEDURE MaxALLoop( ladr, dadr, linc, len: LONGINT );
  6614. VAR lval, dval: LONGINT;
  6615. BEGIN
  6616. SYSTEM.GET( dadr, dval );
  6617. WHILE (len > 0) DO
  6618. SYSTEM.GET( ladr, lval );
  6619. IF lval > dval THEN dval := lval END;
  6620. INC( ladr, linc ); DEC( len );
  6621. END;
  6622. SYSTEM.PUT( dadr, dval );
  6623. END MaxALLoop;
  6624. OPERATOR "MAX"*( CONST left: ARRAY [ ? ] OF LONGINT ): LONGINT;
  6625. TYPE Type = LONGINT;
  6626. VAR val: Type;
  6627. BEGIN
  6628. val := MIN( Type );
  6629. ApplyUnaryASOp( ADDRESSOF( val ), ADDRESSOF( left ), MaxALLoop ); RETURN val;
  6630. END "MAX";
  6631. (** REAL *)
  6632. PROCEDURE MaxARLoop( ladr, dadr, linc, len: LONGINT );
  6633. VAR lval, dval: REAL;
  6634. BEGIN
  6635. SYSTEM.GET( dadr, dval );
  6636. WHILE (len > 0) DO
  6637. SYSTEM.GET( ladr, lval );
  6638. IF lval > dval THEN dval := lval END;
  6639. INC( ladr, linc ); DEC( len );
  6640. END;
  6641. SYSTEM.PUT( dadr, dval );
  6642. END MaxARLoop;
  6643. OPERATOR "MAX"*( CONST left: ARRAY [ ? ] OF REAL ): REAL;
  6644. TYPE Type = REAL;
  6645. VAR val: Type;
  6646. BEGIN
  6647. val := MIN( Type );
  6648. ApplyUnaryASOp( ADDRESSOF( val ), ADDRESSOF( left ), MaxARLoop ); RETURN val;
  6649. END "MAX";
  6650. (** LONGREAL *)
  6651. PROCEDURE MaxAXLoop( ladr, dadr, linc, len: LONGINT );
  6652. VAR lval, dval: LONGREAL;
  6653. BEGIN
  6654. SYSTEM.GET( dadr, dval );
  6655. WHILE (len > 0) DO
  6656. SYSTEM.GET( ladr, lval );
  6657. IF lval > dval THEN dval := lval END;
  6658. INC( ladr, linc ); DEC( len );
  6659. END;
  6660. SYSTEM.PUT( dadr, dval );
  6661. END MaxAXLoop;
  6662. OPERATOR "MAX"*( CONST left: ARRAY [ ? ] OF LONGREAL ): LONGREAL;
  6663. TYPE Type = LONGREAL;
  6664. VAR val: Type;
  6665. BEGIN
  6666. val := MIN( Type );
  6667. ApplyUnaryASOp( ADDRESSOF( val ), ADDRESSOF( left ), MaxAXLoop ); RETURN val;
  6668. END "MAX";
  6669. (*** LEN: array -> array **)
  6670. OPERATOR "LEN"*(CONST left: ARRAY [?]): ARRAY [*] OF LONGINT;
  6671. VAR src,dim,i: LONGINT;
  6672. BEGIN
  6673. src := SYSTEM.VAL(LONGINT,left);
  6674. dim := GetDim( src );
  6675. IF (DIM(RESULT)#1) OR (LEN(RESULT,0) # dim) THEN NEW(RESULT,dim) END;
  6676. FOR i := 0 TO dim-1 DO RESULT[i] := GetLen(src,i) END;
  6677. RETURN RESULT
  6678. END "LEN";
  6679. (*** SUM: array -> scalar ********************************************************************)
  6680. (** SHORTINT *)
  6681. PROCEDURE SumASLoop( ladr, dadr, linc, len: LONGINT );
  6682. VAR lval, dval: SHORTINT;
  6683. BEGIN
  6684. SYSTEM.GET( dadr, dval );
  6685. WHILE (len > 0) DO
  6686. SYSTEM.GET( ladr, lval ); dval := dval + lval; INC( ladr, linc ); DEC( len );
  6687. END;
  6688. SYSTEM.PUT( dadr, dval );
  6689. END SumASLoop;
  6690. OPERATOR "SUM"*( CONST left: ARRAY [ ? ] OF SHORTINT ): SHORTINT;
  6691. TYPE Type = SHORTINT;
  6692. VAR val: Type;
  6693. BEGIN
  6694. val := 0; ApplyUnaryASOp( ADDRESSOF( val ), ADDRESSOF( left ), SumASLoop );
  6695. RETURN val;
  6696. END "SUM";
  6697. (** INTEGER *)
  6698. PROCEDURE SumAILoop( ladr, dadr, linc, len: LONGINT );
  6699. VAR lval, dval: INTEGER;
  6700. BEGIN
  6701. SYSTEM.GET( dadr, dval );
  6702. WHILE (len > 0) DO
  6703. SYSTEM.GET( ladr, lval ); dval := dval + lval; INC( ladr, linc ); DEC( len );
  6704. END;
  6705. SYSTEM.PUT( dadr, dval );
  6706. END SumAILoop;
  6707. OPERATOR "SUM"*( CONST left: ARRAY [ ? ] OF INTEGER ): INTEGER;
  6708. TYPE Type = INTEGER;
  6709. VAR val: Type;
  6710. BEGIN
  6711. val := 0; ApplyUnaryASOp( ADDRESSOF( val ), ADDRESSOF( left ), SumAILoop );
  6712. RETURN val;
  6713. END "SUM";
  6714. (** LONGINT *)
  6715. PROCEDURE SumALLoop( ladr, dadr, linc, len: LONGINT );
  6716. VAR lval, dval: LONGINT;
  6717. BEGIN
  6718. SYSTEM.GET( dadr, dval );
  6719. WHILE (len > 0) DO
  6720. SYSTEM.GET( ladr, lval ); dval := dval + lval; INC( ladr, linc ); DEC( len );
  6721. END;
  6722. SYSTEM.PUT( dadr, dval );
  6723. END SumALLoop;
  6724. OPERATOR "SUM"*( CONST left: ARRAY [ ? ] OF LONGINT ): LONGINT;
  6725. TYPE Type = LONGINT;
  6726. VAR val: Type;
  6727. BEGIN
  6728. val := 0; ApplyUnaryASOp( ADDRESSOF( val ), ADDRESSOF( left ), SumALLoop );
  6729. RETURN val;
  6730. END "SUM";
  6731. (** REAL *)
  6732. PROCEDURE SumARLoop( ladr, dadr, linc, len: LONGINT );
  6733. VAR lval, dval: REAL;
  6734. BEGIN
  6735. SYSTEM.GET( dadr, dval );
  6736. WHILE (len > 0) DO
  6737. SYSTEM.GET( ladr, lval ); dval := dval + lval; INC( ladr, linc ); DEC( len );
  6738. END;
  6739. SYSTEM.PUT( dadr, dval );
  6740. END SumARLoop;
  6741. OPERATOR "SUM"*( CONST left: ARRAY [ ? ] OF REAL ): REAL;
  6742. TYPE Type = REAL;
  6743. VAR val: Type;
  6744. BEGIN
  6745. val := 0; ApplyUnaryASOp( ADDRESSOF( val ), ADDRESSOF( left ), SumARLoop );
  6746. RETURN val;
  6747. END "SUM";
  6748. (** LONGREAL *)
  6749. PROCEDURE SumAXLoop( ladr, dadr, linc, len: LONGINT );
  6750. VAR lval, dval: LONGREAL;
  6751. BEGIN
  6752. SYSTEM.GET( dadr, dval );
  6753. WHILE (len > 0) DO
  6754. SYSTEM.GET( ladr, lval ); dval := dval + lval; INC( ladr, linc ); DEC( len );
  6755. END;
  6756. SYSTEM.PUT( dadr, dval );
  6757. END SumAXLoop;
  6758. OPERATOR "SUM"*( CONST left: ARRAY [ ? ] OF LONGREAL ): LONGREAL;
  6759. TYPE Type = LONGREAL;
  6760. VAR val: Type;
  6761. BEGIN
  6762. val := 0; ApplyUnaryASOp( ADDRESSOF( val ), ADDRESSOF( left ), SumAXLoop );
  6763. RETURN val;
  6764. END "SUM";
  6765. (** COMPLEX *)
  6766. PROCEDURE SumAZLoop( ladr, dadr, linc, len: LONGINT );
  6767. VAR lval, dval: COMPLEX;
  6768. BEGIN
  6769. SYSTEM.GET( dadr, dval );
  6770. WHILE (len > 0) DO
  6771. SYSTEM.GET( ladr, lval ); dval := dval + lval; INC( ladr, linc ); DEC( len );
  6772. END;
  6773. SYSTEM.PUT( dadr, dval );
  6774. END SumAZLoop;
  6775. OPERATOR "SUM"*( CONST left: ARRAY [ ? ] OF COMPLEX ): COMPLEX;
  6776. TYPE Type = COMPLEX;
  6777. VAR val: Type;
  6778. BEGIN
  6779. val := 0; ApplyUnaryASOp( ADDRESSOF( val ), ADDRESSOF( left ), SumAZLoop );
  6780. RETURN val;
  6781. END "SUM";
  6782. (** LONGCOMPLEX *)
  6783. PROCEDURE SumALZLoop( ladr, dadr, linc, len: LONGINT );
  6784. VAR lvalRe, lvalIm, dvalRe, dvalIm: LONGREAL;
  6785. BEGIN
  6786. SYSTEM.GET( dadr, dvalRe ); SYSTEM.GET( dadr+SIZEOF(LONGREAL), dvalIm );
  6787. WHILE (len > 0) DO
  6788. SYSTEM.GET( ladr, lvalRe ); SYSTEM.GET( ladr+SIZEOF(LONGREAL), lvalIm );
  6789. dvalRe := dvalRe + lvalRe; dvalIm := dvalIm + lvalIm;
  6790. INC( ladr, linc ); DEC( len );
  6791. END;
  6792. SYSTEM.PUT( dadr, dvalRe ); SYSTEM.PUT( dadr+SIZEOF(LONGREAL), dvalIm );
  6793. END SumALZLoop;
  6794. OPERATOR "SUM"*( CONST left: ARRAY [ ? ] OF LONGCOMPLEX ): LONGCOMPLEX;
  6795. TYPE Type = LONGCOMPLEX;
  6796. VAR val: Type;
  6797. BEGIN
  6798. val := 0; ApplyUnaryASOp( ADDRESSOF( val ), ADDRESSOF( left ), SumALZLoop );
  6799. RETURN val;
  6800. END "SUM";
  6801. (*** monadic ABS array -> array ********************************************************************)
  6802. (** SHORTINT *)
  6803. PROCEDURE AbsLoopS( ladr, dadr, linc, dinc, len: LONGINT );
  6804. VAR lval: SHORTINT;
  6805. BEGIN
  6806. WHILE (len > 0) DO
  6807. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, ABS( lval ) ); INC( ladr, linc );
  6808. INC( dadr, dinc ); DEC( len );
  6809. END;
  6810. END AbsLoopS;
  6811. OPERATOR "ABS"*(CONST src: ARRAY [ ? ] OF SHORTINT): ARRAY [ ? ] OF SHORTINT;
  6812. BEGIN
  6813. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( SHORTINT ), AbsLoopS );
  6814. RETURN RESULT
  6815. END "ABS";
  6816. (** INTEGER *)
  6817. PROCEDURE AbsLoopI( ladr, dadr, linc, dinc, len: LONGINT );
  6818. VAR lval: INTEGER;
  6819. BEGIN
  6820. WHILE (len > 0) DO
  6821. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, ABS( lval ) ); INC( ladr, linc );
  6822. INC( dadr, dinc ); DEC( len );
  6823. END;
  6824. END AbsLoopI;
  6825. OPERATOR "ABS"*(CONST src: ARRAY [ ? ] OF INTEGER): ARRAY [ ? ] OF INTEGER;
  6826. BEGIN
  6827. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( INTEGER ), AbsLoopI );
  6828. RETURN RESULT
  6829. END "ABS";
  6830. (** LONGINT *)
  6831. PROCEDURE AbsLoopL( ladr, dadr, linc, dinc, len: LONGINT );
  6832. VAR lval: LONGINT;
  6833. BEGIN
  6834. WHILE (len > 0) DO
  6835. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, ABS( lval ) ); INC( ladr, linc );
  6836. INC( dadr, dinc ); DEC( len );
  6837. END;
  6838. END AbsLoopL;
  6839. OPERATOR "ABS"*(CONST src: ARRAY [ ? ] OF LONGINT): ARRAY [ ? ] OF LONGINT;
  6840. BEGIN
  6841. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( LONGINT ), AbsLoopL );
  6842. RETURN RESULT
  6843. END "ABS";
  6844. (** REAL *)
  6845. PROCEDURE AbsLoopR( ladr, dadr, linc, dinc, len: LONGINT );
  6846. VAR lval: REAL;
  6847. BEGIN
  6848. WHILE (len > 0) DO
  6849. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, ABS( lval ) ); INC( ladr, linc );
  6850. INC( dadr, dinc ); DEC( len );
  6851. END;
  6852. END AbsLoopR;
  6853. OPERATOR "ABS"*(CONST src: ARRAY [ ? ] OF REAL): ARRAY [ ? ] OF REAL;
  6854. BEGIN
  6855. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( REAL ), AbsLoopR );
  6856. RETURN RESULT
  6857. END "ABS";
  6858. (** LONGREAL *)
  6859. PROCEDURE AbsLoopX( ladr, dadr, linc, dinc, len: LONGINT );
  6860. VAR lval: LONGREAL;
  6861. BEGIN
  6862. WHILE (len > 0) DO
  6863. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, ABS( lval ) ); INC( ladr, linc );
  6864. INC( dadr, dinc ); DEC( len );
  6865. END;
  6866. END AbsLoopX;
  6867. OPERATOR "ABS"*(CONST src: ARRAY [ ? ] OF LONGREAL): ARRAY [ ? ] OF LONGREAL;
  6868. BEGIN
  6869. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( LONGREAL ), AbsLoopX );
  6870. RETURN RESULT
  6871. END "ABS";
  6872. (** COMPLEX *)
  6873. PROCEDURE AbsLoopZ( ladr, dadr, linc, dinc, len: LONGINT );
  6874. VAR lval: COMPLEX;
  6875. BEGIN
  6876. WHILE (len > 0) DO
  6877. SYSTEM.GET( ladr, lval ); SYSTEM.PUT( dadr, ABS(lval) ); INC( ladr, linc );
  6878. INC( dadr, dinc ); DEC( len );
  6879. END;
  6880. END AbsLoopZ;
  6881. OPERATOR "ABS"*(CONST src: ARRAY [ ? ] OF COMPLEX): ARRAY [ ? ] OF REAL;
  6882. BEGIN
  6883. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( REAL ), AbsLoopZ );
  6884. RETURN RESULT
  6885. END "ABS";
  6886. (** LONGCOMPLEX *)
  6887. PROCEDURE AbsLoopLZ( ladr, dadr, linc, dinc, len: LONGINT );
  6888. VAR lvalRe, lvalIm: LONGREAL;
  6889. BEGIN
  6890. WHILE (len > 0) DO
  6891. SYSTEM.GET( ladr, lvalRe ); SYSTEM.GET( ladr+SIZEOF(LONGREAL), lvalIm );
  6892. SYSTEM.PUT( dadr, MathL.sqrt(lvalRe*lvalRe + lvalIm*lvalIm) );
  6893. INC( ladr, linc );
  6894. INC( dadr, dinc ); DEC( len );
  6895. END;
  6896. END AbsLoopLZ;
  6897. OPERATOR "ABS"*(CONST src: ARRAY [ ? ] OF LONGCOMPLEX): ARRAY [ ? ] OF LONGREAL;
  6898. BEGIN
  6899. ApplyUnaryAAOp( ADDRESSOF( RESULT ), ADDRESSOF( src ), SIZEOF( LONGREAL ), AbsLoopLZ );
  6900. RETURN RESULT
  6901. END "ABS";
  6902. (*** assign number to array (initialisation) ********************************************************************)
  6903. (** BOOLEAN *)
  6904. PROCEDURE AssignSBABLoop( ladr, dadr, dinc, len: LONGINT );
  6905. VAR lval: BOOLEAN;
  6906. BEGIN
  6907. SYSTEM.GET( ladr, lval );
  6908. WHILE (len > 0) DO SYSTEM.PUT( dadr, lval ); INC( dadr, dinc ); DEC( len ); END;
  6909. END AssignSBABLoop;
  6910. OPERATOR ":="*(VAR dest: ARRAY [?] OF BOOLEAN; right: BOOLEAN);
  6911. BEGIN
  6912. ApplyUnarySAOp( ADDRESSOF( dest ), ADDRESSOF( right ), AssignSBABLoop );
  6913. END ":=";
  6914. (** SHORTINT*)
  6915. PROCEDURE AssignSSASLoop( ladr, dadr, dinc, len: LONGINT );
  6916. VAR lval: SHORTINT;
  6917. BEGIN
  6918. SYSTEM.GET( ladr, lval );
  6919. WHILE (len > 0) DO SYSTEM.PUT( dadr, lval ); INC( dadr, dinc ); DEC( len ); END;
  6920. END AssignSSASLoop;
  6921. OPERATOR ":="*(VAR dest: ARRAY [?] OF SHORTINT; right: SHORTINT);
  6922. BEGIN
  6923. ApplyUnarySAOp( ADDRESSOF( dest ), ADDRESSOF( right ), AssignSSASLoop );
  6924. END ":=";
  6925. (**INTEGER *)
  6926. PROCEDURE AssignSIAILoop( ladr, dadr, dinc, len: LONGINT );
  6927. VAR lval: INTEGER;
  6928. BEGIN
  6929. SYSTEM.GET( ladr, lval );
  6930. WHILE (len > 0) DO SYSTEM.PUT( dadr, lval ); INC( dadr, dinc ); DEC( len ); END;
  6931. END AssignSIAILoop;
  6932. OPERATOR ":="*(VAR dest: ARRAY [?] OF INTEGER; right: INTEGER);
  6933. BEGIN
  6934. ApplyUnarySAOp( ADDRESSOF( dest ), ADDRESSOF( right ), AssignSIAILoop );
  6935. END ":=";
  6936. (** LONGINT *)
  6937. PROCEDURE AssignSLALLoop( ladr, dadr, dinc, len: LONGINT );
  6938. VAR lval: LONGINT;
  6939. BEGIN
  6940. SYSTEM.GET( ladr, lval );
  6941. WHILE (len > 0) DO SYSTEM.PUT( dadr, lval ); INC( dadr, dinc ); DEC( len ); END;
  6942. END AssignSLALLoop;
  6943. OPERATOR ":="*(VAR dest: ARRAY [?] OF LONGINT; right: LONGINT);
  6944. BEGIN
  6945. ApplyUnarySAOp( ADDRESSOF( dest ), ADDRESSOF( right ), AssignSLALLoop );
  6946. END ":=";
  6947. (** REAL *)
  6948. PROCEDURE AssignSRARLoop( ladr, dadr, dinc, len: LONGINT );
  6949. VAR lval: REAL;
  6950. BEGIN
  6951. SYSTEM.GET( ladr, lval );
  6952. WHILE (len > 0) DO SYSTEM.PUT( dadr, lval ); INC( dadr, dinc ); DEC( len ); END;
  6953. END AssignSRARLoop;
  6954. OPERATOR ":="*(VAR dest: ARRAY [?] OF REAL; right: REAL);
  6955. BEGIN
  6956. ApplyUnarySAOp( ADDRESSOF( dest ), ADDRESSOF( right ), AssignSRARLoop );
  6957. END ":=";
  6958. (** LONGREAL *)
  6959. PROCEDURE AssignSXAXLoop( ladr, dadr, dinc, len: LONGINT );
  6960. VAR lval: LONGREAL;
  6961. BEGIN
  6962. SYSTEM.GET( ladr, lval );
  6963. WHILE (len > 0) DO SYSTEM.PUT( dadr, lval ); INC( dadr, dinc ); DEC( len ); END;
  6964. END AssignSXAXLoop;
  6965. OPERATOR ":="*(VAR dest: ARRAY [?] OF LONGREAL; right: LONGREAL);
  6966. BEGIN
  6967. ApplyUnarySAOp( ADDRESSOF( dest ), ADDRESSOF( right ), AssignSXAXLoop );
  6968. END ":=";
  6969. (** COMPLEX *)
  6970. PROCEDURE AssignSZAZLoop( ladr, dadr, dinc, len: LONGINT );
  6971. VAR lval: COMPLEX;
  6972. BEGIN
  6973. SYSTEM.GET( ladr, lval );
  6974. WHILE (len > 0) DO SYSTEM.PUT( dadr, lval ); INC( dadr, dinc ); DEC( len ); END;
  6975. END AssignSZAZLoop;
  6976. OPERATOR ":="*(VAR dest: ARRAY [?] OF COMPLEX; right: COMPLEX);
  6977. BEGIN
  6978. ApplyUnarySAOp( ADDRESSOF( dest ), ADDRESSOF( right ), AssignSZAZLoop );
  6979. END ":=";
  6980. (** LONGCOMPLEX *)
  6981. PROCEDURE AssignSLZALZLoop( ladr, dadr, dinc, len: LONGINT );
  6982. VAR lvalRe, lvalIm: LONGREAL;
  6983. BEGIN
  6984. SYSTEM.GET( ladr, lvalRe ); SYSTEM.GET( ladr+SIZEOF(LONGREAL), lvalIm );
  6985. WHILE (len > 0) DO SYSTEM.PUT( dadr, lvalRe ); SYSTEM.PUT( dadr+SIZEOF(LONGREAL), lvalIm ); INC( dadr, dinc ); DEC( len ); END;
  6986. END AssignSLZALZLoop;
  6987. OPERATOR ":="*(VAR dest: ARRAY [?] OF LONGCOMPLEX; right: LONGCOMPLEX);
  6988. BEGIN
  6989. ApplyUnarySAOp( ADDRESSOF( dest ), ADDRESSOF( right ), AssignSLZALZLoop );
  6990. END ":=";
  6991. (*** matrix multipliation ********************************************************************)
  6992. PROCEDURE AllocateMatrix( dest: Address;
  6993. rows, cols, elementsize: LONGINT ): ANY;
  6994. VAR p: ANY;
  6995. BEGIN
  6996. (*
  6997. KernelLog.String( "ALLOCATE MATRIX WAS CALLED" ); KernelLog.Ln;
  6998. *)
  6999. SYSTEM.NEW( p, rows * cols * elementsize ); PutLen( dest, 1, cols );
  7000. PutLen( dest, 0, rows ); PutInc( dest, 1, elementsize );
  7001. PutInc( dest, 0, elementsize * cols ); PutAdr( dest, SYSTEM.VAL( LONGINT, p ) );
  7002. PutPtr( dest, SYSTEM.VAL( LONGINT, p ) ); RETURN p;
  7003. END AllocateMatrix;
  7004. PROCEDURE AllocateVector( dest: Address; l0, elementsize: LONGINT ): ANY;
  7005. VAR p: ANY;
  7006. BEGIN
  7007. SYSTEM.NEW( p, l0 * elementsize ); PutLen( dest, 0, l0 );
  7008. PutInc( dest, 0, elementsize ); PutAdr( dest, SYSTEM.VAL( LONGINT, p ) );
  7009. PutPtr( dest, SYSTEM.VAL( LONGINT, p ) ); RETURN p;
  7010. END AllocateVector;
  7011. PROCEDURE ApplyMatMulLoop( dest, left, right: Address; Size: LONGINT;
  7012. loop: BinaryAASLoop;
  7013. fast: FastMatMul ); (* Size= element-size *)
  7014. VAR ladr, radr, dadr, dadri, radri, rowsL, colsL, rowsR, colsR, incL, incR, incD, strideR, strideL, strideD, colsRi: LONGINT;
  7015. p: ANY; overlap: BOOLEAN; destOld, destNew: LONGINT;
  7016. BEGIN
  7017. (*
  7018. <- 1 ->
  7019. xxx xxxx -> xxxx
  7020. ^ xxx xxxx xxxx
  7021. 0 xxx xxxx xxxx
  7022. v xxx xxxx
  7023. xxx xxxx
  7024. Len(..,1): #columns ; Inc(..,1): inc in rows
  7025. Len(..,0): #rows ; Inc(..,0): inc between rows
  7026. *)
  7027. (* apply multiplication D = L * R *)
  7028. rowsL := GetLen( left, 0 ); (* # left rows = # dest rows*)
  7029. colsL := GetLen( left, 1 ); (* # left columns *)
  7030. rowsR := GetLen( right, 0 ); (* # right rows =!= left columns *)
  7031. colsR := GetLen( right, 1 ); (* # right columns = # dest columns*)
  7032. (* check geometric restriction *)
  7033. IF colsL # rowsR THEN Halt( GeometryMismatch, left, right, 0 ); END;
  7034. IF GetAdr( dest ) = 0 THEN p := AllocateMatrix( dest, rowsL, colsR, Size );
  7035. ELSIF (GetLen( dest, 0 ) # rowsL) OR (GetLen( dest, 1 ) # colsR) THEN
  7036. IF RangeFlag IN GetFlags( dest ) THEN
  7037. Halt( GeometryMismatch, left, right, dest )
  7038. ELSE p := AllocateMatrix( dest, rowsL, colsR, Size );
  7039. END;
  7040. END;
  7041. overlap := Overlap( left, dest ) OR Overlap( right, dest );
  7042. IF overlap THEN
  7043. destOld := dest; destNew := 0;
  7044. p := AllocateSame( destNew, destOld, Size );
  7045. CopyContent( destNew, destOld, Size ); (* for INCMUL ! *)
  7046. dest := destNew;
  7047. END;
  7048. IF (GetLen( dest, 0 ) # rowsL) OR (GetLen( dest, 1 ) # colsR) THEN
  7049. HALT( 9999 )
  7050. END;
  7051. ladr := GetAdr( left ); radr := GetAdr( right ); dadr := GetAdr( dest );
  7052. incL := GetIncr( left, 1 ); strideL := GetIncr( left, 0 ); (* increment and stride of left matrix *)
  7053. incR := GetIncr( right, 1 ); strideR := GetIncr( right, 0 ); (* increment and stride of right matrix *)
  7054. incD := GetIncr( dest, 1 ); strideD := GetIncr( dest, 0 ); (* increment and stride of dest matrix *)
  7055. (*
  7056. KernelLog.String("incD="); KernelLog.Int(incD,10); KernelLog.Ln;
  7057. KernelLog.String("strideD="); KernelLog.Int(strideD,10); KernelLog.Ln;
  7058. KernelLog.String("Len(dest,0) [rows]="); KernelLog.Int(GetLen(dest,0),10); KernelLog.Ln;
  7059. KernelLog.String("Len(dest,1) [cols]="); KernelLog.Int(GetLen(dest,1),10); KernelLog.Ln;
  7060. *)
  7061. IF rowsL = 0 THEN RETURN
  7062. ELSIF colsL=0 THEN RETURN
  7063. ELSIF colsR=0 THEN RETURN
  7064. ELSIF (fast = NIL ) OR
  7065. ~(fast( ladr, radr, dadr, incL, strideL, incR, strideR, incD, strideD, rowsL, colsL, rowsR, colsR )) THEN
  7066. WHILE (rowsL > 0) DO (* outer loop: traverse rows of left matrix *)
  7067. radri := radr; dadri := dadr; colsRi := colsR;
  7068. WHILE (colsRi > 0) DO (* inner loop: traverse columns of right matrix *)
  7069. loop( ladr, radri, dadri, incL, strideR, colsL ); INC( radri, incR );
  7070. INC( dadri, incD ); DEC( colsRi );
  7071. END;
  7072. INC( ladr, strideL ); INC( dadr, strideD ); DEC( rowsL );
  7073. END;
  7074. END;
  7075. IF overlap THEN CopyContent( destOld, dest, Size );
  7076. END;
  7077. END ApplyMatMulLoop;
  7078. PROCEDURE ApplyMatVecMulLoop( dest, left, right: Address;
  7079. Size: LONGINT; loop: BinaryAASLoop;
  7080. fast: FastMatMul ); (* Size= element-size *)
  7081. VAR ladr, radr, dadr, li1, li0, ri0, di0, l1, l2: LONGINT; p: ANY;
  7082. overlap: BOOLEAN; destOld, destNew: LONGINT;
  7083. BEGIN
  7084. (*
  7085. <- 0 ->
  7086. xxx T(xxx) -> T(xxxxx)
  7087. xxx
  7088. 1 xxx
  7089. xxx
  7090. xxx
  7091. Len(..,0): #columns ; Inc(..,0): inc in rows
  7092. Len(..,1): #rows ; Inc(..,1): inc between rows
  7093. *)
  7094. (* check geometric restriction *)
  7095. IF GetLen( left, 1 ) # GetLen( right, 0 ) THEN
  7096. Halt( GeometryMismatch, left, right,0 );
  7097. END;
  7098. l1 := GetLen( left, 0 ); (* number of destination's rows *)
  7099. l2 := GetLen( left, 1 ); (* inner loop len *)
  7100. IF GetAdr( dest ) = 0 THEN p := AllocateVector( dest, l1, Size );
  7101. ELSIF (GetLen( dest, 0 ) # l1) THEN
  7102. IF RangeFlag IN GetFlags( dest ) THEN
  7103. Halt( GeometryMismatch, left, right, dest );
  7104. ELSE p := AllocateVector( dest, l1, Size );
  7105. END;
  7106. END;
  7107. overlap := Overlap( left, dest ) OR Overlap( right, dest );
  7108. IF overlap THEN
  7109. destOld := dest; destNew := 0;
  7110. p := AllocateSame( destNew, destOld, Size );
  7111. CopyContent( destNew, destOld, Size ); (* for INCMUL ! *)
  7112. dest := destNew;
  7113. END;
  7114. (*
  7115. IF GetAdr( dest ) = -1 THEN p := AllocateVector( dest, l1, Size ); ELSE
  7116. IF (GetLen( dest, 0 ) # l1) THEN HALT( 102 ) END;
  7117. END;
  7118. *)
  7119. ladr := GetAdr( left ); radr := GetAdr( right ); dadr := GetAdr( dest );
  7120. li0 := GetIncr( left, 1 ); li1 := GetIncr( left, 0 ); ri0 := GetIncr( right, 0 );
  7121. di0 := GetIncr( dest, 0 );
  7122. IF l1=0 THEN RETURN
  7123. ELSIF l2=0 THEN RETURN
  7124. ELSIF (fast = NIL ) OR
  7125. ~(fast( ladr, radr, dadr, li0, li1, ri0, ri0, di0, di0, l1, l2, l2, 1 )) THEN
  7126. WHILE (l1 > 0) DO (* inner loop: traverse columns of right matrix *)
  7127. loop( ladr, radr, dadr, li0, ri0, l2 ); INC( ladr, li1 ); INC( dadr, di0 );
  7128. DEC( l1 );
  7129. END;
  7130. END;
  7131. IF overlap THEN CopyContent( destOld, dest, Size );
  7132. END;
  7133. END ApplyMatVecMulLoop;
  7134. PROCEDURE ApplyVecMatMulLoop( dest, left, right: Address;
  7135. Size: LONGINT; loop: BinaryAASLoop;
  7136. fast: FastMatMul ); (* Size= element-size *)
  7137. VAR ladr, radr, dadr, li0, ri1, ri0, di0, l0, l2: LONGINT; p: ANY;
  7138. overlap: BOOLEAN; destOld, destNew: LONGINT;
  7139. BEGIN
  7140. (*
  7141. <- 0 ->
  7142. xxx xxxx -> xxxx
  7143. xxxx
  7144. 1 xxxx
  7145. Len(..,0): #columns ; Inc(..,0): inc in rows
  7146. Len(..,1): #rows ; Inc(..,1): inc between rows
  7147. *)
  7148. (* check geometric restriction *)
  7149. IF GetLen( left, 0 ) # GetLen( right, 0 ) THEN HALT( GeometryMismatch ); END;
  7150. l0 := GetLen( right, 1 ); (* number of destination's column *)
  7151. l2 := GetLen( right, 0 ); (* inner loop len *)
  7152. IF GetAdr( dest ) = 0 THEN p := AllocateVector( dest, l0, Size );
  7153. ELSIF (GetLen( dest, 0 ) # l0) THEN
  7154. IF RangeFlag IN GetFlags( dest ) THEN HALT( GeometryMismatch )
  7155. ELSE p := AllocateVector( dest, l0, Size );
  7156. END;
  7157. END;
  7158. overlap := Overlap( left, dest ) OR Overlap( right, dest );
  7159. IF overlap THEN
  7160. destOld := dest; destNew := 0;
  7161. p := AllocateSame( destNew, destOld, Size );
  7162. CopyContent( destNew, destOld, Size ); (* for INCMUL ! *)
  7163. dest := destNew;
  7164. END;
  7165. (*
  7166. IF GetAdr( dest ) = -1 THEN p := AllocateVector( dest, l0, Size ); ELSE
  7167. IF (GetLen( dest, 0 ) # l0) THEN HALT( 102 ) END;
  7168. END;
  7169. *)
  7170. ladr := GetAdr( left ); radr := GetAdr( right ); dadr := GetAdr( dest );
  7171. li0 := GetIncr( left, 0 ); ri0 := GetIncr( right, 1 ); ri1 := GetIncr( right, 0 );
  7172. di0 := GetIncr( dest, 0 );
  7173. IF l2=0 THEN RETURN
  7174. ELSIF l0=0 THEN RETURN
  7175. ELSIF (fast = NIL ) OR ~fast( ladr, radr, dadr, li0, li0, ri0, ri1, di0, di0, 1, l2, l2, l0 ) THEN
  7176. WHILE (l0 > 0) DO (* inner loop: traverse columns of right matrix *)
  7177. loop( ladr, radr, dadr, li0, ri1, l2 ); INC( radr, ri0 ); INC( dadr, di0 );
  7178. DEC( l0 );
  7179. END;
  7180. END;
  7181. IF overlap THEN CopyContent( destOld, dest, Size );
  7182. END;
  7183. END ApplyVecMatMulLoop;
  7184. (** SHORTINT *)
  7185. PROCEDURE MatMulASASLoop( ladr, radr, dadr, linc, rinc, len: Address );
  7186. VAR lval, rval, dval: SHORTINT;
  7187. BEGIN
  7188. dval := 0;
  7189. WHILE (len > 0) DO
  7190. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := dval + lval * rval;
  7191. (* KernelLog.String("mul with: "); KernelLog.Int(lval,10); KernelLog.Int(rval,10); KernelLog.Ln; *)
  7192. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  7193. END;
  7194. SYSTEM.PUT( dadr, dval );
  7195. END MatMulASASLoop;
  7196. OPERATOR "*"*(CONST left, right: ARRAY [ * , * ] OF SHORTINT ): ARRAY [ * , * ] OF SHORTINT;
  7197. BEGIN
  7198. ApplyMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7199. SIZEOF( SHORTINT ), MatMulASASLoop, NIL );
  7200. RETURN RESULT
  7201. END "*";
  7202. OPERATOR "*"*(CONST left: ARRAY [ * , * ] OF SHORTINT; CONST right: ARRAY [ * ] OF SHORTINT): ARRAY [ * ] OF SHORTINT;
  7203. BEGIN
  7204. ApplyMatVecMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7205. SIZEOF( SHORTINT ), MatMulASASLoop, NIL );
  7206. RETURN RESULT
  7207. END "*";
  7208. OPERATOR "*"*( CONST left: ARRAY [ * ] OF SHORTINT; CONST right: ARRAY [ * , * ] OF SHORTINT ): ARRAY [ * ] OF SHORTINT;
  7209. BEGIN
  7210. ApplyVecMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7211. SIZEOF( SHORTINT ), MatMulASASLoop, NIL );
  7212. RETURN RESULT
  7213. END "*";
  7214. (** INTEGER *)
  7215. PROCEDURE MatMulAIAILoop( ladr, radr, dadr, linc, rinc, len: Address );
  7216. VAR lval, rval, dval: INTEGER;
  7217. BEGIN
  7218. dval := 0;
  7219. WHILE (len > 0) DO
  7220. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := dval + lval * rval;
  7221. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  7222. END;
  7223. SYSTEM.PUT( dadr, dval );
  7224. END MatMulAIAILoop;
  7225. OPERATOR "*"*( CONST left, right: ARRAY [ * , * ] OF INTEGER ): ARRAY [ * , * ] OF INTEGER;
  7226. BEGIN
  7227. ApplyMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7228. SIZEOF( INTEGER ), MatMulAIAILoop, NIL );
  7229. RETURN RESULT
  7230. END "*";
  7231. OPERATOR "*"*(CONST left: ARRAY [ * , * ] OF INTEGER;
  7232. CONST right: ARRAY [ * ] OF INTEGER ): ARRAY [ * ] OF INTEGER;
  7233. BEGIN
  7234. ApplyMatVecMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7235. SIZEOF( INTEGER ), MatMulAIAILoop, NIL );
  7236. RETURN RESULT
  7237. END "*";
  7238. OPERATOR "*"*(CONST left: ARRAY [ * ] OF INTEGER;
  7239. CONST right: ARRAY [ * , * ] OF INTEGER ): ARRAY [ * ] OF INTEGER;
  7240. BEGIN
  7241. ApplyVecMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7242. SIZEOF( INTEGER ), MatMulAIAILoop, NIL );
  7243. RETURN RESULT
  7244. END "*";
  7245. (** LONGINT *)
  7246. PROCEDURE MatMulALALLoop( ladr, radr, dadr, linc, rinc, len: Address );
  7247. VAR lval, rval, dval: LONGINT;
  7248. BEGIN
  7249. dval := 0;
  7250. WHILE (len > 0) DO
  7251. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := dval + lval * rval;
  7252. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  7253. END;
  7254. SYSTEM.PUT( dadr, dval );
  7255. END MatMulALALLoop;
  7256. OPERATOR "*"*(CONST left, right: ARRAY [ * , * ] OF LONGINT ): ARRAY [ * , * ] OF LONGINT;
  7257. BEGIN
  7258. (*
  7259. KernelLog.String("MatMulALAL");
  7260. KernelLog.Int(SYSTEM.VAL(LONGINT,dest),10);
  7261. KernelLog.Int(SYSTEM.VAL(LONGINT,left),10);
  7262. KernelLog.Int(SYSTEM.VAL(LONGINT,right),10);
  7263. KernelLog.Ln;
  7264. *)
  7265. ApplyMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7266. SIZEOF( LONGINT ), MatMulALALLoop, NIL );
  7267. RETURN RESULT
  7268. END "*";
  7269. OPERATOR "*"*(CONST left: ARRAY [ * , * ] OF LONGINT; CONST right: ARRAY [ * ] OF LONGINT ): ARRAY [ * ] OF LONGINT;
  7270. BEGIN
  7271. ApplyMatVecMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7272. SIZEOF( LONGINT ), MatMulALALLoop, NIL );
  7273. RETURN RESULT
  7274. END "*";
  7275. OPERATOR "*"*(CONST left: ARRAY [ * ] OF LONGINT;
  7276. CONST right: ARRAY [ * , * ] OF LONGINT): ARRAY [ * ] OF LONGINT;
  7277. BEGIN
  7278. ApplyVecMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7279. SIZEOF( LONGINT ), MatMulALALLoop, NIL );
  7280. RETURN RESULT
  7281. END "*";
  7282. (** REAL *)
  7283. PROCEDURE MatMulARARLoop( ladr, radr, dadr, linc, rinc, len: Address );
  7284. VAR lval, rval, dval: REAL;
  7285. BEGIN
  7286. dval := 0;
  7287. WHILE (len > 0) DO
  7288. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := dval + lval * rval;
  7289. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  7290. END;
  7291. SYSTEM.PUT( dadr, dval );
  7292. END MatMulARARLoop;
  7293. (*
  7294. Optimized for small matrices (Alexey Morozov)
  7295. use of CONST for left, right makes execution slower, it seems that a new descriptor is created in this case
  7296. *)
  7297. OPERATOR "*"*(CONST left, right: ARRAY [ * , * ] OF REAL ): ARRAY [ * , * ] OF REAL;
  7298. VAR flags: SET; dadr, ladr, radr: LONGINT;
  7299. BEGIN
  7300. dadr := GetAdr(ADDRESSOF(RESULT));
  7301. ladr := GetAdr(ADDRESSOF(left));
  7302. radr := GetAdr(ADDRESSOF(right));
  7303. (* account possible inplace left := left*right, right := left*right, left := left*left, right := right*right *)
  7304. IF (ladr # dadr) & (radr # dadr) THEN
  7305. flags := SmallArrayMask * SYSTEM.VAL(SET,SYSTEM.GET32(ADDRESSOF(left)+MathFlagsOffset)) * SYSTEM.VAL(SET,SYSTEM.GET32(ADDRESSOF(right)+MathFlagsOffset));
  7306. CASE SYSTEM.VAL(LONGINT,flags) OF
  7307. Mat2x2:
  7308. IF SYSTEM.VAL(LONGINT,SYSTEM.VAL(SET,SYSTEM.GET32(ADDRESSOF(RESULT)+MathFlagsOffset)) * SmallArrayMask) # Mat2x2 THEN
  7309. IF dadr = 0 THEN NEW(RESULT,2,2); dadr := GetAdr(ADDRESSOF(RESULT));
  7310. ELSE Halt(GeometryMismatch,ADDRESSOF(left),ADDRESSOF(right),0);
  7311. END;
  7312. END;
  7313. IF matMulR2x2 # NIL THEN matMulR2x2(dadr,ladr,radr);
  7314. ELSE
  7315. RESULT[0,0] := left[0,0]*right[0,0] + left[0,1]*right[1,0];
  7316. RESULT[0,1] := left[0,0]*right[0,1] + left[0,1]*right[1,1];
  7317. RESULT[1,0] := left[1,0]*right[0,0] + left[1,1]*right[1,0];
  7318. RESULT[1,1] := left[1,0]*right[0,1] + left[1,1]*right[1,1];
  7319. END;
  7320. |Mat3x3:
  7321. IF SYSTEM.VAL(LONGINT,SYSTEM.VAL(SET,SYSTEM.GET32(ADDRESSOF(RESULT)+MathFlagsOffset)) * SmallArrayMask) # Mat3x3 THEN
  7322. IF dadr = 0 THEN NEW(RESULT,3,3);dadr := GetAdr(ADDRESSOF(RESULT));
  7323. ELSE Halt(GeometryMismatch,ADDRESSOF(left),ADDRESSOF(right),0);
  7324. END;
  7325. END;
  7326. IF matMulR3x3 # NIL THEN matMulR3x3(dadr,ladr,radr);
  7327. ELSE
  7328. RESULT[0,0] := left[0,0]*right[0,0] + left[0,1]*right[1,0] + left[0,2]*right[2,0];
  7329. RESULT[0,1] := left[0,0]*right[0,1] + left[0,1]*right[1,1] + left[0,2]*right[2,1];
  7330. RESULT[0,2] := left[0,0]*right[0,2] + left[0,1]*right[1,2] + left[0,2]*right[2,2];
  7331. RESULT[1,0] := left[1,0]*right[0,0] + left[1,1]*right[1,0] + left[1,2]*right[2,0];
  7332. RESULT[1,1] := left[1,0]*right[0,1] + left[1,1]*right[1,1] + left[1,2]*right[2,1];
  7333. RESULT[1,2] := left[1,0]*right[0,2] + left[1,1]*right[1,2] + left[1,2]*right[2,2];
  7334. RESULT[2,0] := left[2,0]*right[0,0] + left[2,1]*right[1,0] + left[2,2]*right[2,0];
  7335. RESULT[2,1] := left[2,0]*right[0,1] + left[2,1]*right[1,1] + left[2,2]*right[2,1];
  7336. RESULT[2,2] := left[2,0]*right[0,2] + left[2,1]*right[1,2] + left[2,2]*right[2,2];
  7337. END;
  7338. |Mat4x4:
  7339. IF SYSTEM.VAL(LONGINT,SYSTEM.VAL(SET,SYSTEM.GET32(ADDRESSOF(RESULT)+MathFlagsOffset)) * SmallArrayMask) # Mat4x4 THEN
  7340. IF dadr = 0 THEN NEW(RESULT,4,4); dadr := GetAdr(ADDRESSOF(RESULT));
  7341. ELSE Halt(GeometryMismatch,ADDRESSOF(left),ADDRESSOF(right),0);
  7342. END;
  7343. END;
  7344. IF matMulR4x4 # NIL THEN matMulR4x4(dadr,ladr,radr);
  7345. ELSE
  7346. RESULT[0,0] := left[0,0]*right[0,0] + left[0,1]*right[1,0] + left[0,2]*right[2,0] + left[0,3]*right[3,0];
  7347. RESULT[0,1] := left[0,0]*right[0,1] + left[0,1]*right[1,1] + left[0,2]*right[2,1] + left[0,3]*right[3,1];
  7348. RESULT[0,2] := left[0,0]*right[0,2] + left[0,1]*right[1,2] + left[0,2]*right[2,2] + left[0,3]*right[3,2];
  7349. RESULT[0,3] := left[0,0]*right[0,3] + left[0,1]*right[1,3] + left[0,2]*right[2,3] + left[0,3]*right[3,3];
  7350. RESULT[1,0] := left[1,0]*right[0,0] + left[1,1]*right[1,0] + left[1,2]*right[2,0] + left[1,3]*right[3,0];
  7351. RESULT[1,1] := left[1,0]*right[0,1] + left[1,1]*right[1,1] + left[1,2]*right[2,1] + left[1,3]*right[3,1];
  7352. RESULT[1,2] := left[1,0]*right[0,2] + left[1,1]*right[1,2] + left[1,2]*right[2,2] + left[1,3]*right[3,2];
  7353. RESULT[1,3] := left[1,0]*right[0,3] + left[1,1]*right[1,3] + left[1,2]*right[2,3] + left[1,3]*right[3,3];
  7354. RESULT[2,0] := left[2,0]*right[0,0] + left[2,1]*right[1,0] + left[2,2]*right[2,0] + left[2,3]*right[3,0];
  7355. RESULT[2,1] := left[2,0]*right[0,1] + left[2,1]*right[1,1] + left[2,2]*right[2,1] + left[2,3]*right[3,1];
  7356. RESULT[2,2] := left[2,0]*right[0,2] + left[2,1]*right[1,2] + left[2,2]*right[2,2] + left[2,3]*right[3,2];
  7357. RESULT[2,3] := left[2,0]*right[0,3] + left[2,1]*right[1,3] + left[2,2]*right[2,3] + left[2,3]*right[3,3];
  7358. RESULT[3,0] := left[3,0]*right[0,0] + left[3,1]*right[1,0] + left[3,2]*right[2,0] + left[3,3]*right[3,0];
  7359. RESULT[3,1] := left[3,0]*right[0,1] + left[3,1]*right[1,1] + left[3,2]*right[2,1] + left[3,3]*right[3,1];
  7360. RESULT[3,2] := left[3,0]*right[0,2] + left[3,1]*right[1,2] + left[3,2]*right[2,2] + left[3,3]*right[3,2];
  7361. RESULT[3,3] := left[3,0]*right[0,3] + left[3,1]*right[1,3] + left[3,2]*right[2,3] + left[3,3]*right[3,3];
  7362. END;
  7363. ELSE
  7364. ApplyMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  7365. loopMatMulARAR, matMulR );
  7366. END;
  7367. ELSE
  7368. ApplyMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  7369. loopMatMulARAR, matMulR );
  7370. END;
  7371. RETURN RESULT
  7372. END "*";
  7373. (*
  7374. Optimized for small arrays (Alexey Morozov)
  7375. use of CONST for left, right makes execution slower, it seems that a new descriptor is created in this case
  7376. *)
  7377. OPERATOR "*"*(CONST left: ARRAY [ * , * ] OF REAL; CONST right: ARRAY [ * ] OF REAL ): ARRAY [ * ] OF REAL;
  7378. VAR
  7379. flags: SET; dadr, ladr, radr: LONGINT;
  7380. v0, v1, v2: REAL;
  7381. BEGIN
  7382. dadr := GetAdr(ADDRESSOF(RESULT));
  7383. ladr := GetAdr(ADDRESSOF(left));
  7384. radr := GetAdr(ADDRESSOF(right));
  7385. flags := SmallArrayMask * SYSTEM.VAL(SET,SYSTEM.GET32(ADDRESSOF(left)+MathFlagsOffset)) * SYSTEM.VAL(SET,SYSTEM.GET32(ADDRESSOF(right)+MathFlagsOffset));
  7386. CASE SYSTEM.VAL(LONGINT,flags) OF
  7387. MatVec2x2:
  7388. IF SYSTEM.VAL(LONGINT,SYSTEM.VAL(SET,SYSTEM.GET32(ADDRESSOF(RESULT)+MathFlagsOffset)) * SmallArrayMask) # Vec2 THEN
  7389. IF dadr = 0 THEN NEW(RESULT,2);dadr := GetAdr(ADDRESSOF(RESULT));
  7390. ELSE Halt(GeometryMismatch,ADDRESSOF(left),ADDRESSOF(right),0);
  7391. END;
  7392. END;
  7393. IF matVecMulR2x2 # NIL THEN matVecMulR2x2(dadr,ladr,radr);
  7394. ELSE
  7395. (* account possible overlapping *)
  7396. v0 := right[0];
  7397. RESULT[0] := left[0,0]*v0 + left[0,1]*right[1];
  7398. RESULT[1] := left[1,0]*v0 + left[1,1]*right[1];
  7399. END;
  7400. |MatVec3x3:
  7401. IF SYSTEM.VAL(LONGINT,SYSTEM.VAL(SET,SYSTEM.GET32(ADDRESSOF(RESULT)+MathFlagsOffset)) * SmallArrayMask) # Vec3 THEN
  7402. IF dadr = 0 THEN NEW(RESULT,3);dadr := GetAdr(ADDRESSOF(RESULT));
  7403. ELSE Halt(GeometryMismatch,ADDRESSOF(left),ADDRESSOF(right),0);
  7404. END;
  7405. END;
  7406. IF matVecMulR3x3 # NIL THEN matVecMulR3x3(dadr,ladr,radr);
  7407. ELSE
  7408. (* account possible overlapping *)
  7409. v0 := right[0]; v1 := right[1];
  7410. RESULT[0] := left[0,0]*v0 + left[0,1]*v1 + left[0,2]*right[2];
  7411. RESULT[1] := left[1,0]*v0 + left[1,1]*v1 + left[1,2]*right[2];
  7412. RESULT[2] := left[2,0]*v0 + left[2,1]*v1 + left[2,2]*right[2];
  7413. END;
  7414. |MatVec4x4:
  7415. IF SYSTEM.VAL(LONGINT,SYSTEM.VAL(SET,SYSTEM.GET32(ADDRESSOF(RESULT)+MathFlagsOffset)) * SmallArrayMask) # Vec4 THEN
  7416. IF dadr = 0 THEN NEW(RESULT,4);dadr := GetAdr(ADDRESSOF(RESULT));
  7417. ELSE Halt(GeometryMismatch,ADDRESSOF(left),ADDRESSOF(right),0);
  7418. END;
  7419. END;
  7420. IF matVecMulR4x4 # NIL THEN matVecMulR4x4(dadr,ladr,radr);
  7421. ELSE
  7422. (* account possible overlapping *)
  7423. v0 := right[0]; v1 := right[1]; v2 := right[2];
  7424. RESULT[0] := left[0,0]*v0 + left[0,1]*v1 + left[0,2]*v2 + left[0,3]*right[3];
  7425. RESULT[1] := left[1,0]*v0 + left[1,1]*v1 + left[1,2]*v2 + left[1,3]*right[3];
  7426. RESULT[2] := left[2,0]*v0 + left[2,1]*v1 + left[2,2]*v2 + left[2,3]*right[3];
  7427. RESULT[3] := left[3,0]*v0 + left[3,1]*v1 + left[3,2]*v2 + left[3,3]*right[3];
  7428. END;
  7429. ELSE
  7430. ApplyMatVecMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7431. SIZEOF( REAL ), loopMatMulARAR, matMulR );
  7432. END;
  7433. RETURN RESULT
  7434. END "*";
  7435. OPERATOR "*"*( CONST left: ARRAY [ * ] OF REAL;
  7436. CONST right: ARRAY [ * , * ] OF REAL ): ARRAY [ * ] OF REAL;
  7437. BEGIN
  7438. ApplyVecMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7439. SIZEOF( REAL ), loopMatMulARAR, matMulR );
  7440. RETURN RESULT
  7441. END "*";
  7442. (** LONGREAL *)
  7443. PROCEDURE MatMulAXAXLoop( ladr, radr, dadr, linc, rinc, len: Address );
  7444. VAR lval, rval, dval: LONGREAL;
  7445. BEGIN
  7446. dval := 0;
  7447. WHILE (len > 0) DO
  7448. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := dval + lval * rval;
  7449. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  7450. END;
  7451. SYSTEM.PUT( dadr, dval );
  7452. END MatMulAXAXLoop;
  7453. (*
  7454. Optimized for small matrices (Alexey Morozov)
  7455. use of CONST for left, right makes execution slower, it seems that a new descriptor is created in this case
  7456. *)
  7457. OPERATOR "*"*( CONST left, right: ARRAY [ * , * ] OF LONGREAL): ARRAY [ * , * ] OF LONGREAL;
  7458. VAR
  7459. flags: SET; dadr, ladr, radr: LONGINT;
  7460. BEGIN
  7461. dadr := GetAdr(ADDRESSOF(RESULT));
  7462. ladr := GetAdr(ADDRESSOF(left));
  7463. radr := GetAdr(ADDRESSOF(right));
  7464. IF (ladr # dadr) & (radr # dadr) THEN
  7465. flags := SYSTEM.VAL(SET,SYSTEM.GET32(ADDRESSOF(left)+MathFlagsOffset)) * SYSTEM.VAL(SET,SYSTEM.GET32(ADDRESSOF(right)+MathFlagsOffset));
  7466. CASE SYSTEM.VAL(LONGINT,flags) OF
  7467. Mat2x2:
  7468. IF SYSTEM.GET32(ADDRESSOF(RESULT)+MathFlagsOffset) # Mat2x2 THEN
  7469. IF dadr = 0 THEN NEW(RESULT,2,2);
  7470. ELSE Halt(GeometryMismatch,ADDRESSOF(left),ADDRESSOF(right),0);
  7471. END;
  7472. END;
  7473. IF matMulLR2x2 # NIL THEN matMulLR2x2(dadr,ladr,radr);
  7474. ELSE
  7475. RESULT[0,0] := left[0,0]*right[0,0] + left[0,1]*right[1,0];
  7476. RESULT[0,1] := left[0,0]*right[0,1] + left[0,1]*right[1,1];
  7477. RESULT[1,0] := left[1,0]*right[0,0] + left[1,1]*right[1,0];
  7478. RESULT[1,1] := left[1,0]*right[0,1] + left[1,1]*right[1,1];
  7479. END;
  7480. |Mat3x3:
  7481. IF SYSTEM.GET32(ADDRESSOF(RESULT)+MathFlagsOffset) # Mat3x3 THEN
  7482. IF dadr = 0 THEN NEW(RESULT,3,3);
  7483. ELSE Halt(GeometryMismatch,ADDRESSOF(left),ADDRESSOF(right),0);
  7484. END;
  7485. END;
  7486. IF matMulLR3x3 # NIL THEN matMulLR3x3(dadr,ladr,radr);
  7487. ELSE
  7488. RESULT[0,0] := left[0,0]*right[0,0] + left[0,1]*right[1,0] + left[0,2]*right[2,0];
  7489. RESULT[0,1] := left[0,0]*right[0,1] + left[0,1]*right[1,1] + left[0,2]*right[2,1];
  7490. RESULT[0,2] := left[0,0]*right[0,2] + left[0,1]*right[1,2] + left[0,2]*right[2,2];
  7491. RESULT[1,0] := left[1,0]*right[0,0] + left[1,1]*right[1,0] + left[1,2]*right[2,0];
  7492. RESULT[1,1] := left[1,0]*right[0,1] + left[1,1]*right[1,1] + left[1,2]*right[2,1];
  7493. RESULT[1,2] := left[1,0]*right[0,2] + left[1,1]*right[1,2] + left[1,2]*right[2,2];
  7494. RESULT[2,0] := left[2,0]*right[0,0] + left[2,1]*right[1,0] + left[2,2]*right[2,0];
  7495. RESULT[2,1] := left[2,0]*right[0,1] + left[2,1]*right[1,1] + left[2,2]*right[2,1];
  7496. RESULT[2,2] := left[2,0]*right[0,2] + left[2,1]*right[1,2] + left[2,2]*right[2,2];
  7497. END;
  7498. |Mat4x4:
  7499. IF SYSTEM.GET32(ADDRESSOF(RESULT)+MathFlagsOffset) # Mat4x4 THEN
  7500. IF dadr = 0 THEN NEW(RESULT,4,4);
  7501. ELSE Halt(GeometryMismatch,ADDRESSOF(left),ADDRESSOF(right),0);
  7502. END;
  7503. END;
  7504. IF matMulLR4x4 # NIL THEN matMulLR4x4(dadr,ladr,radr);
  7505. ELSE
  7506. RESULT[0,0] := left[0,0]*right[0,0] + left[0,1]*right[1,0] + left[0,2]*right[2,0] + left[0,3]*right[3,0];
  7507. RESULT[0,1] := left[0,0]*right[0,1] + left[0,1]*right[1,1] + left[0,2]*right[2,1] + left[0,3]*right[3,1];
  7508. RESULT[0,2] := left[0,0]*right[0,2] + left[0,1]*right[1,2] + left[0,2]*right[2,2] + left[0,3]*right[3,2];
  7509. RESULT[0,3] := left[0,0]*right[0,3] + left[0,1]*right[1,3] + left[0,2]*right[2,3] + left[0,3]*right[3,3];
  7510. RESULT[1,0] := left[1,0]*right[0,0] + left[1,1]*right[1,0] + left[1,2]*right[2,0] + left[1,3]*right[3,0];
  7511. RESULT[1,1] := left[1,0]*right[0,1] + left[1,1]*right[1,1] + left[1,2]*right[2,1] + left[1,3]*right[3,1];
  7512. RESULT[1,2] := left[1,0]*right[0,2] + left[1,1]*right[1,2] + left[1,2]*right[2,2] + left[1,3]*right[3,2];
  7513. RESULT[1,3] := left[1,0]*right[0,3] + left[1,1]*right[1,3] + left[1,2]*right[2,3] + left[1,3]*right[3,3];
  7514. RESULT[2,0] := left[2,0]*right[0,0] + left[2,1]*right[1,0] + left[2,2]*right[2,0] + left[2,3]*right[3,0];
  7515. RESULT[2,1] := left[2,0]*right[0,1] + left[2,1]*right[1,1] + left[2,2]*right[2,1] + left[2,3]*right[3,1];
  7516. RESULT[2,2] := left[2,0]*right[0,2] + left[2,1]*right[1,2] + left[2,2]*right[2,2] + left[2,3]*right[3,2];
  7517. RESULT[2,3] := left[2,0]*right[0,3] + left[2,1]*right[1,3] + left[2,2]*right[2,3] + left[2,3]*right[3,3];
  7518. RESULT[3,0] := left[3,0]*right[0,0] + left[3,1]*right[1,0] + left[3,2]*right[2,0] + left[3,3]*right[3,0];
  7519. RESULT[3,1] := left[3,0]*right[0,1] + left[3,1]*right[1,1] + left[3,2]*right[2,1] + left[3,3]*right[3,1];
  7520. RESULT[3,2] := left[3,0]*right[0,2] + left[3,1]*right[1,2] + left[3,2]*right[2,2] + left[3,3]*right[3,2];
  7521. RESULT[3,3] := left[3,0]*right[0,3] + left[3,1]*right[1,3] + left[3,2]*right[2,3] + left[3,3]*right[3,3];
  7522. END;
  7523. ELSE
  7524. ApplyMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( LONGREAL ),
  7525. loopMatMulAXAX, matMulX );
  7526. END;
  7527. ELSE
  7528. ApplyMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( LONGREAL ),
  7529. loopMatMulAXAX, matMulX );
  7530. END;
  7531. RETURN RESULT
  7532. END "*";
  7533. (*
  7534. Optimized for small arrays (Alexey Morozov)
  7535. use of CONST for left, right makes execution slower, it seems that a new descriptor is created in this case
  7536. *)
  7537. OPERATOR "*"*(CONST left: ARRAY [ * , * ] OF LONGREAL;
  7538. CONST right: ARRAY [ * ] OF LONGREAL ): ARRAY [ * ] OF LONGREAL;
  7539. VAR
  7540. flags: SET; dadr, ladr, radr: LONGINT;
  7541. v0, v1, v2: LONGREAL;
  7542. BEGIN
  7543. dadr := GetAdr(ADDRESSOF(RESULT));
  7544. ladr := GetAdr(ADDRESSOF(left));
  7545. radr := GetAdr(ADDRESSOF(right));
  7546. flags := SYSTEM.VAL(SET,SYSTEM.GET32(ADDRESSOF(left)+MathFlagsOffset)) * SYSTEM.VAL(SET,SYSTEM.GET32(ADDRESSOF(right)+MathFlagsOffset));
  7547. CASE SYSTEM.VAL(LONGINT,flags) OF
  7548. MatVec2x2:
  7549. IF SYSTEM.GET32(ADDRESSOF(RESULT)+MathFlagsOffset) # Vec2 THEN
  7550. IF dadr = 0 THEN NEW(RESULT,2);
  7551. ELSE Halt(GeometryMismatch,ADDRESSOF(left),ADDRESSOF(right),0);
  7552. END;
  7553. END;
  7554. IF matVecMulLR2x2 # NIL THEN matVecMulLR2x2(dadr,ladr,radr);
  7555. ELSE
  7556. (* account possible overlapping *)
  7557. v0 := right[0];
  7558. RESULT[0] := left[0,0]*v0 + left[0,1]*right[1];
  7559. RESULT[1] := left[1,0]*v0 + left[1,1]*right[1];
  7560. END;
  7561. |MatVec3x3:
  7562. IF SYSTEM.GET32(ADDRESSOF(RESULT)+MathFlagsOffset) # Vec3 THEN
  7563. IF dadr = 0 THEN NEW(RESULT,3);
  7564. ELSE Halt(GeometryMismatch,ADDRESSOF(left),ADDRESSOF(right),0);
  7565. END;
  7566. END;
  7567. IF matVecMulLR3x3 # NIL THEN matVecMulLR3x3(dadr,ladr,radr);
  7568. ELSE
  7569. (* account possible overlapping *)
  7570. v0 := right[0]; v1 := right[1];
  7571. RESULT[0] := left[0,0]*v0 + left[0,1]*v1 + left[0,2]*right[2];
  7572. RESULT[1] := left[1,0]*v0 + left[1,1]*v1 + left[1,2]*right[2];
  7573. RESULT[2] := left[2,0]*v0 + left[2,1]*v1 + left[2,2]*right[2];
  7574. END;
  7575. |MatVec4x4:
  7576. IF SYSTEM.GET32(ADDRESSOF(RESULT)+MathFlagsOffset) # Vec4 THEN
  7577. IF dadr = 0 THEN NEW(RESULT,4);
  7578. ELSE Halt(GeometryMismatch,ADDRESSOF(left),ADDRESSOF(right),0);
  7579. END;
  7580. END;
  7581. IF matVecMulLR4x4 # NIL THEN matVecMulLR4x4(dadr,ladr,radr);
  7582. ELSE
  7583. (* account possible overlapping *)
  7584. v0 := right[0]; v1 := right[1]; v2 := right[2];
  7585. RESULT[0] := left[0,0]*v0 + left[0,1]*v1 + left[0,2]*v2 + left[0,3]*right[3];
  7586. RESULT[1] := left[1,0]*v0 + left[1,1]*v1 + left[1,2]*v2 + left[1,3]*right[3];
  7587. RESULT[2] := left[2,0]*v0 + left[2,1]*v1 + left[2,2]*v2 + left[2,3]*right[3];
  7588. RESULT[3] := left[3,0]*v0 + left[3,1]*v1 + left[3,2]*v2 + left[3,3]*right[3];
  7589. END;
  7590. ELSE
  7591. ApplyMatVecMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7592. SIZEOF( LONGREAL ), loopMatMulAXAX, matMulX );
  7593. END;
  7594. RETURN RESULT
  7595. END "*";
  7596. OPERATOR "*"*( CONST left: ARRAY [ * ] OF LONGREAL;
  7597. CONST right: ARRAY [ * , * ] OF LONGREAL ): ARRAY [ * ] OF LONGREAL;
  7598. BEGIN
  7599. ApplyVecMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7600. SIZEOF( LONGREAL ), loopMatMulAXAX, matMulX );
  7601. RETURN RESULT
  7602. END "*";
  7603. (** SHORTINT *)
  7604. PROCEDURE MatMulIncASASLoop( ladr, radr, dadr, linc, rinc, len: Address );
  7605. VAR lval, rval, dval: SHORTINT;
  7606. BEGIN
  7607. SYSTEM.GET( dadr, dval );
  7608. WHILE (len > 0) DO
  7609. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := dval + lval * rval;
  7610. (* KernelLog.String("mul with: "); KernelLog.Int(lval,10); KernelLog.Int(rval,10); KernelLog.Ln; *)
  7611. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  7612. END;
  7613. SYSTEM.PUT( dadr, dval );
  7614. END MatMulIncASASLoop;
  7615. OPERATOR "@MulInc"*(CONST left, right: ARRAY [ * , * ] OF SHORTINT ): ARRAY [ * , * ] OF SHORTINT;
  7616. BEGIN
  7617. ApplyMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7618. SIZEOF( SHORTINT ), MatMulIncASASLoop, NIL );
  7619. RETURN RESULT
  7620. END "@MulInc";
  7621. OPERATOR "@MulInc"*(CONST left: ARRAY [ * , * ] OF SHORTINT;
  7622. CONST right: ARRAY [ * ] OF SHORTINT ): ARRAY [ * ] OF SHORTINT;
  7623. BEGIN
  7624. ApplyMatVecMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7625. SIZEOF( SHORTINT ), MatMulIncASASLoop, NIL );
  7626. RETURN RESULT
  7627. END "@MulInc";
  7628. OPERATOR "@MulInc"*( CONST left: ARRAY [ * ] OF SHORTINT;
  7629. CONST right: ARRAY [ * , * ] OF SHORTINT ): ARRAY [ * ] OF SHORTINT;
  7630. BEGIN
  7631. ApplyVecMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7632. SIZEOF( SHORTINT ), MatMulIncASASLoop, NIL );
  7633. RETURN RESULT
  7634. END "@MulInc";
  7635. OPERATOR "@MulDec"*(CONST left, right: ARRAY [ * , * ] OF SHORTINT ): ARRAY [ * , * ] OF SHORTINT;
  7636. BEGIN
  7637. RESULT := -RESULT;
  7638. ApplyMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7639. SIZEOF( SHORTINT ), MatMulIncASASLoop, NIL );
  7640. RESULT := -RESULT;
  7641. RETURN RESULT
  7642. END "@MulDec";
  7643. OPERATOR "@MulDec"*(CONST left: ARRAY [ * , * ] OF SHORTINT;
  7644. CONST right: ARRAY [ * ] OF SHORTINT ): ARRAY [ * ] OF SHORTINT;
  7645. BEGIN
  7646. RESULT := -RESULT;
  7647. ApplyMatVecMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7648. SIZEOF( SHORTINT ), MatMulIncASASLoop, NIL );
  7649. RESULT := -RESULT;
  7650. RETURN RESULT
  7651. END "@MulDec";
  7652. OPERATOR "@MulDec"*( CONST left: ARRAY [ * ] OF SHORTINT;
  7653. CONST right: ARRAY [ * , * ] OF SHORTINT ): ARRAY [ * ] OF SHORTINT;
  7654. BEGIN
  7655. RESULT := -RESULT;
  7656. ApplyVecMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7657. SIZEOF( SHORTINT ), MatMulIncASASLoop, NIL );
  7658. RESULT := -RESULT;
  7659. RETURN RESULT
  7660. END "@MulDec";
  7661. (** INTEGER *)
  7662. PROCEDURE MatMulIncAIAILoop( ladr, radr, dadr, linc, rinc, len: Address );
  7663. VAR lval, rval, dval: INTEGER;
  7664. BEGIN
  7665. SYSTEM.GET( dadr, dval );
  7666. WHILE (len > 0) DO
  7667. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := dval + lval * rval;
  7668. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  7669. END;
  7670. SYSTEM.PUT( dadr, dval );
  7671. END MatMulIncAIAILoop;
  7672. OPERATOR "@MulInc"*(CONST left, right: ARRAY [ * , * ] OF INTEGER ): ARRAY [ * , * ] OF INTEGER;
  7673. BEGIN
  7674. ApplyMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7675. SIZEOF( INTEGER ), MatMulIncAIAILoop, NIL );
  7676. RETURN RESULT
  7677. END "@MulInc";
  7678. OPERATOR "@MulInc"*(CONST left: ARRAY [ * , * ] OF INTEGER; CONST right: ARRAY [ * ] OF INTEGER): ARRAY [ * ] OF INTEGER;
  7679. BEGIN
  7680. ApplyMatVecMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7681. SIZEOF( INTEGER ), MatMulIncAIAILoop, NIL );
  7682. RETURN RESULT
  7683. END "@MulInc";
  7684. OPERATOR "@MulInc"*( CONST left: ARRAY [ * ] OF INTEGER; CONST right: ARRAY [ * , * ] OF INTEGER ): ARRAY [ * ] OF INTEGER;
  7685. BEGIN
  7686. ApplyVecMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7687. SIZEOF( INTEGER ), MatMulIncAIAILoop, NIL );
  7688. RETURN RESULT
  7689. END "@MulInc";
  7690. OPERATOR "@MulDec"*(CONST left, right: ARRAY [ * , * ] OF INTEGER ): ARRAY [ * , * ] OF INTEGER;
  7691. BEGIN
  7692. RESULT := -RESULT;
  7693. ApplyMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7694. SIZEOF( INTEGER ), MatMulIncAIAILoop, NIL );
  7695. RESULT := -RESULT;
  7696. RETURN RESULT
  7697. END "@MulDec";
  7698. OPERATOR "@MulDec"*( CONST left: ARRAY [ * , * ] OF INTEGER; CONST right: ARRAY [ * ] OF INTEGER ): ARRAY [ * ] OF INTEGER;
  7699. BEGIN
  7700. RESULT := -RESULT;
  7701. ApplyMatVecMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7702. SIZEOF( INTEGER ), MatMulIncAIAILoop, NIL );
  7703. RESULT := -RESULT;
  7704. RETURN RESULT
  7705. END "@MulDec";
  7706. OPERATOR "@MulDec"*( CONST left: ARRAY [ * ] OF INTEGER; CONST right: ARRAY [ * , * ] OF INTEGER ): ARRAY [ * ] OF INTEGER;
  7707. BEGIN
  7708. RESULT := -RESULT;
  7709. ApplyVecMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7710. SIZEOF( INTEGER ), MatMulIncAIAILoop, NIL );
  7711. RESULT := -RESULT;
  7712. RETURN RESULT
  7713. END "@MulDec";
  7714. (** LONGINT *)
  7715. PROCEDURE MatMulIncALALLoop( ladr, radr, dadr, linc, rinc, len: Address );
  7716. VAR lval, rval, dval: LONGINT;
  7717. BEGIN
  7718. SYSTEM.GET( dadr, dval );
  7719. WHILE (len > 0) DO
  7720. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := dval + lval * rval;
  7721. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  7722. END;
  7723. SYSTEM.PUT( dadr, dval );
  7724. END MatMulIncALALLoop;
  7725. OPERATOR "@MulInc"*(CONST left, right: ARRAY [ * , * ] OF LONGINT ): ARRAY [ * , * ] OF LONGINT;
  7726. BEGIN
  7727. ApplyMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7728. SIZEOF( LONGINT ), MatMulIncALALLoop, NIL );
  7729. RETURN RESULT
  7730. END "@MulInc";
  7731. OPERATOR "@MulInc"*(CONST left: ARRAY [ * , * ] OF LONGINT; CONST right: ARRAY [ * ] OF LONGINT ): ARRAY [ * ] OF LONGINT;
  7732. BEGIN
  7733. ApplyMatVecMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7734. SIZEOF( LONGINT ), MatMulIncALALLoop, NIL );
  7735. RETURN RESULT
  7736. END "@MulInc";
  7737. OPERATOR "@MulInc"*( CONST left: ARRAY [ * ] OF LONGINT; CONST right: ARRAY [ * , * ] OF LONGINT ): ARRAY [ * ] OF LONGINT;
  7738. BEGIN
  7739. ApplyVecMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7740. SIZEOF( LONGINT ), MatMulIncALALLoop, NIL );
  7741. RETURN RESULT
  7742. END "@MulInc";
  7743. OPERATOR "@MulDec"*( CONST left, right: ARRAY [ * , * ] OF LONGINT ): ARRAY [ * , * ] OF LONGINT;
  7744. BEGIN
  7745. RESULT := -RESULT;
  7746. ApplyMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7747. SIZEOF( LONGINT ), MatMulIncALALLoop, NIL );
  7748. RESULT := -RESULT;
  7749. RETURN RESULT
  7750. END "@MulDec";
  7751. OPERATOR "@MulDec"*(CONST left: ARRAY [ * , * ] OF LONGINT; CONST right: ARRAY [ * ] OF LONGINT ): ARRAY [ * ] OF LONGINT;
  7752. BEGIN
  7753. RESULT := -RESULT;
  7754. ApplyMatVecMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7755. SIZEOF( LONGINT ), MatMulIncALALLoop, NIL );
  7756. RESULT := -RESULT;
  7757. RETURN RESULT
  7758. END "@MulDec";
  7759. OPERATOR "@MulDec"*(CONST left: ARRAY [ * ] OF LONGINT; CONST right: ARRAY [ * , * ] OF LONGINT ): ARRAY [ * ] OF LONGINT;
  7760. BEGIN
  7761. RESULT := -RESULT;
  7762. ApplyVecMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7763. SIZEOF( LONGINT ), MatMulIncALALLoop, NIL );
  7764. RESULT := -RESULT;
  7765. RETURN RESULT
  7766. END "@MulDec";
  7767. (** REAL *)
  7768. PROCEDURE MatMulIncARARLoop( ladr, radr, dadr, linc, rinc, len: Address );
  7769. VAR lval, rval, dval: REAL;
  7770. BEGIN
  7771. SYSTEM.GET( dadr, dval );
  7772. WHILE (len > 0) DO
  7773. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := dval + lval * rval;
  7774. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  7775. END;
  7776. SYSTEM.PUT( dadr, dval );
  7777. END MatMulIncARARLoop;
  7778. OPERATOR "@MulInc"*(CONST left, right: ARRAY [ * , * ] OF REAL ): ARRAY [ * , * ] OF REAL;
  7779. BEGIN
  7780. ApplyMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  7781. loopMatMulIncARAR, matMulIncR );
  7782. RETURN RESULT
  7783. END "@MulInc";
  7784. OPERATOR "@MulInc"*(CONST left: ARRAY [ * , * ] OF REAL;CONST right: ARRAY [ * ] OF REAL ): ARRAY [ * ] OF REAL;
  7785. BEGIN
  7786. ApplyMatVecMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7787. SIZEOF( REAL ), loopMatMulIncARAR, matMulIncR );
  7788. RETURN RESULT
  7789. END "@MulInc";
  7790. OPERATOR "@MulInc"*( CONST left: ARRAY [ * ] OF REAL; CONST right: ARRAY [ * , * ] OF REAL ): ARRAY [ * ] OF REAL;
  7791. BEGIN
  7792. ApplyVecMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7793. SIZEOF( REAL ), loopMatMulIncARAR, matMulIncR );
  7794. RETURN RESULT
  7795. END "@MulInc";
  7796. OPERATOR "@MulDec"*(CONST left, right: ARRAY [ * , * ] OF REAL ): ARRAY [ * , * ] OF REAL;
  7797. BEGIN
  7798. RESULT := -RESULT;
  7799. ApplyMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  7800. loopMatMulIncARAR, matMulIncR );
  7801. RESULT := -RESULT;
  7802. RETURN RESULT
  7803. END "@MulDec";
  7804. OPERATOR "@MulDec"*( CONST left: ARRAY [ * , * ] OF REAL; CONST right: ARRAY [ * ] OF REAL ): ARRAY [ * ] OF REAL;
  7805. BEGIN
  7806. RESULT := -RESULT;
  7807. ApplyMatVecMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7808. SIZEOF( REAL ), loopMatMulIncARAR, matMulIncR );
  7809. RESULT := -RESULT;
  7810. RETURN RESULT
  7811. END "@MulDec";
  7812. OPERATOR "@MulDec"*(CONST left: ARRAY [ * ] OF REAL; CONST right: ARRAY [ * , * ] OF REAL ): ARRAY [ * ] OF REAL;
  7813. BEGIN
  7814. RESULT := -RESULT;
  7815. ApplyVecMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7816. SIZEOF( REAL ), loopMatMulIncARAR, matMulIncR );
  7817. RESULT := -RESULT;
  7818. RETURN RESULT
  7819. END "@MulDec";
  7820. (** LONGREAL *)
  7821. PROCEDURE MatMulIncAXAXLoop( ladr, radr, dadr, linc, rinc, len: Address );
  7822. VAR lval, rval, dval: LONGREAL;
  7823. BEGIN
  7824. SYSTEM.GET( dadr, dval );
  7825. WHILE (len > 0) DO
  7826. SYSTEM.GET( ladr, lval ); SYSTEM.GET( radr, rval ); dval := dval + lval * rval;
  7827. INC( ladr, linc ); INC( radr, rinc ); DEC( len );
  7828. END;
  7829. SYSTEM.PUT( dadr, dval );
  7830. END MatMulIncAXAXLoop;
  7831. OPERATOR "@MulInc"*(CONST left, right: ARRAY [ * , * ] OF LONGREAL ): ARRAY [ * , * ] OF LONGREAL;
  7832. BEGIN
  7833. ApplyMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7834. SIZEOF( LONGREAL ), loopMatMulIncAXAX, matMulIncX );
  7835. RETURN RESULT
  7836. END "@MulInc";
  7837. OPERATOR "@MulInc"*(CONST left: ARRAY [ * , * ] OF LONGREAL; CONST right: ARRAY [ * ] OF LONGREAL ): ARRAY [ * ] OF LONGREAL;
  7838. BEGIN
  7839. ApplyMatVecMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7840. SIZEOF( LONGREAL ), loopMatMulIncAXAX, matMulIncX );
  7841. RETURN RESULT
  7842. END "@MulInc";
  7843. OPERATOR "@MulInc"*( CONST left: ARRAY [ * ] OF LONGREAL; CONST right: ARRAY [ * , * ] OF LONGREAL ): ARRAY [ * ] OF LONGREAL;
  7844. BEGIN
  7845. ApplyVecMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7846. SIZEOF( LONGREAL ), loopMatMulIncAXAX, matMulIncX );
  7847. RETURN RESULT
  7848. END "@MulInc";
  7849. OPERATOR "@MulDec"*(CONST left, right: ARRAY [ * , * ] OF LONGREAL ): ARRAY [ * , * ] OF LONGREAL;
  7850. BEGIN
  7851. RESULT := -RESULT;
  7852. ApplyMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7853. SIZEOF( LONGREAL ), loopMatMulIncAXAX, matMulIncX );
  7854. RESULT := -RESULT;
  7855. RETURN RESULT
  7856. END "@MulDec";
  7857. OPERATOR "@MulDec"*( CONST left: ARRAY [ * , * ] OF LONGREAL; CONST right: ARRAY [ * ] OF LONGREAL ): ARRAY [ * ] OF LONGREAL;
  7858. BEGIN
  7859. RESULT := -RESULT;
  7860. ApplyMatVecMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7861. SIZEOF( LONGREAL ), loopMatMulIncAXAX, matMulIncX );
  7862. RESULT := -RESULT;
  7863. RETURN RESULT
  7864. END "@MulDec";
  7865. OPERATOR "@MulDec"*( CONST left: ARRAY [ * ] OF LONGREAL; CONST right: ARRAY [ * , * ] OF LONGREAL ): ARRAY [ * ] OF LONGREAL;
  7866. BEGIN
  7867. RESULT := -RESULT;
  7868. ApplyVecMatMulLoop( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  7869. SIZEOF( LONGREAL ), loopMatMulIncAXAX, matMulIncX );
  7870. RESULT := -RESULT;
  7871. RETURN RESULT
  7872. END "@MulDec";
  7873. (*** Cross product ********************************************************************)
  7874. OPERATOR "*"*(CONST left, right: ARRAY [ * ] OF SHORTINT ): ARRAY [ * ] OF SHORTINT;
  7875. VAR vl1, vl2, vl3, vr1, vr2, vr3: SHORTINT;
  7876. BEGIN
  7877. IF (LEN( left,0 ) # 3) OR (LEN( right,0 ) # 3) THEN
  7878. Halt( GeometryMismatch, ADDRESSOF( left ), ADDRESSOF( right ), 0 )
  7879. END;
  7880. IF LEN( RESULT,0 ) # 3 THEN NEW( RESULT, 3 ) END; (* will trap if not allowed *)
  7881. vl1 := left[0]; vl2 := left[1]; vl3 := left[2]; vr1 := right[0]; vr2 := right[1];
  7882. vr3 := right[2]; RESULT[0] := vl2 * vr3 - vl3 * vr2;
  7883. RESULT[1] := vl3 * vr1 - vl1 * vr3; RESULT[2] := vl1 * vr2 - vl2 * vr1;
  7884. RETURN RESULT
  7885. END "*";
  7886. OPERATOR "*"*(CONST left, right: ARRAY [ * ] OF INTEGER ): ARRAY [ * ] OF INTEGER;
  7887. VAR vl1, vl2, vl3, vr1, vr2, vr3: INTEGER;
  7888. BEGIN
  7889. IF (LEN( left,0 ) # 3) OR (LEN( right,0 ) # 3) THEN
  7890. Halt( GeometryMismatch, ADDRESSOF( left ), ADDRESSOF( right ), 0 )
  7891. END;
  7892. IF LEN( RESULT,0 ) # 3 THEN NEW( RESULT, 3 ) END; (* will trap if not allowed *)
  7893. vl1 := left[0]; vl2 := left[1]; vl3 := left[2]; vr1 := right[0]; vr2 := right[1];
  7894. vr3 := right[2]; RESULT[0] := vl2 * vr3 - vl3 * vr2;
  7895. RESULT[1] := vl3 * vr1 - vl1 * vr3; RESULT[2] := vl1 * vr2 - vl2 * vr1;
  7896. RETURN RESULT
  7897. END "*";
  7898. OPERATOR "*"*(CONST left, right: ARRAY [ * ] OF LONGINT ): ARRAY [ * ] OF LONGINT;
  7899. VAR vl1, vl2, vl3, vr1, vr2, vr3: LONGINT;
  7900. BEGIN
  7901. IF (LEN( left,0 ) # 3) OR (LEN( right,0 ) # 3) THEN
  7902. Halt( GeometryMismatch, ADDRESSOF( left ), ADDRESSOF( right ), 0 )
  7903. END;
  7904. IF LEN( RESULT,0 ) # 3 THEN NEW( RESULT, 3 ) END; (* will trap if not allowed *)
  7905. vl1 := left[0]; vl2 := left[1]; vl3 := left[2]; vr1 := right[0]; vr2 := right[1];
  7906. vr3 := right[2]; RESULT[0] := vl2 * vr3 - vl3 * vr2;
  7907. RESULT[1] := vl3 * vr1 - vl1 * vr3; RESULT[2] := vl1 * vr2 - vl2 * vr1;
  7908. RETURN RESULT
  7909. END "*";
  7910. OPERATOR "*"*(CONST left, right: ARRAY [ * ] OF REAL ): ARRAY [ * ] OF REAL;
  7911. VAR vl1, vl2, vl3, vr1, vr2, vr3: REAL;
  7912. BEGIN
  7913. IF (LEN( left,0 ) # 3) OR (LEN( right,0 ) # 3) THEN
  7914. Halt( GeometryMismatch, ADDRESSOF( left ), ADDRESSOF( right ), 0 )
  7915. END;
  7916. IF LEN( RESULT,0 ) # 3 THEN NEW( RESULT, 3 ) END; (* will trap if not allowed *)
  7917. vl1 := left[0]; vl2 := left[1]; vl3 := left[2]; vr1 := right[0]; vr2 := right[1];
  7918. vr3 := right[2]; RESULT[0] := vl2 * vr3 - vl3 * vr2;
  7919. RESULT[1] := vl3 * vr1 - vl1 * vr3; RESULT[2] := vl1 * vr2 - vl2 * vr1;
  7920. RETURN RESULT
  7921. END "*";
  7922. OPERATOR "*"*(CONST left, right: ARRAY [ * ] OF LONGREAL ): ARRAY [ * ] OF LONGREAL;
  7923. VAR vl1, vl2, vl3, vr1, vr2, vr3: LONGREAL;
  7924. BEGIN
  7925. IF (LEN( left,0 ) # 3) OR (LEN( right,0 ) # 3) THEN
  7926. Halt( GeometryMismatch, ADDRESSOF( left ), ADDRESSOF( right ), 0 )
  7927. END;
  7928. IF LEN( RESULT,0 ) # 3 THEN NEW( RESULT, 3 ) END; (* will trap if not allowed *)
  7929. vl1 := left[0]; vl2 := left[1]; vl3 := left[2]; vr1 := right[0]; vr2 := right[1];
  7930. vr3 := right[2]; RESULT[0] := vl2 * vr3 - vl3 * vr2;
  7931. RESULT[1] := vl3 * vr1 - vl1 * vr3; RESULT[2] := vl1 * vr2 - vl2 * vr1;
  7932. RETURN RESULT
  7933. END "*";
  7934. (** Transpose ********************************************************************)
  7935. PROCEDURE Overlap( src1, src2: Address ): BOOLEAN;
  7936. VAR from1, from2, to1, to2: Address; dim: LONGINT;
  7937. BEGIN
  7938. from1 := GetAdr( src1 ); from2 := GetAdr( src2 ); to1 := from1; to2 := from2;
  7939. dim := GetDim( src1 ) - 1;
  7940. WHILE (dim > 0) DO
  7941. to1 := to1 + (GetLen( src1, dim ) - 1) * GetIncr( src1, dim ); DEC( dim );
  7942. END;
  7943. dim := GetDim( src2 ) - 1;
  7944. WHILE (dim > 0) DO
  7945. to2 := to2 + (GetLen( src2, dim ) - 1) * GetIncr( src2, dim ); DEC( dim );
  7946. END;
  7947. IF from1 < from2 THEN RETURN to1 >= from2;
  7948. ELSIF from2 < from1 THEN RETURN to2 >= from1;
  7949. ELSE RETURN TRUE;
  7950. END;
  7951. END Overlap;
  7952. (*
  7953. PROCEDURE Overlap( src1, src2, dim: Address ): BOOLEAN;
  7954. VAR from1, from2, to1, to2: Address;
  7955. BEGIN
  7956. from1 := GetAdr( src1 ); from2 := GetAdr( src2 ); to1 := from1; to2 := from2;
  7957. DEC( dim );
  7958. WHILE (dim > 0) DO
  7959. to1 := to1 + (GetLen( src1, dim ) - 1) * GetIncr( src1, dim );
  7960. to2 := to2 + (GetLen( src2, dim ) - 1) * GetIncr( src2, dim ); DEC( dim );
  7961. END;
  7962. IF from1 < from2 THEN RETURN to1 >= from2;
  7963. ELSIF from2 < from1 THEN RETURN to2 >= from1;
  7964. ELSE RETURN TRUE;
  7965. END;
  7966. END Overlap;
  7967. *)
  7968. PROCEDURE AllocateTransposed( VAR dest: LONGINT; src: LONGINT;
  7969. elementsize: LONGINT ): ANY;
  7970. VAR ptr, data: ANY; Size: LONGINT;
  7971. (* allocate a structure in dest compatible with src, if necessary. returns if allocation has taken place *)
  7972. PROCEDURE TransposedShape( l, r: LONGINT ): BOOLEAN;
  7973. VAR dim,max: LONGINT;
  7974. BEGIN
  7975. dim := GetDim( l );
  7976. IF dim # GetDim( r ) THEN RETURN FALSE END;
  7977. max := dim-1;
  7978. WHILE (dim > 0) DO
  7979. DEC( dim );
  7980. IF GetLen( l, max-dim ) # GetLen( r, dim ) THEN RETURN FALSE END;
  7981. END;
  7982. RETURN TRUE;
  7983. END TransposedShape;
  7984. PROCEDURE UseDescriptor;
  7985. VAR tag: LONGINT;
  7986. BEGIN
  7987. SYSTEM.GET( src - 4, tag );
  7988. Heaps.NewRec( ptr, tag, FALSE );
  7989. dest := SYSTEM.VAL( LONGINT, ptr );
  7990. END UseDescriptor;
  7991. PROCEDURE NewData;
  7992. VAR max,dim, len, size: LONGINT;
  7993. BEGIN
  7994. dim := GetDim( src ); size := elementsize;
  7995. PutDim( dest, dim );
  7996. PutSize( dest, elementsize );
  7997. max := dim-1;
  7998. WHILE (dim > 0) DO
  7999. DEC( dim );
  8000. len := GetLen( src, max-dim ); PutLen( dest, dim, len );
  8001. PutInc( dest, dim, size ); size := size * len;
  8002. END;
  8003. SYSTEM.NEW( data, size );
  8004. PutAdr( dest, SYSTEM.VAL( LONGINT, data ) );
  8005. PutPtr( dest, SYSTEM.VAL( LONGINT, data ) );
  8006. END NewData;
  8007. BEGIN
  8008. IF dest # 0 THEN Size := GetSize( dest ); ASSERT( Size = elementsize ); END;
  8009. IF debug THEN KernelLog.String( "Allocate same " ); Report( "allocation source", src ); Report( "allocation des", dest ); END;
  8010. IF dest = 0 THEN (* NIL pointer, guaranteed to be tensor *)
  8011. IF TensorFlag IN GetFlags( src ) THEN UseDescriptor();
  8012. ELSE ptr := GetArrayDesc( GetDim( src ) ); dest := SYSTEM.VAL( LONGINT, ptr );
  8013. END;
  8014. PutFlags(dest, {TensorFlag});
  8015. NewData(); RETURN ptr;
  8016. ELSIF GetDim( dest ) # GetDim( src ) THEN (* different dimension *)
  8017. (* check if re-allocation of descriptor is allowed *)
  8018. IF ~(TensorFlag IN GetFlags( dest )) &
  8019. ~(TemporaryFlag IN GetFlags( dest )) THEN (* no, not allowed*)
  8020. HALT( 100 );
  8021. END;
  8022. UseDescriptor();
  8023. PutFlags(dest, {TensorFlag});
  8024. NewData(); RETURN ptr;
  8025. ELSIF (GetAdr( dest ) = 0) OR ~TransposedShape( dest, src ) THEN
  8026. (* check if re-allocation of array data is allowed *)
  8027. IF RangeFlag IN GetFlags( dest ) THEN (* no! not allowed *)
  8028. HALT( 100 );
  8029. END;
  8030. NewData();
  8031. RETURN data;
  8032. ELSE (* nothing to do *)
  8033. RETURN NIL;
  8034. END;
  8035. END AllocateTransposed;
  8036. PROCEDURE Transpose*( dest, left: Address; Size: LONGINT );
  8037. VAR len0, len1, linc0, linc1, dinc0, dinc1, ladr, dadr: LONGINT; p: ANY;
  8038. PROCEDURE CopyLoop( src, dest, srcinc, destinc, len: LONGINT );
  8039. BEGIN
  8040. WHILE (len > 0) DO
  8041. SYSTEM.MOVE( src, dest, Size ); INC( src, srcinc ); INC( dest, destinc );
  8042. DEC( len );
  8043. END;
  8044. END CopyLoop;
  8045. BEGIN
  8046. IF TemporaryFlag IN GetFlags( dest ) THEN (* destination is on the stack: can optimize transposition *)
  8047. PutAdr( dest, GetAdr( left ) ); PutPtr( dest, GetPtr( left ) );
  8048. PutLen( dest, 1, GetLen( left, 0 ) ); PutLen( dest, 0, GetLen( left, 1 ) );
  8049. PutInc( dest, 1, GetIncr( left, 0 ) ); PutInc( dest, 0, GetIncr( left, 1 ) );
  8050. ELSE
  8051. len0 := GetLen( left, 0 ); len1 := GetLen( left, 1 );
  8052. p := AllocateTransposed(dest,left,Size);
  8053. IF Overlap( left, dest ) THEN (* copy data first, then transpose *)
  8054. SYSTEM.NEW( p, len0 * len1 * Size ); dinc0 := Size; dinc1 := len0 * Size;
  8055. dadr := SYSTEM.VAL( LONGINT, p ); linc0 := GetIncr( left, 0 );
  8056. linc1 := GetIncr( left, 1 ); ladr := GetAdr( left );
  8057. WHILE (len0 > 0) DO
  8058. CopyLoop( ladr, dadr, linc1, dinc1, len1 ); INC( ladr, linc0 );
  8059. INC( dadr, dinc0 ); DEC( len0 );
  8060. END;
  8061. len0 := GetLen( left, 0 ); linc0 := Size; linc1 := len0 * Size;
  8062. ladr := SYSTEM.VAL( LONGINT, p );
  8063. ELSE
  8064. linc0 := GetIncr( left, 0 ); linc1 := GetIncr( left, 1 ); ladr := GetAdr( left );
  8065. END;
  8066. dinc0 := GetIncr( dest, 0 ); dinc1 := GetIncr( dest, 1 );
  8067. dadr := GetAdr( dest );
  8068. IF (Size = 4) & (transpose4 # NIL ) THEN
  8069. transpose4( ladr, dadr, linc0, linc1, dinc0, dinc1, len0, len1 );
  8070. ELSIF (Size = 8) & (transpose8 # NIL ) THEN
  8071. transpose8( ladr, dadr, linc0, linc1, dinc0, dinc1, len0, len1 );
  8072. ELSE
  8073. WHILE (len0 > 0) DO
  8074. CopyLoop( ladr, dadr, linc1, dinc0, len1 ); INC( ladr, linc0 );
  8075. INC( dadr, dinc1 ); DEC( len0 );
  8076. END;
  8077. END;
  8078. END;
  8079. END Transpose;
  8080. OPERATOR "`"*(CONST left: ARRAY [ * , * ] OF SHORTINT): ARRAY [ * , * ] OF SHORTINT;
  8081. BEGIN
  8082. Transpose( ADDRESSOF( RESULT ), ADDRESSOF( left ), SIZEOF( SHORTINT ) );
  8083. RETURN RESULT
  8084. END "`";
  8085. OPERATOR "`"*( CONST left: ARRAY [ * , * ] OF INTEGER ):ARRAY [ * , * ] OF INTEGER ;
  8086. BEGIN
  8087. Transpose( ADDRESSOF( RESULT ), ADDRESSOF( left ), SIZEOF( INTEGER ) );
  8088. RETURN RESULT
  8089. END "`";
  8090. OPERATOR "`"*( CONST left: ARRAY [ * , * ] OF LONGINT ): ARRAY [ * , * ] OF LONGINT;
  8091. BEGIN
  8092. Transpose( ADDRESSOF( RESULT ), ADDRESSOF( left ), SIZEOF( LONGINT ) );
  8093. RETURN RESULT
  8094. END "`";
  8095. OPERATOR "`"*( CONST left: ARRAY [ * , * ] OF REAL ): ARRAY [ * , * ] OF REAL;
  8096. BEGIN
  8097. Transpose( ADDRESSOF( RESULT ), ADDRESSOF( left ), SIZEOF( REAL ) );
  8098. RETURN RESULT
  8099. END "`";
  8100. OPERATOR "`"*( CONST left: ARRAY [ * , * ] OF LONGREAL ): ARRAY [ * , * ] OF LONGREAL;
  8101. BEGIN
  8102. Transpose( ADDRESSOF( RESULT ), ADDRESSOF( left ), SIZEOF( LONGREAL ) );
  8103. RETURN RESULT
  8104. END "`";
  8105. PROCEDURE CheckTensorGeometry( left, right, dest: Address; ldim, rdim: LONGINT ): BOOLEAN;
  8106. VAR i: LONGINT;
  8107. BEGIN
  8108. FOR i := 0 TO rdim - 1 DO
  8109. IF GetLen( right, i ) # GetLen( dest, i ) THEN RETURN FALSE END;
  8110. END;
  8111. FOR i := 0 TO ldim - 1 DO
  8112. IF GetLen( left, i ) # GetLen( dest, rdim + i ) THEN RETURN FALSE END;
  8113. END;
  8114. RETURN TRUE;
  8115. END CheckTensorGeometry;
  8116. (*
  8117. PROCEDURE Zero(p: ANY; size: LONGINT);
  8118. VAR adr: LONGINT;
  8119. BEGIN
  8120. adr := SYSTEM.VAL(LONGINT,p);
  8121. WHILE(size>0) DO
  8122. SYSTEM.PUT8(adr,0); DEC(size);INC(adr);
  8123. END;
  8124. END Zero;
  8125. *)
  8126. PROCEDURE DoReshape*( VAR dest: LONGINT; src: LONGINT; CONST shape: ARRAY [ * ] OF LONGINT );
  8127. VAR i, Size: LONGINT; ptr, data: ANY; new: LONGINT;
  8128. oldSize, newSize: LONGINT; oldDim, newDim: LONGINT;
  8129. squeezingReshape: BOOLEAN;
  8130. PROCEDURE NewDescriptor;
  8131. BEGIN
  8132. ptr := GetArrayDesc( newDim ); new := SYSTEM.VAL( LONGINT, ptr );
  8133. END NewDescriptor;
  8134. (* Added by Alexey
  8135. Returns TRUE if the new shape is the result of squeezing (removing of singleton dimensions)
  8136. *)
  8137. PROCEDURE SqueezingReshape(): BOOLEAN;
  8138. VAR
  8139. i, j, n: LONGINT;
  8140. BEGIN
  8141. IF oldDim > newDim THEN
  8142. i := 0; j := 0;
  8143. WHILE (i < oldDim) & (j < newDim) DO
  8144. n := GetLen(src,i);
  8145. IF n = shape[j] THEN INC(j); END;
  8146. INC(i);
  8147. END;
  8148. WHILE (i < oldDim) & (GetLen(src,i) = 1) DO INC(i); END; (* account for a trailing sequence of 1 *)
  8149. ELSE
  8150. squeezingReshape := FALSE;
  8151. END;
  8152. squeezingReshape := (i = oldDim) & (j = newDim);
  8153. RETURN squeezingReshape;
  8154. END SqueezingReshape;
  8155. (* returns TRUE if reshape preserves contiguity pattern and thus is valid even for subranged arrays *)
  8156. PROCEDURE PreservesContiguity(): BOOLEAN;
  8157. VAR
  8158. i, n: LONGINT;
  8159. continue: BOOLEAN;
  8160. BEGIN
  8161. i := oldDim-1; n := GetIncr(src,i);
  8162. continue := TRUE;
  8163. WHILE (i > 0) & continue DO
  8164. n := n * GetLen(src,i);
  8165. DEC(i);
  8166. continue := GetIncr(src,i) = n;
  8167. END;
  8168. IF (i = 0) & continue THEN (* array can be fully linearized and, therefore, can be reshaped to any size *)
  8169. RETURN TRUE;
  8170. ELSE Err("Not yet implemented!");
  8171. END;
  8172. END PreservesContiguity;
  8173. (* Added by Alexey *)
  8174. PROCEDURE NewDescriptorForSameData;
  8175. VAR len, size, i, j: LONGINT;
  8176. BEGIN
  8177. ptr := GetArrayDesc( newDim ); new := SYSTEM.VAL( LONGINT, ptr );
  8178. IF ~squeezingReshape THEN
  8179. size := Size;
  8180. FOR i := newDim - 1 TO 0 BY -1 DO
  8181. len := shape[i]; PutInc( new, i, size ); PutLen( new, i, len );
  8182. size := size * len;
  8183. END;
  8184. ELSE (* squeezing reshape *)
  8185. j := 0; len := shape[j];
  8186. FOR i := 0 TO oldDim-1 DO
  8187. IF GetLen(src,i) = len THEN
  8188. PutInc(new,j,GetIncr(src,i)); PutLen(new,j,len);
  8189. INC(j);
  8190. IF j < newDim THEN len := shape[j]; END;
  8191. END;
  8192. END;
  8193. END;
  8194. IF RangeFlag IN GetFlags(src) THEN (* keep range awareness for case of squeezing reshape and preservation of contiguity *)
  8195. PutFlags(new,GetFlags(new)+{RangeFlag});
  8196. END;
  8197. PutAdr( new, GetAdr(src) );
  8198. PutPtr( new, GetPtr(src) ); PutDim( new, newDim );
  8199. PutSize( new, Size );
  8200. END NewDescriptorForSameData;
  8201. PROCEDURE NewData;
  8202. VAR len, size, i: LONGINT;
  8203. BEGIN
  8204. size := Size;
  8205. FOR i := newDim - 1 TO 0 BY -1 DO
  8206. len := shape[i]; PutInc( new, i, size ); PutLen( new, i, len );
  8207. size := size * len;
  8208. END;
  8209. SYSTEM.NEW( data, size ); (* Zero(data,size*Size); *)
  8210. PutAdr( new, SYSTEM.VAL( LONGINT, data ) );
  8211. PutPtr( new, SYSTEM.VAL( LONGINT, data ) ); PutDim( new, newDim );
  8212. PutSize( new, Size );
  8213. END NewData;
  8214. PROCEDURE CopyData;
  8215. VAR d, s, dadr: LONGINT;
  8216. PROCEDURE Loop( dim: LONGINT; sadr: LONGINT );
  8217. VAR inc, len, i: LONGINT;
  8218. BEGIN
  8219. IF dim = d THEN
  8220. inc := GetIncr( src, dim ); len := GetLen( src, dim );
  8221. FOR i := 0 TO len - 1 DO
  8222. SYSTEM.MOVE( sadr, dadr, s ); INC( dadr, s ); INC( sadr, inc );
  8223. END;
  8224. ELSE
  8225. inc := GetIncr( src, dim ); len := GetLen( src, dim ); INC( dim );
  8226. FOR i := 0 TO len - 1 DO Loop( dim, sadr ); INC( sadr, inc ); END;
  8227. END;
  8228. END Loop;
  8229. BEGIN
  8230. s := Size; ASSERT( GetSize( src ) = s ); d := GetDim( src ) - 1;
  8231. WHILE (d >= 0) & (GetIncr( src, d ) = s) DO
  8232. s := s * GetLen( src, d ); DEC( d );
  8233. END;
  8234. IF d = -1 THEN (* special case: both continuous *)
  8235. SYSTEM.MOVE( GetAdr( src ), GetAdr( new ), s );
  8236. ELSE dadr := GetAdr( new ); Loop( 0, GetAdr( src ) );
  8237. END;
  8238. END CopyData;
  8239. PROCEDURE CopyDataBack;
  8240. VAR d, s: LONGINT; sadr: LONGINT;
  8241. PROCEDURE Loop( dim: LONGINT; dadr: LONGINT );
  8242. VAR inc, len, i: LONGINT;
  8243. BEGIN
  8244. IF dim = d THEN
  8245. inc := GetIncr( dest, dim ); len := GetLen( dest, dim );
  8246. FOR i := 0 TO len - 1 DO
  8247. SYSTEM.MOVE( sadr, dadr, s ); INC( dadr, inc ); INC( sadr, s );
  8248. END;
  8249. ELSE
  8250. inc := GetIncr( dest, dim ); len := GetLen( dest, dim ); INC( dim );
  8251. FOR i := 0 TO len - 1 DO Loop( dim, dadr ); INC( dadr, inc ); END;
  8252. END;
  8253. END Loop;
  8254. BEGIN
  8255. s := Size; ASSERT( GetSize( dest ) = s ); d := GetDim( dest ) - 1;
  8256. WHILE (d >= 0) & (GetIncr( dest, d ) = s) DO
  8257. s := s * GetLen( dest, d ); DEC( d );
  8258. END;
  8259. IF d = -1 THEN (* special case: both continuous *)
  8260. SYSTEM.MOVE( GetAdr( new ), GetAdr( dest ), s );
  8261. ELSE sadr := GetAdr( new ); Loop( 0, GetAdr( dest ) );
  8262. END;
  8263. END CopyDataBack;
  8264. PROCEDURE CopyDescriptor( src, dest: LONGINT );
  8265. BEGIN
  8266. ASSERT( GetDim( src ) = GetDim( dest ) );
  8267. SYSTEM.MOVE( src, dest, MathLenOffset + GetDim( src ) * 8 );
  8268. END CopyDescriptor;
  8269. PROCEDURE ShapeDiffers( ): BOOLEAN;
  8270. VAR i: LONGINT;
  8271. BEGIN
  8272. ASSERT(GetDim(dest) = newDim);
  8273. FOR i := 0 TO newDim - 1 DO
  8274. IF GetLen(dest,i) # shape[i] THEN RETURN TRUE END;
  8275. END;
  8276. RETURN FALSE;
  8277. END ShapeDiffers;
  8278. BEGIN
  8279. (*
  8280. cases
  8281. 1.) descriptor may be replaced = dimension may vary: dest = TENSOR
  8282. 2.) descriptor may be reshaped: dest = ARRAY but no RANGE
  8283. 3.) descriptor may not be reshaped: dest = RANGE
  8284. *)
  8285. (* first check invariants *)
  8286. oldDim := GetDim( src );
  8287. IF oldDim = 0 THEN oldSize := 0
  8288. ELSE
  8289. oldSize := 1;
  8290. FOR i := 0 TO oldDim - 1 DO oldSize := oldSize * GetLen( src, i ); END;
  8291. END;
  8292. newDim := LEN( shape, 0 );
  8293. IF newDim = 0 THEN newSize := 0
  8294. ELSE
  8295. newSize := 1;
  8296. FOR i := 0 TO newDim - 1 DO newSize := newSize * shape[i]; END;
  8297. END;
  8298. IF oldSize # newSize THEN Err( "RESHAPE: Total length mismatch" ); END;
  8299. Size := GetSize( src );
  8300. ASSERT( (Size > 0) & (Size < 128) ); (*! heuristic, remove upper bound *)
  8301. IF dest = src THEN (* added by Alexey *)
  8302. IF ~(RangeFlag IN GetFlags(dest)) OR PreservesContiguity() OR SqueezingReshape() THEN
  8303. NewDescriptorForSameData;
  8304. dest := new;
  8305. ELSIF ((newDim = oldDim) & ~ShapeDiffers()) THEN
  8306. (* create a copy of the original descriptor *)
  8307. ptr := GetArrayDesc(newDim); dest := SYSTEM.VAL(LONGINT,ptr); CopyDescriptor(src,dest);
  8308. ELSE
  8309. Err( "RESHAPE: given RANGE array can not be reshaped!" );
  8310. END;
  8311. ELSIF (dest = 0) THEN (* is tensor for sure *)
  8312. NewDescriptor; NewData; CopyData; dest := new;
  8313. ELSIF (newDim # GetDim( dest )) THEN (* must be tensor *)
  8314. IF ~(TensorFlag IN GetFlags( dest )) THEN (* no, not allowed*)
  8315. Err( "RESHAPE: new dimension only allowed for TENSOR" );
  8316. END;
  8317. NewDescriptor; NewData; CopyData; dest := new;
  8318. ELSIF ShapeDiffers() THEN (* same dim but shape of destination does not match *)
  8319. IF RangeFlag IN GetFlags( dest ) THEN Err( "RESHAPE: new shape not allowed for RANGE" ); END;
  8320. NewDescriptor; NewData; CopyData; CopyDescriptor( new, dest );
  8321. ELSIF ~SameShape( src, dest ) THEN (* shape for destination matches but that of src is different *)
  8322. NewDescriptor; NewData; CopyData; CopyDataBack;
  8323. ELSE (* same shape, just copy *)
  8324. CopyContent( src, dest, Size ); RETURN;
  8325. END;
  8326. END DoReshape;
  8327. PROCEDURE AllocateTensorX*( VAR destA: ARRAY [?]; CONST a: ARRAY [ * ] OF LONGINT; Size: LONGINT; tag: LONGINT );
  8328. VAR descr, data: ANY; same: BOOLEAN; i: LONGINT; dim: LONGINT; dest: Address;
  8329. PROCEDURE NewData;
  8330. VAR len, size, i: LONGINT;
  8331. BEGIN
  8332. size := Size;
  8333. FOR i := dim - 1 TO 0 BY -1 DO
  8334. len := a[i];
  8335. (*
  8336. KernelLog.Int(len,10); KernelLog.Ln;
  8337. *)
  8338. PutInc( dest, i, size ); PutLen( dest, i, len ); size := size * len;
  8339. END;
  8340. IF tag = 0 THEN
  8341. SYSTEM.NEW( data, size ); (* Zero(data,size*Size); *)
  8342. PutAdr( dest, SYSTEM.VAL( LONGINT, data ) );
  8343. ELSE
  8344. Heaps.NewArr(data, tag, size DIV Size,1,FALSE);
  8345. PutAdr( dest, SYSTEM.VAL( LONGINT, data ) + ArrDataArrayOffset );
  8346. END;
  8347. PutPtr( dest, SYSTEM.VAL( LONGINT, data ) ); PutSize( dest, Size );
  8348. END NewData;
  8349. PROCEDURE ClearData;
  8350. (*! todo *)
  8351. END ClearData;
  8352. BEGIN
  8353. dim := LEN( a,0 );
  8354. dest := SYSTEM.VAL(Address,destA);
  8355. (*! check range flag! *)
  8356. IF (dest = 0) OR (dim # GetDim( dest )) THEN
  8357. IF dest # 0 THEN
  8358. IF (~(TensorFlag IN GetFlags( dest ))) THEN Err( "Array's number of dimension must not be modified (no TENSOR !)" ); END;
  8359. END;
  8360. descr := GetArrayDesc( LEN( a,0 ) ); dest := SYSTEM.VAL( LONGINT, descr );
  8361. NewData;
  8362. ELSE
  8363. i := 0;
  8364. WHILE (i < dim) & same DO
  8365. IF GetLen( dest, i ) # a[i] THEN same := FALSE; END;
  8366. INC( i );
  8367. END;
  8368. IF ~same THEN
  8369. IF (RangeFlag IN GetFlags( dest )) THEN Err( "Array's shape must not be modified (is RANGE !) " ); END;
  8370. NewData
  8371. ELSE ClearData
  8372. END;
  8373. END;
  8374. SYSTEM.PUT(ADDRESSOF(destA),dest);
  8375. END AllocateTensorX;
  8376. PROCEDURE LenA*( VAR dest: ARRAY [ * ] OF LONGINT; src: Address );
  8377. VAR dim, i: LONGINT;
  8378. BEGIN
  8379. dim := GetDim( src );
  8380. IF LEN( dest, 0 ) # dim THEN NEW( dest, dim ); END;
  8381. FOR i := 0 TO dim - 1 DO dest[i] := GetLen( src, i ); END;
  8382. END LenA;
  8383. PROCEDURE IncrA*( VAR dest: ARRAY [ * ] OF LONGINT; src: Address );
  8384. VAR dim, i, len: LONGINT;
  8385. BEGIN
  8386. dim := GetDim( src ); len := LEN( dest, 0 );
  8387. IF len # dim THEN NEW( dest, dim ); END;
  8388. FOR i := 0 TO dim - 1 DO dest[i] := GetIncr( src, i ); END;
  8389. END IncrA;
  8390. PROCEDURE Len*(src: Address; d: LONGINT): LONGINT;
  8391. VAR dim: LONGINT;
  8392. BEGIN
  8393. dim := GetDim(src);
  8394. IF (d<0) OR (d>=dim) THEN HALT(100)
  8395. ELSE
  8396. RETURN GetLen(src,d);
  8397. END;
  8398. END Len;
  8399. PROCEDURE Incr*(src: Address; d: LONGINT): LONGINT;
  8400. VAR dim: LONGINT;
  8401. BEGIN
  8402. dim := GetDim(src);
  8403. IF (d<0) OR (d>=dim) THEN HALT(100)
  8404. ELSE
  8405. RETURN GetIncr(src,d);
  8406. END;
  8407. END Incr;
  8408. PROCEDURE AllocateTensor( VAR dest: LONGINT; left, right: Address;
  8409. Size: LONGINT ): ANY;
  8410. VAR ldim, rdim: LONGINT; ptr, data: ANY;
  8411. PROCEDURE NewData;
  8412. VAR len, size, i: LONGINT;
  8413. BEGIN
  8414. size := 1;
  8415. FOR i := 0 TO ldim - 1 DO
  8416. len := GetLen( left, i ); size := size * len; PutLen( dest, i, len );
  8417. END;
  8418. FOR i := 0 TO rdim - 1 DO
  8419. len := GetLen( right, i ); size := size * len; PutLen( dest, ldim + i, len );
  8420. END;
  8421. SYSTEM.NEW( data, size * Size ); (* Zero(data,size*Size); *)
  8422. (*
  8423. KernelLog.String("adr data="); KernelLog.Int(SYSTEM.VAL(LONGINT,data),10); KernelLog.Ln;
  8424. KernelLog.String("adr dest="); KernelLog.Int(dest,10); KernelLog.Ln;
  8425. *)
  8426. size := Size;
  8427. FOR i := ldim + rdim - 1 TO 0 BY -1 DO
  8428. PutInc( dest, i, size ); size := size * GetLen( dest, i );
  8429. END;
  8430. PutAdr( dest, SYSTEM.VAL( LONGINT, data ) );
  8431. PutPtr( dest, SYSTEM.VAL( LONGINT, data ) );
  8432. END NewData;
  8433. BEGIN
  8434. ldim := GetDim( left ); rdim := GetDim( right );
  8435. IF dest = 0 THEN (* NIL pointer, guaranteed to be tensor *)
  8436. ptr := GetArrayDesc( ldim + rdim ); dest := SYSTEM.VAL( LONGINT, ptr );
  8437. NewData(); RETURN ptr;
  8438. ELSIF (ldim + rdim # GetDim( dest )) THEN
  8439. IF ~(TensorFlag IN GetFlags( dest )) &
  8440. ~(TemporaryFlag IN GetFlags( dest )) THEN (* no, not allowed*)
  8441. HALT( 100 );
  8442. END;
  8443. ptr := GetArrayDesc( ldim + rdim ); dest := SYSTEM.VAL( LONGINT, ptr );
  8444. NewData(); RETURN ptr;
  8445. ELSIF ~CheckTensorGeometry( left, right, dest, ldim, rdim ) THEN (* dimension matches but not geometry *)
  8446. IF RangeFlag IN GetFlags( dest ) THEN (* no! not allowed *)
  8447. HALT( 100 );
  8448. END;
  8449. NewData(); RETURN data;
  8450. END;
  8451. RETURN NIL;
  8452. END AllocateTensor;
  8453. (* find the largest block with a regular pattern of the form offset+{i*linc: 0<=i<len} for two arrays simultaneously. d is dimension applying to the resulting loop *)
  8454. PROCEDURE FindPatternTensor( left, right: Address;
  8455. VAR rdim, len, linc, ri: LONGINT );
  8456. (* geometric precondition: lengths must coincide *)
  8457. VAR ldim: LONGINT;
  8458. BEGIN
  8459. ldim := GetDim( left ) - 1; rdim := GetDim( right ) - 1;
  8460. len := GetLen( left, ldim ); ASSERT( len = GetLen( right, rdim ) );
  8461. WHILE (len = 1) & (ldim > 0) & (rdim > 0) DO
  8462. DEC( ldim ); DEC( rdim ); len := GetLen( left, ldim );
  8463. ASSERT( GetLen( left, ldim ) = GetLen( right, rdim ) );
  8464. END;
  8465. linc := GetIncr( left, ldim ); ri := GetIncr( right, rdim ); DEC( rdim );
  8466. DEC( ldim );
  8467. WHILE (ldim >= 0) & (rdim >= 0) & (GetIncr( left, ldim ) = len * linc) &
  8468. (GetIncr( right, rdim ) = len * ri) DO
  8469. len := len * GetLen( left, ldim );
  8470. ASSERT( GetLen( left, ldim ) = GetLen( right, rdim ) ); DEC( rdim );
  8471. DEC( ldim );
  8472. END;
  8473. INC( ldim ); INC( rdim );
  8474. IF debug THEN
  8475. KernelLog.String( "FindPatternTensor: " ); KernelLog.Int( rdim, 10 ); KernelLog.Int( len, 10 );
  8476. KernelLog.Int( linc, 10 ); KernelLog.Int( ri, 10 ); KernelLog.Ln;
  8477. END;
  8478. END FindPatternTensor;
  8479. PROCEDURE ApplyTensorAAAOp( d, l, r: Address; elementSize: LONGINT;
  8480. Loop: BinaryASALoop );
  8481. VAR loopd, looplen, loopri, loopdi, lDim, rDim: LONGINT; p: ANY;
  8482. origdest: LONGINT; left, right, dest: Address;
  8483. PROCEDURE Traverse( ladr, radr, dadr: Address; ldim, rdim: LONGINT );
  8484. VAR len: LONGINT; linc, rinc, dinc: LONGINT;
  8485. BEGIN
  8486. IF (ldim < lDim) THEN
  8487. len := GetLen( left, ldim ); linc := GetIncr( left, ldim );
  8488. dinc := GetIncr( dest, ldim + rdim ); INC( ldim );
  8489. WHILE (len > 0) DO
  8490. Traverse( ladr, radr, dadr, ldim, rdim ); INC( ladr, linc );
  8491. INC( dadr, dinc ); DEC( len );
  8492. END;
  8493. ELSIF (rdim # loopd) THEN
  8494. len := GetLen( right, rdim ); rinc := GetIncr( right, rdim );
  8495. dinc := GetIncr( dest, ldim + rdim ); INC( rdim );
  8496. WHILE (len > 0) DO
  8497. Traverse( ladr, radr, dadr, ldim, rdim ); INC( radr, rinc );
  8498. INC( dadr, dinc ); DEC( len );
  8499. END;
  8500. ELSE
  8501. (*
  8502. KernelLog.String("MulALSLLoop"); KernelLog.Int(dadr,10); KernelLog.Int(loopdi,10); KernelLog.Int(looplen,10);
  8503. KernelLog.Int(GetAdr(dest),10);
  8504. KernelLog.Int(GetAdr(dest)+clen,10);
  8505. KernelLog.Ln;
  8506. *)
  8507. Loop( radr, ladr, dadr, loopri, loopdi, looplen );
  8508. (* loop over right matrix and destination highest continuous dimension D[x,y,z,..] := L[x,y] ** R[z,..] *)
  8509. END;
  8510. END Traverse;
  8511. BEGIN
  8512. SYSTEM.GET( d, dest ); SYSTEM.GET( l, left ); SYSTEM.GET( r, right );
  8513. (* check array lengths *)
  8514. origdest := 0; lDim := GetDim( left ); rDim := GetDim( right );
  8515. p := AllocateTensor( dest, left, right, elementSize );
  8516. (*
  8517. IF (dest = 0) OR (GetPtr( dest ) = 0) THEN
  8518. p := AllocateTensor( left, right, dest, elementSize )
  8519. ELSIF ~CheckTensorGeometry( left, right, dest, lDim, rDim ) THEN
  8520. IF GetPtr( dest ) = -1 THEN HALT( GeometryMismatch )
  8521. ELSE p := AllocateTensor( left, right, dest, elementSize );
  8522. END;
  8523. (*! to be done: treat overlapping memory *)
  8524. END;
  8525. *)
  8526. (* debugging *)
  8527. IF debug THEN Report( "AAA:left", left ); Report( "AAA:right", right ); Report( "AAA:dest", dest ); END;
  8528. (* check pattern: longest piece that can be done with a loop *)
  8529. FindPatternTensor( dest, right, loopd, looplen, loopri, loopdi );
  8530. (* run through dimensions *)
  8531. Traverse( GetAdr( left ), GetAdr( right ), GetAdr( dest ), 0, 0 );
  8532. SYSTEM.PUT( d, dest );
  8533. END ApplyTensorAAAOp;
  8534. OPERATOR "**"*(CONST left,right: ARRAY [?] OF SHORTINT): ARRAY [?] OF SHORTINT;
  8535. BEGIN
  8536. ApplyTensorAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  8537. SIZEOF( SHORTINT ), MulASSSLoop );
  8538. RETURN RESULT
  8539. END "**";
  8540. OPERATOR "**"*(CONST left,right: ARRAY [?] OF INTEGER): ARRAY [?] OF INTEGER;
  8541. BEGIN
  8542. ApplyTensorAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  8543. SIZEOF( INTEGER ), MulAISILoop );
  8544. RETURN RESULT
  8545. END "**";
  8546. OPERATOR "**"*(CONST left,right: ARRAY [?] OF LONGINT): ARRAY [?] OF LONGINT;
  8547. BEGIN
  8548. ApplyTensorAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  8549. SIZEOF( LONGINT ), MulALSLLoop );
  8550. RETURN RESULT
  8551. END "**";
  8552. OPERATOR "**"*(CONST left,right: ARRAY [?] OF REAL): ARRAY [?] OF REAL;
  8553. BEGIN
  8554. ApplyTensorAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( REAL ),
  8555. loopMulARSR );
  8556. RETURN RESULT
  8557. END "**";
  8558. OPERATOR "**"*(CONST left,right: ARRAY [?] OF LONGREAL): ARRAY [?] OF LONGREAL;
  8559. BEGIN
  8560. ApplyTensorAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ),
  8561. SIZEOF( LONGREAL ), loopMulAXSX );
  8562. RETURN RESULT
  8563. END "**";
  8564. OPERATOR "**"*(CONST left,right: ARRAY [?] OF COMPLEX): ARRAY [?] OF COMPLEX;
  8565. BEGIN
  8566. ApplyTensorAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( COMPLEX ),
  8567. loopMulAZSZ );
  8568. RETURN RESULT
  8569. END "**";
  8570. OPERATOR "**"*(CONST left,right: ARRAY [?] OF LONGCOMPLEX): ARRAY [?] OF LONGCOMPLEX;
  8571. BEGIN
  8572. ApplyTensorAAAOp( ADDRESSOF( RESULT ), ADDRESSOF( left ), ADDRESSOF( right ), SIZEOF( LONGCOMPLEX ),
  8573. loopMulALZSLZ );
  8574. RETURN RESULT
  8575. END "**";
  8576. PROCEDURE InitOptimization;
  8577. VAR p: PROCEDURE;
  8578. BEGIN
  8579. GETPROCEDURE("FoxArrayBaseOptimized","Install",p);
  8580. IF p # NIL THEN
  8581. p;
  8582. ELSE
  8583. KernelLog.String( "Warning: ArrayBase runtime library optimizer not installed." ); KernelLog.Ln;
  8584. END;
  8585. END InitOptimization;
  8586. PROCEDURE CopyDescriptor*(VAR destPtr: ANY; src: LONGINT; prefixIndices, prefixRanges, suffixIndices, suffixRanges: LONGINT);
  8587. VAR size: SIZE; srcDim, destDim,i,len,incr: LONGINT; dest: Address;
  8588. BEGIN
  8589. IF src = 0 THEN
  8590. HALT(100);
  8591. ELSE
  8592. srcDim := GetDim(src);
  8593. destDim := srcDim - prefixIndices - suffixIndices;
  8594. (*
  8595. KernelLog.String("srcDim "); KernelLog.Int(srcDim,1); KernelLog.Ln;
  8596. KernelLog.String("prefixIndices "); KernelLog.Int(prefixIndices,1); KernelLog.Ln;
  8597. KernelLog.String("prefixRanges "); KernelLog.Int(prefixRanges,1); KernelLog.Ln;
  8598. KernelLog.String("suffixIndices "); KernelLog.Int(suffixIndices,1); KernelLog.Ln;
  8599. KernelLog.String("suffixRanges "); KernelLog.Int(suffixRanges,1); KernelLog.Ln;
  8600. KernelLog.String("destDim "); KernelLog.Int(destDim,1); KernelLog.Ln;
  8601. *)
  8602. destPtr := GetArrayDesc(destDim);
  8603. dest := SYSTEM.VAL(LONGINT,destPtr);
  8604. (* SYSTEM.MOVE(src,dest,MathLenOffset); *)
  8605. PutAdr(dest,GetAdr(src));
  8606. PutPtr(dest,GetPtr(src));
  8607. PutFlags(dest,GetFlags(src));
  8608. PutSize(dest,GetSize(src));
  8609. FOR i := 0 TO srcDim-suffixIndices-suffixRanges-prefixIndices-prefixRanges-1 DO
  8610. srcDim := i + prefixIndices + prefixRanges;
  8611. destDim := i + prefixRanges;
  8612. len := GetLen(src,srcDim);
  8613. incr := GetIncr(src,srcDim);
  8614. PutLen(dest,destDim,len);
  8615. PutInc(dest,destDim,incr);
  8616. END;
  8617. (*
  8618. Report("copy descriptor src",src);
  8619. Report("copy descriptor dest",dest);
  8620. *)
  8621. END;
  8622. END CopyDescriptor;
  8623. (* when Reshape is called by a compiler, the arguments are - for the compiler - replaced as follows, this makes them compatible
  8624. VAR dest: ARRAY [?] OF basetype
  8625. CONST src: ARRAY [?] OF basetype
  8626. CONST shape: ARRAY [*] OF LONGINT
  8627. *)
  8628. PROCEDURE Reshape*(CONST left: ARRAY [?]; CONST right: ARRAY [*] OF LONGINT): ARRAY [?];
  8629. BEGIN
  8630. DoReshape(SYSTEM.VAL(LONGINT,RESULT), SYSTEM.VAL(LONGINT,left), right);
  8631. RETURN RESULT
  8632. END Reshape;
  8633. (* OLIVIER *)
  8634. (** creates a degenerated range from an integer.
  8635. - makes it possible to convert the result of an integer-valued procedure F() into a range
  8636. without executing the procedure twice as it would happen in "(F() .. F() BY 1)"
  8637. **)
  8638. PROCEDURE RangeFromInteger*(CONST integer: LONGINT): RANGE;
  8639. BEGIN RETURN (integer .. integer BY 1)
  8640. END RangeFromInteger;
  8641. (* OLIVIER *)
  8642. (** create an array with the same data but with more dimensions
  8643. - each element in the array 'keptDimensions' corresponds to a dimension in the resulting array
  8644. - if element = TRUE: use a dimension from the source array, i.e. reuse length and increment
  8645. - if element = FALSE: insert a new dimension having length = 1 and increment = 0
  8646. e.g.:
  8647. ExpandDimensions(array, [FALSE, TRUE, FALSE, FALSE, TRUE])
  8648. performs the following type transformation:
  8649. ARRAY [10, 20] OF REAL -> ARRAY [1, 10, 1, 1, 20] OF REAL
  8650. **)
  8651. PROCEDURE ExpandDimensions*(CONST sourceArray: ARRAY [?]; CONST keptDimensions: ARRAY [*] OF BOOLEAN): ARRAY [?];
  8652. VAR
  8653. targetDimensionality, sourceIndex, targetIndex: LONGINT;
  8654. sourceAddress, targetAddress: LONGINT;
  8655. targetArrayDescriptor: ANY;
  8656. BEGIN
  8657. sourceAddress := SYSTEM.VAL(LONGINT, sourceArray);
  8658. targetDimensionality := LEN(keptDimensions, 0);
  8659. targetArrayDescriptor := GetArrayDesc(targetDimensionality); (* create a new array descriptor *)
  8660. SYSTEM.PUT(ADDRESSOF(RESULT), targetArrayDescriptor);
  8661. targetAddress := SYSTEM.VAL(LONGINT, RESULT);
  8662. PutAdr(targetAddress, GetAdr(sourceAddress));
  8663. PutPtr(targetAddress, GetPtr(sourceAddress));
  8664. PutFlags(targetAddress, {TensorFlag});
  8665. PutSize(targetAddress, GetSize(sourceAddress));
  8666. (* set increments and lengths *)
  8667. sourceIndex := 0;
  8668. FOR targetIndex := 0 TO targetDimensionality - 1 DO
  8669. IF keptDimensions[targetIndex] THEN
  8670. (* reuse length and increment from source array *)
  8671. ASSERT(sourceIndex < DIM(sourceArray));
  8672. PutLen(targetAddress, targetIndex, GetLen(sourceAddress, sourceIndex));
  8673. PutInc(targetAddress, targetIndex, GetIncr(sourceAddress, sourceIndex));
  8674. INC(sourceIndex)
  8675. ELSE
  8676. (* set length = 1 and increment = 0 *)
  8677. PutLen(targetAddress, targetIndex, 1);
  8678. PutInc(targetAddress, targetIndex, 0);
  8679. END
  8680. END;
  8681. (* Report("expand dimensions: ", targetAddress); *)
  8682. RETURN RESULT
  8683. END ExpandDimensions;
  8684. (* index ranges *)
  8685. (* the length of a range, i.e. the number of indices that it stands for *)
  8686. OPERATOR "LEN"*(CONST range: RANGE): LONGINT;
  8687. VAR
  8688. temp, result: LONGINT;
  8689. BEGIN
  8690. IF (LAST(range) < FIRST(range)) OR (FIRST(range) < 0) OR (STEP(range) < 1) THEN
  8691. (* invalid range *)
  8692. result := 0
  8693. ELSIF LAST(range) = MAX(LONGINT) THEN
  8694. (* open-ended range *)
  8695. result := MAX(LONGINT)
  8696. ELSE
  8697. temp := 1 + LAST(range) - FIRST(range);
  8698. result := temp DIV STEP(range);
  8699. IF (temp MOD STEP(range)) # 0 THEN
  8700. INC(result)
  8701. END
  8702. END;
  8703. RETURN result
  8704. END "LEN";
  8705. (* complex numbers *)
  8706. OPERATOR "+"*(CONST left, right: COMPLEX): COMPLEX;
  8707. VAR result: COMPLEX;
  8708. BEGIN
  8709. RE(result) := RE(left) + RE(right);
  8710. IM(result) := IM(left) + IM(right);
  8711. RETURN result
  8712. END "+";
  8713. OPERATOR "+"*(CONST left, right: LONGCOMPLEX): LONGCOMPLEX;
  8714. VAR result: LONGCOMPLEX;
  8715. BEGIN
  8716. RE(result) := RE(left) + RE(right);
  8717. IM(result) := IM(left) + IM(right);
  8718. RETURN result
  8719. END "+";
  8720. OPERATOR "-"*(CONST left, right: COMPLEX): COMPLEX;
  8721. VAR result: COMPLEX;
  8722. BEGIN
  8723. RE(result) := RE(left) - RE(right);
  8724. IM(result) := IM(left) - IM(right);
  8725. RETURN result
  8726. END "-";
  8727. OPERATOR "-"*(CONST left, right: LONGCOMPLEX): LONGCOMPLEX;
  8728. VAR result: LONGCOMPLEX;
  8729. BEGIN
  8730. RE(result) := RE(left) - RE(right);
  8731. IM(result) := IM(left) - IM(right);
  8732. RETURN result
  8733. END "-";
  8734. OPERATOR "*"*(CONST left, right: COMPLEX): COMPLEX;
  8735. VAR result: COMPLEX;
  8736. BEGIN
  8737. RE(result) := RE(left) * RE(right) - IM(left) * IM(right);
  8738. IM(result) := RE(left) * IM(right) + IM(left) * RE(right);
  8739. RETURN result
  8740. END "*";
  8741. OPERATOR "*"*(CONST left, right: LONGCOMPLEX): LONGCOMPLEX;
  8742. VAR result: LONGCOMPLEX;
  8743. BEGIN
  8744. RE(result) := RE(left) * RE(right) - IM(left) * IM(right);
  8745. IM(result) := RE(left) * IM(right) + IM(left) * RE(right);
  8746. RETURN result
  8747. END "*";
  8748. OPERATOR "/"*(CONST left, right: COMPLEX): COMPLEX;
  8749. VAR result: COMPLEX; iDivisor: REAL;
  8750. BEGIN
  8751. iDivisor := 1.0 / (RE(right) * RE(right) + IM(right) * IM(right));
  8752. RE(result) := (RE(left) * RE(right) + IM(left) * IM(right)) * iDivisor;
  8753. IM(result) := (IM(left) * RE(right) - RE(left) * IM(right)) * iDivisor;
  8754. RETURN result
  8755. END "/";
  8756. OPERATOR "/"*(CONST left, right: LONGCOMPLEX): LONGCOMPLEX;
  8757. VAR result: LONGCOMPLEX; iDivisor: LONGREAL;
  8758. BEGIN
  8759. iDivisor := 1.0D0 / (RE(right) * RE(right) + IM(right) * IM(right));
  8760. RE(result) := (RE(left) * RE(right) + IM(left) * IM(right)) * iDivisor;
  8761. IM(result) := (IM(left) * RE(right) - RE(left) * IM(right)) * iDivisor;
  8762. RETURN result
  8763. END "/";
  8764. OPERATOR "ABS"*(CONST arg: COMPLEX): REAL;
  8765. BEGIN RETURN Math.sqrt(RE(arg) * RE(arg) + IM(arg) * IM(arg))
  8766. END "ABS";
  8767. OPERATOR "ABS"*(CONST arg: LONGCOMPLEX): LONGREAL;
  8768. BEGIN RETURN MathL.sqrt(RE(arg) * RE(arg) + IM(arg) * IM(arg))
  8769. END "ABS";
  8770. OPERATOR "~"*(CONST left: COMPLEX): COMPLEX;
  8771. BEGIN
  8772. RETURN RE(left) - IM(left) * IMAG
  8773. END "~";
  8774. OPERATOR "~"*(CONST left: LONGCOMPLEX): LONGCOMPLEX;
  8775. BEGIN
  8776. RETURN RE(left) - IM(left) * IMAG
  8777. END "~";
  8778. OPERATOR "<="*(CONST x, y: COMPLEX): BOOLEAN; BEGIN RETURN ABS(x) <= ABS(y); END "<=";
  8779. OPERATOR ">="*(CONST x, y: COMPLEX): BOOLEAN; BEGIN RETURN ABS(x) >= ABS(y); END ">=";
  8780. OPERATOR "<"*(CONST x, y: COMPLEX): BOOLEAN; BEGIN RETURN ABS(x) < ABS(y); END "<";
  8781. OPERATOR ">"*(CONST x, y: COMPLEX): BOOLEAN; BEGIN RETURN ABS(x) > ABS(y); END ">";
  8782. OPERATOR "<="*(CONST x, y: LONGCOMPLEX): BOOLEAN; BEGIN RETURN ABS(x) <= ABS(y); END "<=";
  8783. OPERATOR ">="*(CONST x, y: LONGCOMPLEX): BOOLEAN; BEGIN RETURN ABS(x) >= ABS(y); END ">=";
  8784. OPERATOR "<"*(CONST x, y: LONGCOMPLEX): BOOLEAN; BEGIN RETURN ABS(x) < ABS(y); END "<";
  8785. OPERATOR ">"*(CONST x, y: LONGCOMPLEX): BOOLEAN; BEGIN RETURN ABS(x) > ABS(y); END ">";
  8786. OPERATOR "ALL"*(CONST x: ARRAY [?] OF SHORTINT; op: PROCEDURE(x: SHORTINT): SHORTINT): ARRAY[?] OF SHORTINT; (*should also accept operator ?*)
  8787. BEGIN
  8788. ApplyGenericUnaryAAOpS(ADDRESSOF(RESULT),ADDRESSOF(x),SIZEOF(SHORTINT),GenericLoopS,op);
  8789. RETURN RESULT;
  8790. END "ALL";
  8791. OPERATOR "ALL"*(CONST x: ARRAY [?] OF INTEGER; op: PROCEDURE(x: INTEGER): INTEGER): ARRAY[?] OF INTEGER; (*should also accept operator ?*)
  8792. BEGIN
  8793. ApplyGenericUnaryAAOpI(ADDRESSOF(RESULT),ADDRESSOF(x),SIZEOF(INTEGER),GenericLoopI,op);
  8794. RETURN RESULT;
  8795. END "ALL";
  8796. OPERATOR "ALL"*(CONST x: ARRAY [?] OF LONGINT; op: PROCEDURE(x: LONGINT): LONGINT): ARRAY[?] OF LONGINT; (*should also accept operator ?*)
  8797. BEGIN
  8798. ApplyGenericUnaryAAOpL(ADDRESSOF(RESULT),ADDRESSOF(x),SIZEOF(LONGINT),GenericLoopL,op);
  8799. RETURN RESULT;
  8800. END "ALL";
  8801. OPERATOR "ALL"*(CONST x: ARRAY [?] OF HUGEINT; op: PROCEDURE(x: HUGEINT): HUGEINT): ARRAY[?] OF HUGEINT; (*should also accept operator ?*)
  8802. BEGIN
  8803. ApplyGenericUnaryAAOpH(ADDRESSOF(RESULT),ADDRESSOF(x),SIZEOF(HUGEINT),GenericLoopH,op);
  8804. RETURN RESULT;
  8805. END "ALL";
  8806. OPERATOR "ALL"*(CONST x: ARRAY [?] OF REAL; op: PROCEDURE(x: REAL): REAL): ARRAY[?] OF REAL; (*should also accept operator ?*)
  8807. BEGIN
  8808. ApplyGenericUnaryAAOpR(ADDRESSOF(RESULT),ADDRESSOF(x),SIZEOF(REAL),GenericLoopR,op);
  8809. RETURN RESULT;
  8810. END "ALL";
  8811. OPERATOR "ALL"*(CONST x: ARRAY [?] OF LONGREAL; op: PROCEDURE(x: LONGREAL): LONGREAL): ARRAY[?] OF LONGREAL; (*should also accept operator ?*)
  8812. BEGIN
  8813. ApplyGenericUnaryAAOpX(ADDRESSOF(RESULT),ADDRESSOF(x),SIZEOF(LONGREAL),GenericLoopX,op);
  8814. RETURN RESULT;
  8815. END "ALL";
  8816. OPERATOR "ALL"*(CONST x: ARRAY [?] OF COMPLEX; op: PROCEDURE(x: COMPLEX): COMPLEX): ARRAY[?] OF COMPLEX; (*should also accept operator ?*)
  8817. BEGIN
  8818. ApplyGenericUnaryAAOpZ(ADDRESSOF(RESULT),ADDRESSOF(x),SIZEOF(COMPLEX),GenericLoopZ,op);
  8819. RETURN RESULT;
  8820. END "ALL";
  8821. OPERATOR "ALL"*(CONST x: ARRAY [?] OF LONGCOMPLEX; op: PROCEDURE(x: LONGCOMPLEX): LONGCOMPLEX): ARRAY[?] OF LONGCOMPLEX; (*should also accept operator ?*)
  8822. BEGIN
  8823. ApplyGenericUnaryAAOpLZ(ADDRESSOF(RESULT),ADDRESSOF(x),SIZEOF(LONGCOMPLEX),GenericLoopLZ,op);
  8824. RETURN RESULT;
  8825. END "ALL";
  8826. BEGIN
  8827. alloc := 0; SetDefaults(); InitOptimization(); (* CreateTypePool; *)
  8828. END FoxArrayBase.
  8829. Compiler.Compile FoxArrayBase.Mod ~
  8830. SystemTools.ListModules