Kernel.txt 58 KB

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  1. MODULE Kernel;
  2. (* THIS IS TEXT COPY OF Kernel.odc *)
  3. (* DO NOT EDIT *)
  4. (* A. V. Shiryaev, 2012.09
  5. OpenBSD Kernel
  6. Based on 1.6-rc6 Windows Kernel
  7. + 20120822 Marc changes
  8. Some parts taken from OpenBUGS linKernel
  9. Most Windows-specific code removed
  10. Some Windows-specific code commented and marked red
  11. Windows COM-specific code re-marked from green to gray
  12. OpenBSD(/Linux)-specific code marked green
  13. TODO:
  14. IsReadable
  15. correct cmdLine
  16. *)
  17. IMPORT S := SYSTEM, Libc := LinLibc, Dl := LinDl;
  18. CONST
  19. strictStackSweep = TRUE;
  20. nameLen* = 256;
  21. littleEndian* = TRUE;
  22. timeResolution* = 1000; (* ticks per second *)
  23. processor* = 10; (* i386 *)
  24. objType* = "ocf"; (* file types *)
  25. symType* = "osf";
  26. docType* = "odc";
  27. (* loader constants *)
  28. done* = 0;
  29. fileNotFound* = 1;
  30. syntaxError* = 2;
  31. objNotFound* = 3;
  32. illegalFPrint* = 4;
  33. cyclicImport* = 5;
  34. noMem* = 6;
  35. commNotFound* = 7;
  36. commSyntaxError* = 8;
  37. moduleNotFound* = 9;
  38. any = 1000000;
  39. CX = 1;
  40. SP = 4; (* register number of stack pointer *)
  41. FP = 5; (* register number of frame pointer *)
  42. ML = 3; (* register which holds the module list at program start *)
  43. N = 128 DIV 16; (* free lists *)
  44. (* kernel flags in module desc *)
  45. init = 16; dyn = 17; dll = 24; iptrs = 30;
  46. (* meta interface consts *)
  47. mConst = 1; mTyp = 2; mVar = 3; mProc = 4; mField = 5;
  48. debug = FALSE;
  49. trapReturn = 1; (* Return value for sigsetjmp given from siglongjmp *)
  50. (* constants for the message boxes *)
  51. mbClose* = -1; mbOk* = 0; mbCancel* =1; mbRetry* = 2; mbIgnore* = 3; mbYes* = 4; mbNo* = 5;
  52. TYPE
  53. Name* = ARRAY nameLen OF SHORTCHAR;
  54. Command* = PROCEDURE;
  55. Module* = POINTER TO RECORD [untagged]
  56. next-: Module;
  57. opts-: SET; (* 0..15: compiler opts, 16..31: kernel flags *)
  58. refcnt-: INTEGER; (* <0: module invalidated *)
  59. compTime-, loadTime-: ARRAY 6 OF SHORTINT;
  60. ext-: INTEGER; (* currently not used *)
  61. term-: Command; (* terminator *)
  62. nofimps-, nofptrs-: INTEGER;
  63. csize-, dsize-, rsize-: INTEGER;
  64. code-, data-, refs-: INTEGER;
  65. procBase-, varBase-: INTEGER; (* meta base addresses *)
  66. names-: POINTER TO ARRAY [untagged] OF SHORTCHAR; (* names[0] = 0X *)
  67. ptrs-: POINTER TO ARRAY [untagged] OF INTEGER;
  68. imports-: POINTER TO ARRAY [untagged] OF Module;
  69. export-: Directory; (* exported objects (name sorted) *)
  70. name-: Name
  71. END;
  72. Type* = POINTER TO RECORD [untagged]
  73. (* record: ptr to method n at offset - 4 * (n+1) *)
  74. size-: INTEGER; (* record: size, array: #elem, dyn array: 0, proc: sigfp *)
  75. mod-: Module;
  76. id-: INTEGER; (* name idx * 256 + lev * 16 + attr * 4 + form *)
  77. base-: ARRAY 16 OF Type; (* signature if form = ProcTyp *)
  78. fields-: Directory; (* new fields (declaration order) *)
  79. ptroffs-: ARRAY any OF INTEGER (* array of any length *)
  80. END;
  81. Object* = POINTER TO ObjDesc;
  82. ObjDesc* = RECORD [untagged]
  83. fprint-: INTEGER;
  84. offs-: INTEGER; (* pvfprint for record types *)
  85. id-: INTEGER; (* name idx * 256 + vis * 16 + mode *)
  86. struct-: Type (* id of basic type or pointer to typedesc/signature *)
  87. END;
  88. Directory* = POINTER TO RECORD [untagged]
  89. num-: INTEGER; (* number of entries *)
  90. obj-: ARRAY any OF ObjDesc (* array of any length *)
  91. END;
  92. Signature* = POINTER TO RECORD [untagged]
  93. retStruct-: Type; (* id of basic type or pointer to typedesc or 0 *)
  94. num-: INTEGER; (* number of parameters *)
  95. par-: ARRAY any OF RECORD [untagged] (* parameters *)
  96. id-: INTEGER; (* name idx * 256 + kind *)
  97. struct-: Type (* id of basic type or pointer to typedesc *)
  98. END
  99. END;
  100. Handler* = PROCEDURE;
  101. Reducer* = POINTER TO ABSTRACT RECORD
  102. next: Reducer
  103. END;
  104. Identifier* = ABSTRACT RECORD
  105. typ*: INTEGER;
  106. obj-: ANYPTR
  107. END;
  108. TrapCleaner* = POINTER TO ABSTRACT RECORD
  109. next: TrapCleaner
  110. END;
  111. TryHandler* = PROCEDURE (a, b, c: INTEGER);
  112. (* meta extension suport *)
  113. ItemExt* = POINTER TO ABSTRACT RECORD END;
  114. ItemAttr* = RECORD
  115. obj*, vis*, typ*, adr*: INTEGER;
  116. mod*: Module;
  117. desc*: Type;
  118. ptr*: S.PTR;
  119. ext*: ItemExt
  120. END;
  121. Hook* = POINTER TO ABSTRACT RECORD END;
  122. LoaderHook* = POINTER TO ABSTRACT RECORD (Hook)
  123. res*: INTEGER;
  124. importing*, imported*, object*: ARRAY 256 OF CHAR
  125. END;
  126. GuiHook* = POINTER TO ABSTRACT RECORD (Hook) END; (* Implemented by HostGnome *)
  127. Block = POINTER TO RECORD [untagged]
  128. tag: Type;
  129. last: INTEGER; (* arrays: last element *)
  130. actual: INTEGER; (* arrays: used during mark phase *)
  131. first: INTEGER (* arrays: first element *)
  132. END;
  133. FreeBlock = POINTER TO FreeDesc;
  134. FreeDesc = RECORD [untagged]
  135. tag: Type; (* f.tag = ADR(f.size) *)
  136. size: INTEGER;
  137. next: FreeBlock
  138. END;
  139. Cluster = POINTER TO RECORD [untagged]
  140. size: INTEGER; (* total size *)
  141. next: Cluster;
  142. max: INTEGER
  143. (* start of first block *)
  144. END;
  145. FList = POINTER TO RECORD
  146. next: FList;
  147. blk: Block;
  148. iptr, aiptr: BOOLEAN
  149. END;
  150. CList = POINTER TO RECORD
  151. next: CList;
  152. do: Command;
  153. trapped: BOOLEAN
  154. END;
  155. PtrType = RECORD v: S.PTR END; (* used for array of pointer *)
  156. Char8Type = RECORD v: SHORTCHAR END;
  157. Char16Type = RECORD v: CHAR END;
  158. Int8Type = RECORD v: BYTE END;
  159. Int16Type = RECORD v: SHORTINT END;
  160. Int32Type = RECORD v: INTEGER END;
  161. Int64Type = RECORD v: LONGINT END;
  162. BoolType = RECORD v: BOOLEAN END;
  163. SetType = RECORD v: SET END;
  164. Real32Type = RECORD v: SHORTREAL END;
  165. Real64Type = RECORD v: REAL END;
  166. ProcType = RECORD v: PROCEDURE END;
  167. UPtrType = RECORD v: INTEGER END;
  168. StrPtr = POINTER TO ARRAY [untagged] OF SHORTCHAR;
  169. (* Linux specific boot loader info. Record must be identical to struct in the loader. *)
  170. BootInfo* = POINTER TO RECORD [untagged]
  171. modList: Module;
  172. argc-: INTEGER;
  173. argv-: Libc.StrArray
  174. END;
  175. VAR
  176. baseStack: INTEGER; (* modList, root, and baseStack must be together for remote debugging *)
  177. root: Cluster; (* cluster list *)
  178. modList-: Module; (* root of module list *)
  179. trapCount-: INTEGER;
  180. err-, pc-, sp-, fp-, stack-, val-: INTEGER;
  181. free: ARRAY N OF FreeBlock; (* free list *)
  182. sentinelBlock: FreeDesc;
  183. sentinel: FreeBlock;
  184. candidates: ARRAY 1024 OF INTEGER;
  185. nofcand: INTEGER;
  186. allocated: INTEGER; (* bytes allocated on BlackBox heap *)
  187. total: INTEGER; (* current total size of BlackBox heap *)
  188. used: INTEGER; (* bytes allocated on system heap *)
  189. finalizers: FList;
  190. hotFinalizers: FList;
  191. cleaners: CList;
  192. reducers: Reducer;
  193. trapStack: TrapCleaner;
  194. actual: Module; (* valid during module initialization *)
  195. res: INTEGER; (* auxiliary global variables used for trap handling *)
  196. old: INTEGER;
  197. trapViewer, trapChecker: Handler;
  198. trapped, guarded, secondTrap: BOOLEAN;
  199. interrupted: BOOLEAN;
  200. static, inDll, terminating: BOOLEAN;
  201. restart: Command;
  202. told, shift: INTEGER; (* used in Time() *)
  203. loader: LoaderHook;
  204. loadres: INTEGER;
  205. wouldFinalize: BOOLEAN;
  206. watcher*: PROCEDURE (event: INTEGER); (* for debugging *)
  207. loopContext: Libc.sigjmp_buf; (* trap return context, if no Kernel.Try has been used. *)
  208. currentTryContext: POINTER TO Libc.sigjmp_buf; (* trap return context, if Kernel.Try has been used. *)
  209. guiHook: GuiHook;
  210. cmdLine-: ARRAY 1024 OF CHAR;
  211. (* !!! This variable has to be the last variable in the list. !!! *)
  212. bootInfo-: BootInfo;
  213. (* code procedures for fpu *)
  214. PROCEDURE [1] FINIT 0DBH, 0E3H;
  215. PROCEDURE [1] FLDCW 0D9H, 06DH, 0FCH; (* -4, FP *)
  216. PROCEDURE [1] FSTCW 0D9H, 07DH, 0FCH; (* -4, FP *)
  217. (* code procedure for memory erase *)
  218. PROCEDURE [code] Erase (adr, words: INTEGER)
  219. 089H, 0C7H, (* MOV EDI, EAX *)
  220. 031H, 0C0H, (* XOR EAX, EAX *)
  221. 059H, (* POP ECX *)
  222. 0F2H, 0ABH; (* REP STOS *)
  223. (* code procedure for stack allocate *)
  224. PROCEDURE [code] ALLOC (* argument in CX *)
  225. (*
  226. PUSH EAX
  227. ADD ECX,-5
  228. JNS L0
  229. XOR ECX,ECX
  230. L0: AND ECX,-4 (n-8+3)/4*4
  231. MOV EAX,ECX
  232. AND EAX,4095
  233. SUB ESP,EAX
  234. MOV EAX,ECX
  235. SHR EAX,12
  236. JEQ L2
  237. L1: PUSH 0
  238. SUB ESP,4092
  239. DEC EAX
  240. JNE L1
  241. L2: ADD ECX,8
  242. MOV EAX,[ESP,ECX,-4]
  243. PUSH EAX
  244. MOV EAX,[ESP,ECX,-4]
  245. SHR ECX,2
  246. RET
  247. *);
  248. PROCEDURE (VAR id: Identifier) Identified* (): BOOLEAN, NEW, ABSTRACT;
  249. PROCEDURE (r: Reducer) Reduce* (full: BOOLEAN), NEW, ABSTRACT;
  250. PROCEDURE (c: TrapCleaner) Cleanup*, NEW, EMPTY;
  251. (* meta extension suport *)
  252. PROCEDURE (e: ItemExt) Lookup* (name: ARRAY OF CHAR; VAR i: ANYREC), NEW, ABSTRACT;
  253. PROCEDURE (e: ItemExt) Index* (index: INTEGER; VAR elem: ANYREC), NEW, ABSTRACT;
  254. PROCEDURE (e: ItemExt) Deref* (VAR ref: ANYREC), NEW, ABSTRACT;
  255. PROCEDURE (e: ItemExt) Valid* (): BOOLEAN, NEW, ABSTRACT;
  256. PROCEDURE (e: ItemExt) Size* (): INTEGER, NEW, ABSTRACT;
  257. PROCEDURE (e: ItemExt) BaseTyp* (): INTEGER, NEW, ABSTRACT;
  258. PROCEDURE (e: ItemExt) Len* (): INTEGER, NEW, ABSTRACT;
  259. PROCEDURE (e: ItemExt) Call* (OUT ok: BOOLEAN), NEW, ABSTRACT;
  260. PROCEDURE (e: ItemExt) BoolVal* (): BOOLEAN, NEW, ABSTRACT;
  261. PROCEDURE (e: ItemExt) PutBoolVal* (x: BOOLEAN), NEW, ABSTRACT;
  262. PROCEDURE (e: ItemExt) CharVal* (): CHAR, NEW, ABSTRACT;
  263. PROCEDURE (e: ItemExt) PutCharVal* (x: CHAR), NEW, ABSTRACT;
  264. PROCEDURE (e: ItemExt) IntVal* (): INTEGER, NEW, ABSTRACT;
  265. PROCEDURE (e: ItemExt) PutIntVal* (x: INTEGER), NEW, ABSTRACT;
  266. PROCEDURE (e: ItemExt) LongVal* (): LONGINT, NEW, ABSTRACT;
  267. PROCEDURE (e: ItemExt) PutLongVal* (x: LONGINT), NEW, ABSTRACT;
  268. PROCEDURE (e: ItemExt) RealVal* (): REAL, NEW, ABSTRACT;
  269. PROCEDURE (e: ItemExt) PutRealVal* (x: REAL), NEW, ABSTRACT;
  270. PROCEDURE (e: ItemExt) SetVal* (): SET, NEW, ABSTRACT;
  271. PROCEDURE (e: ItemExt) PutSetVal* (x: SET), NEW, ABSTRACT;
  272. PROCEDURE (e: ItemExt) PtrVal* (): ANYPTR, NEW, ABSTRACT;
  273. PROCEDURE (e: ItemExt) PutPtrVal* (x: ANYPTR), NEW, ABSTRACT;
  274. PROCEDURE (e: ItemExt) GetSStringVal* (OUT x: ARRAY OF SHORTCHAR;
  275. OUT ok: BOOLEAN), NEW, ABSTRACT;
  276. PROCEDURE (e: ItemExt) PutSStringVal* (IN x: ARRAY OF SHORTCHAR;
  277. OUT ok: BOOLEAN), NEW, ABSTRACT;
  278. PROCEDURE (e: ItemExt) GetStringVal* (OUT x: ARRAY OF CHAR; OUT ok: BOOLEAN), NEW, ABSTRACT;
  279. PROCEDURE (e: ItemExt) PutStringVal* (IN x: ARRAY OF CHAR; OUT ok: BOOLEAN), NEW, ABSTRACT;
  280. (* -------------------- miscellaneous tools -------------------- *)
  281. PROCEDURE Msg (IN str: ARRAY OF CHAR);
  282. VAR ss: ARRAY 1024 OF SHORTCHAR; res, l: INTEGER;
  283. BEGIN
  284. ss := SHORT(str);
  285. l := LEN(ss$);
  286. ss[l] := 0AX; ss[l + 1] := 0X;
  287. res := Libc.printf(ss)
  288. END Msg;
  289. PROCEDURE Int (x: LONGINT);
  290. VAR j, k: INTEGER; ch: CHAR; a, s: ARRAY 32 OF CHAR;
  291. BEGIN
  292. IF x # MIN(LONGINT) THEN
  293. IF x < 0 THEN s[0] := "-"; k := 1; x := -x ELSE k := 0 END;
  294. j := 0; REPEAT a[j] := CHR(x MOD 10 + ORD("0")); x := x DIV 10; INC(j) UNTIL x = 0
  295. ELSE
  296. a := "8085774586302733229"; s[0] := "-"; k := 1;
  297. j := 0; WHILE a[j] # 0X DO INC(j) END
  298. END;
  299. ASSERT(k + j < LEN(s), 20);
  300. REPEAT DEC(j); ch := a[j]; s[k] := ch; INC(k) UNTIL j = 0;
  301. s[k] := 0X;
  302. Msg(s);
  303. END Int;
  304. PROCEDURE (h: GuiHook) MessageBox* (
  305. title, msg: ARRAY OF CHAR; buttons: SET): INTEGER, NEW, ABSTRACT;
  306. PROCEDURE (h: GuiHook) Beep*, NEW, ABSTRACT;
  307. (* Is extended by HostGnome to show dialogs. If no dialog is present or
  308. if the dialog is not closed by using one button, then "mbClose" is returned *)
  309. PROCEDURE MessageBox* (title, msg: ARRAY OF CHAR; buttons: SET): INTEGER;
  310. VAR res: INTEGER;
  311. BEGIN
  312. IF guiHook # NIL THEN
  313. res := guiHook.MessageBox(title, msg, buttons)
  314. ELSE
  315. Msg(" ");
  316. Msg("****");
  317. Msg("* " + title);
  318. Msg("* " + msg);
  319. Msg("****");
  320. res := mbClose;
  321. END;
  322. RETURN res
  323. END MessageBox;
  324. PROCEDURE SetGuiHook* (hook: GuiHook);
  325. BEGIN
  326. guiHook := hook
  327. END SetGuiHook;
  328. PROCEDURE SplitName* (name: ARRAY OF CHAR; VAR head, tail: ARRAY OF CHAR);
  329. (* portable *)
  330. VAR i, j: INTEGER; ch, lch: CHAR;
  331. BEGIN
  332. i := 0; ch := name[0];
  333. IF ch # 0X THEN
  334. REPEAT
  335. head[i] := ch; lch := ch; INC(i); ch := name[i]
  336. UNTIL (ch = 0X)
  337. OR ((ch >= "A") & (ch <= "Z") OR (ch >= "À") & (ch # "×") & (ch <= "Þ"))
  338. & ((lch < "A") OR (lch > "Z") & (lch < "À") OR (lch = "×") OR (lch > "Þ"));
  339. head[i] := 0X; j := 0;
  340. WHILE ch # 0X DO tail[j] := ch; INC(i); INC(j); ch := name[i] END;
  341. tail[j] := 0X;
  342. IF tail = "" THEN tail := head$; head := "" END
  343. ELSE head := ""; tail := ""
  344. END
  345. END SplitName;
  346. PROCEDURE MakeFileName* (VAR name: ARRAY OF CHAR; type: ARRAY OF CHAR);
  347. VAR i, j: INTEGER; ext: ARRAY 8 OF CHAR; ch: CHAR;
  348. BEGIN
  349. i := 0;
  350. WHILE (name[i] # 0X) & (name[i] # ".") DO INC(i) END;
  351. IF name[i] = "." THEN
  352. IF name[i + 1] = 0X THEN name[i] := 0X END
  353. ELSIF i < LEN(name) - 4 THEN
  354. IF type = "" THEN ext := docType ELSE ext := type$ END;
  355. name[i] := "."; INC(i); j := 0; ch := ext[0];
  356. WHILE ch # 0X DO
  357. IF (ch >= "A") & (ch <= "Z") THEN
  358. ch := CHR(ORD(ch) + ORD("a") - ORD("A"))
  359. END;
  360. name[i] := ch; INC(i); INC(j); ch := ext[j]
  361. END;
  362. name[i] := 0X
  363. END
  364. END MakeFileName;
  365. PROCEDURE Time* (): LONGINT;
  366. VAR t: INTEGER;
  367. BEGIN
  368. (* t := WinApi.GetTickCount(); *)
  369. (* A. V. Shiryaev: OpenBSD *)
  370. ASSERT(Libc.CLOCKS_PER_SEC = 100);
  371. t := 10 * Libc.clock();
  372. IF t < told THEN INC(shift) END;
  373. told := t;
  374. RETURN shift * 100000000L + t
  375. END Time;
  376. PROCEDURE Beep* ();
  377. VAR ss: ARRAY 2 OF SHORTCHAR;
  378. BEGIN
  379. IF guiHook # NIL THEN
  380. guiHook.Beep
  381. ELSE
  382. ss[0] := 007X; ss[1] := 0X;
  383. res := Libc.printf(ss); res := Libc.fflush(Libc.NULL)
  384. END
  385. END Beep;
  386. PROCEDURE SearchProcVar* (var: INTEGER; VAR m: Module; VAR adr: INTEGER);
  387. BEGIN
  388. adr := var; m := NIL;
  389. IF var # 0 THEN
  390. m := modList;
  391. WHILE (m # NIL) & ((var < m.code) OR (var >= m.code + m.csize)) DO m := m.next END;
  392. IF m # NIL THEN DEC(adr, m.code) END
  393. END
  394. END SearchProcVar;
  395. (* -------------------- system memory management --------------------- *)
  396. (* A. V. Shiryaev, 2012.09: NOTE: it seems that GC works correctly with positive addesses only *)
  397. PROCEDURE BZero4 (adr: Libc.PtrVoid; len: INTEGER);
  398. BEGIN
  399. ASSERT(adr MOD 4 = 0, 20);
  400. ASSERT(len MOD 4 = 0, 21);
  401. len := len DIV 4;
  402. WHILE len > 0 DO
  403. S.PUT(adr, 0);
  404. INC(adr, 4);
  405. DEC(len)
  406. END
  407. END BZero4;
  408. (*
  409. PROCEDURE HeapAlloc (adr: INTEGER; size: INTEGER; prot: SET): Libc.PtrVoid;
  410. VAR
  411. x: Libc.PtrVoid;
  412. res: INTEGER;
  413. BEGIN
  414. x := Libc.calloc(1, size); (* calloc initialize allocated space to zero *)
  415. IF x # Libc.NULL THEN
  416. res := Libc.mprotect(x, size, prot);
  417. IF res # 0 THEN
  418. Libc.free(x);
  419. x := Libc.NULL;
  420. Msg("Kernel.HeapAlloc: mprotect failed!");
  421. HALT(100)
  422. END
  423. END;
  424. RETURN x
  425. END HeapAlloc;
  426. *)
  427. PROCEDURE HeapAlloc (adr: Libc.PtrVoid; size: INTEGER; prot: SET): Libc.PtrVoid;
  428. VAR x: Libc.PtrVoid;
  429. BEGIN
  430. x := Libc.mmap(adr, size, prot, Libc.MAP_PRIVATE + Libc.MAP_ANON, -1, 0);
  431. IF x = Libc.MAP_FAILED THEN
  432. x := Libc.NULL
  433. ELSE
  434. BZero4(x, size)
  435. END;
  436. RETURN x
  437. END HeapAlloc;
  438. (*
  439. PROCEDURE HeapFree (adr: Libc.PtrVoid; size: INTEGER);
  440. VAR res: INTEGER;
  441. BEGIN
  442. (*
  443. BZero4(adr, size);
  444. res := Libc.mprotect(adr, size, Libc.PROT_NONE);
  445. ASSERT(res = 0, 100);
  446. *)
  447. Libc.free(adr)
  448. END HeapFree;
  449. *)
  450. PROCEDURE HeapFree (adr: Libc.PtrVoid; size: INTEGER);
  451. VAR res: INTEGER;
  452. BEGIN
  453. (*
  454. BZero4(adr, size);
  455. res := Libc.mprotect(adr, size, Libc.PROT_NONE);
  456. ASSERT(res = 0, 100);
  457. *)
  458. res := Libc.munmap(adr, size);
  459. ASSERT(res = 0, 101)
  460. END HeapFree;
  461. PROCEDURE AllocHeapMem (size: INTEGER; VAR c: Cluster);
  462. (* allocate at least size bytes, typically at least 256 kbytes are allocated *)
  463. CONST N = 65536; (* cluster size for dll *)
  464. prot = Libc.PROT_READ + Libc.PROT_WRITE (* + Libc.PROT_EXEC *);
  465. VAR adr: INTEGER;
  466. allocated: INTEGER;
  467. BEGIN
  468. INC(size, 16);
  469. ASSERT(size > 0, 100); adr := 0;
  470. IF size < N THEN adr := HeapAlloc(1, N, prot) END;
  471. IF adr = 0 THEN adr := HeapAlloc(1, size, prot); allocated := size ELSE allocated := N END;
  472. IF adr = 0 THEN c := NIL
  473. ELSE
  474. c := S.VAL(Cluster, (adr + 15) DIV 16 * 16); c.max := adr;
  475. c.size := allocated - (S.VAL(INTEGER, c) - adr);
  476. INC(used, c.size); INC(total, c.size)
  477. END
  478. (* post: (c = NIL) OR (c MOD 16 = 0) & (c.size >= size) *)
  479. END AllocHeapMem;
  480. PROCEDURE FreeHeapMem (c: Cluster);
  481. BEGIN
  482. DEC(used, c.size); DEC(total, c.size);
  483. HeapFree(c.max, (S.VAL(INTEGER, c) - c.max) + c.size)
  484. END FreeHeapMem;
  485. PROCEDURE AllocModMem* (descSize, modSize: INTEGER; VAR descAdr, modAdr: INTEGER);
  486. CONST
  487. prot = Libc.PROT_READ + Libc.PROT_WRITE (* + Libc.PROT_EXEC *);
  488. BEGIN
  489. descAdr := HeapAlloc(0, descSize, prot);
  490. IF descAdr # 0 THEN
  491. modAdr := HeapAlloc(0, modSize, prot);
  492. IF modAdr # 0 THEN INC(used, descSize + modSize)
  493. ELSE HeapFree(descAdr, descSize); descAdr := 0
  494. END
  495. ELSE modAdr := 0
  496. END
  497. END AllocModMem;
  498. PROCEDURE DeallocModMem* (descSize, modSize, descAdr, modAdr: INTEGER);
  499. BEGIN
  500. DEC(used, descSize + modSize);
  501. HeapFree(descAdr, descSize);
  502. HeapFree(modAdr, modSize)
  503. END DeallocModMem;
  504. PROCEDURE InvalModMem (modSize, modAdr: INTEGER);
  505. BEGIN
  506. DEC(used, modSize);
  507. HeapFree(modAdr, modSize)
  508. END InvalModMem;
  509. (*
  510. PROCEDURE IsReadable* (from, to: INTEGER): BOOLEAN;
  511. (* check wether memory between from (incl.) and to (excl.) may be read *)
  512. BEGIN
  513. RETURN WinApi.IsBadReadPtr(from, to - from) = 0
  514. END IsReadable;
  515. *)
  516. (* NOTE:
  517. TRUE result DOES NOT GUARANTEE what mem region is REALLY accessible! (implementation limit) *)
  518. PROCEDURE IsReadable* (from, to: INTEGER): BOOLEAN;
  519. (* check wether memory between from (incl.) and to (excl.) may be read *)
  520. VAR nullfd: INTEGER;
  521. res1, errno: INTEGER;
  522. res: BOOLEAN;
  523. BEGIN
  524. ASSERT(from < to, 20);
  525. res := FALSE;
  526. nullfd := Libc.open("/dev/null", Libc.O_WRONLY, {});
  527. IF nullfd >= 0 THEN
  528. res1 := Libc.write(nullfd, from, to - from);
  529. IF res1 = -1 THEN
  530. S.GET(Libc.__errno_location(), errno);
  531. IF errno = Libc.EFAULT THEN
  532. res := FALSE
  533. ELSE
  534. HALT(101)
  535. END
  536. ELSE ASSERT(res1 = to - from);
  537. res := TRUE
  538. END;
  539. res1 := Libc.close(nullfd)
  540. ELSE ASSERT(nullfd = -1);
  541. HALT(100)
  542. END;
  543. RETURN res
  544. END IsReadable;
  545. (* --------------------- NEW implementation (portable) -------------------- *)
  546. PROCEDURE^ NewBlock (size: INTEGER): Block;
  547. PROCEDURE NewRec* (typ: INTEGER): INTEGER; (* implementation of NEW(ptr) *)
  548. VAR size: INTEGER; b: Block; tag: Type; l: FList;
  549. BEGIN
  550. IF ODD(typ) THEN (* record contains interface pointers *)
  551. tag := S.VAL(Type, typ - 1);
  552. b := NewBlock(tag.size);
  553. IF b = NIL THEN RETURN 0 END;
  554. b.tag := tag;
  555. l := S.VAL(FList, S.ADR(b.last)); (* anchor new object! *)
  556. l := S.VAL(FList, NewRec(S.TYP(FList))); (* NEW(l) *)
  557. l.blk := b; l.iptr := TRUE; l.next := finalizers; finalizers := l;
  558. RETURN S.ADR(b.last)
  559. ELSE
  560. tag := S.VAL(Type, typ);
  561. b := NewBlock(tag.size);
  562. IF b = NIL THEN RETURN 0 END;
  563. b.tag := tag; S.GET(typ - 4, size);
  564. IF size # 0 THEN (* record uses a finalizer *)
  565. l := S.VAL(FList, S.ADR(b.last)); (* anchor new object! *)
  566. l := S.VAL(FList, NewRec(S.TYP(FList))); (* NEW(l) *)
  567. l.blk := b; l.next := finalizers; finalizers := l
  568. END;
  569. RETURN S.ADR(b.last)
  570. END
  571. END NewRec;
  572. PROCEDURE NewArr* (eltyp, nofelem, nofdim: INTEGER): INTEGER; (* impl. of NEW(ptr, dim0, dim1, ...) *)
  573. VAR b: Block; size, headSize: INTEGER; t: Type; fin: BOOLEAN; l: FList;
  574. BEGIN
  575. IF (nofdim < 0)OR(nofdim>1FFFFFFCH) THEN RETURN 0 END;(*20120822 Marc*)
  576. headSize := 4 * nofdim + 12; fin := FALSE;
  577. CASE eltyp OF
  578. (*
  579. | -1: eltyp := S.ADR(IntPtrType); fin := TRUE
  580. *)
  581. | -1: HALT(100)
  582. | 0: eltyp := S.ADR(PtrType)
  583. | 1: eltyp := S.ADR(Char8Type)
  584. | 2: eltyp := S.ADR(Int16Type)
  585. | 3: eltyp := S.ADR(Int8Type)
  586. | 4: eltyp := S.ADR(Int32Type)
  587. | 5: eltyp := S.ADR(BoolType)
  588. | 6: eltyp := S.ADR(SetType)
  589. | 7: eltyp := S.ADR(Real32Type)
  590. | 8: eltyp := S.ADR(Real64Type)
  591. | 9: eltyp := S.ADR(Char16Type)
  592. | 10: eltyp := S.ADR(Int64Type)
  593. | 11: eltyp := S.ADR(ProcType)
  594. | 12: eltyp := S.ADR(UPtrType)
  595. ELSE (* eltyp is desc *)
  596. IF ODD(eltyp) THEN DEC(eltyp); fin := TRUE END
  597. END;
  598. t := S.VAL(Type, eltyp);
  599. ASSERT(t .size> 0,100);
  600. IF (nofelem < 0) OR( (7FFFFFFFH-headSize) DIV t.size < nofelem) THEN (* 20120822 Marc*)
  601. RETURN 0
  602. END;
  603. size := headSize + nofelem * t.size;
  604. b := NewBlock(size);
  605. IF b = NIL THEN RETURN 0 END;
  606. b.tag := S.VAL(Type, eltyp + 2); (* tag + array mark *)
  607. b.last := S.ADR(b.last) + size - t.size; (* pointer to last elem *)
  608. b.first := S.ADR(b.last) + headSize; (* pointer to first elem *)
  609. IF fin THEN
  610. l := S.VAL(FList, S.ADR(b.last)); (* anchor new object! *)
  611. l := S.VAL(FList, NewRec(S.TYP(FList))); (* NEW(l) *)
  612. l.blk := b; l.aiptr := TRUE; l.next := finalizers; finalizers := l
  613. END;
  614. RETURN S.ADR(b.last)
  615. END NewArr;
  616. (* -------------------- handler installation (portable) --------------------- *)
  617. PROCEDURE ThisFinObj* (VAR id: Identifier): ANYPTR;
  618. VAR l: FList;
  619. BEGIN
  620. ASSERT(id.typ # 0, 100);
  621. l := finalizers;
  622. WHILE l # NIL DO
  623. IF S.VAL(INTEGER, l.blk.tag) = id.typ THEN
  624. id.obj := S.VAL(ANYPTR, S.ADR(l.blk.last));
  625. IF id.Identified() THEN RETURN id.obj END
  626. END;
  627. l := l.next
  628. END;
  629. RETURN NIL
  630. END ThisFinObj;
  631. PROCEDURE InstallReducer* (r: Reducer);
  632. BEGIN
  633. r.next := reducers; reducers := r
  634. END InstallReducer;
  635. PROCEDURE InstallTrapViewer* (h: Handler);
  636. BEGIN
  637. trapViewer := h
  638. END InstallTrapViewer;
  639. PROCEDURE InstallTrapChecker* (h: Handler);
  640. BEGIN
  641. trapChecker := h
  642. END InstallTrapChecker;
  643. PROCEDURE PushTrapCleaner* (c: TrapCleaner);
  644. VAR t: TrapCleaner;
  645. BEGIN
  646. t := trapStack; WHILE (t # NIL) & (t # c) DO t := t.next END;
  647. ASSERT(t = NIL, 20);
  648. c.next := trapStack; trapStack := c
  649. END PushTrapCleaner;
  650. PROCEDURE PopTrapCleaner* (c: TrapCleaner);
  651. VAR t: TrapCleaner;
  652. BEGIN
  653. t := NIL;
  654. WHILE (trapStack # NIL) & (t # c) DO
  655. t := trapStack; trapStack := trapStack.next
  656. END
  657. END PopTrapCleaner;
  658. PROCEDURE InstallCleaner* (p: Command);
  659. VAR c: CList;
  660. BEGIN
  661. c := S.VAL(CList, NewRec(S.TYP(CList))); (* NEW(c) *)
  662. c.do := p; c.trapped := FALSE; c.next := cleaners; cleaners := c
  663. END InstallCleaner;
  664. PROCEDURE RemoveCleaner* (p: Command);
  665. VAR c0, c: CList;
  666. BEGIN
  667. c := cleaners; c0 := NIL;
  668. WHILE (c # NIL) & (c.do # p) DO c0 := c; c := c.next END;
  669. IF c # NIL THEN
  670. IF c0 = NIL THEN cleaners := cleaners.next ELSE c0.next := c.next END
  671. END
  672. END RemoveCleaner;
  673. PROCEDURE Cleanup*;
  674. VAR c, c0: CList;
  675. BEGIN
  676. c := cleaners; c0 := NIL;
  677. WHILE c # NIL DO
  678. IF ~c.trapped THEN
  679. c.trapped := TRUE; c.do; c.trapped := FALSE; c0 := c
  680. ELSE
  681. IF c0 = NIL THEN cleaners := cleaners.next
  682. ELSE c0.next := c.next
  683. END
  684. END;
  685. c := c.next
  686. END
  687. END Cleanup;
  688. (* -------------------- meta information (portable) --------------------- *)
  689. PROCEDURE (h: LoaderHook) ThisMod* (IN name: ARRAY OF SHORTCHAR): Module, NEW, ABSTRACT;
  690. PROCEDURE SetLoaderHook*(h: LoaderHook);
  691. BEGIN
  692. loader := h
  693. END SetLoaderHook;
  694. PROCEDURE InitModule (mod: Module); (* initialize linked modules *)
  695. VAR body: Command;
  696. res: INTEGER; errno: INTEGER;
  697. BEGIN
  698. IF ~(dyn IN mod.opts) & (mod.next # NIL) & ~(init IN mod.next.opts) THEN InitModule(mod.next) END;
  699. IF ~(init IN mod.opts) THEN
  700. body := S.VAL(Command, mod.code);
  701. INCL(mod.opts, init);
  702. actual := mod;
  703. (* A. V. Shiryaev: Allow execution on code pages *)
  704. res := Libc.mprotect(mod.code, mod.csize,
  705. Libc.PROT_READ + Libc.PROT_WRITE + Libc.PROT_EXEC);
  706. IF res = -1 THEN
  707. S.GET( Libc.__errno_location(), errno );
  708. Msg("ERROR: Kernel.InitModule: mprotect failed!");
  709. Msg(mod.name$); Int(mod.code); Int(mod.csize); Int(errno);
  710. HALT(100)
  711. ELSE ASSERT(res = 0)
  712. END;
  713. body(); actual := NIL
  714. END
  715. END InitModule;
  716. PROCEDURE ThisLoadedMod* (IN name: ARRAY OF SHORTCHAR): Module; (* loaded modules only *)
  717. VAR m: Module;
  718. BEGIN
  719. loadres := done;
  720. m := modList;
  721. WHILE (m # NIL) & ((m.name # name) OR (m.refcnt < 0)) DO m := m.next END;
  722. IF (m # NIL) & ~(init IN m.opts) THEN InitModule(m) END;
  723. IF m = NIL THEN loadres := moduleNotFound END;
  724. RETURN m
  725. END ThisLoadedMod;
  726. PROCEDURE ThisMod* (IN name: ARRAY OF CHAR): Module;
  727. VAR n : Name;
  728. BEGIN
  729. n := SHORT(name$);
  730. IF loader # NIL THEN
  731. loader.res := done;
  732. RETURN loader.ThisMod(n)
  733. ELSE
  734. RETURN ThisLoadedMod(n)
  735. END
  736. END ThisMod;
  737. PROCEDURE LoadMod* (IN name: ARRAY OF CHAR);
  738. VAR m: Module;
  739. BEGIN
  740. m := ThisMod(name)
  741. END LoadMod;
  742. PROCEDURE GetLoaderResult* (OUT res: INTEGER; OUT importing, imported, object: ARRAY OF CHAR);
  743. BEGIN
  744. IF loader # NIL THEN
  745. res := loader.res;
  746. importing := loader.importing$;
  747. imported := loader.imported$;
  748. object := loader.object$
  749. ELSE
  750. res := loadres;
  751. importing := "";
  752. imported := "";
  753. object := ""
  754. END
  755. END GetLoaderResult;
  756. PROCEDURE ThisObject* (mod: Module; name: ARRAY OF SHORTCHAR): Object;
  757. VAR l, r, m: INTEGER; p: StrPtr;
  758. BEGIN
  759. l := 0; r := mod.export.num;
  760. WHILE l < r DO (* binary search *)
  761. m := (l + r) DIV 2;
  762. p := S.VAL(StrPtr, S.ADR(mod.names[mod.export.obj[m].id DIV 256]));
  763. IF p^ = name THEN RETURN S.VAL(Object, S.ADR(mod.export.obj[m])) END;
  764. IF p^ < name THEN l := m + 1 ELSE r := m END
  765. END;
  766. RETURN NIL
  767. END ThisObject;
  768. PROCEDURE ThisDesc* (mod: Module; fprint: INTEGER): Object;
  769. VAR i, n: INTEGER;
  770. BEGIN
  771. i := 0; n := mod.export.num;
  772. WHILE (i < n) & (mod.export.obj[i].id DIV 256 = 0) DO
  773. IF mod.export.obj[i].offs = fprint THEN RETURN S.VAL(Object, S.ADR(mod.export.obj[i])) END;
  774. INC(i)
  775. END;
  776. RETURN NIL
  777. END ThisDesc;
  778. PROCEDURE ThisField* (rec: Type; name: ARRAY OF SHORTCHAR): Object;
  779. VAR n: INTEGER; p: StrPtr; obj: Object; m: Module;
  780. BEGIN
  781. m := rec.mod;
  782. obj := S.VAL(Object, S.ADR(rec.fields.obj[0])); n := rec.fields.num;
  783. WHILE n > 0 DO
  784. p := S.VAL(StrPtr, S.ADR(m.names[obj.id DIV 256]));
  785. IF p^ = name THEN RETURN obj END;
  786. DEC(n); INC(S.VAL(INTEGER, obj), 16)
  787. END;
  788. RETURN NIL
  789. END ThisField;
  790. PROCEDURE ThisCommand* (mod: Module; name: ARRAY OF SHORTCHAR): Command;
  791. VAR x: Object; sig: Signature;
  792. BEGIN
  793. x := ThisObject(mod, name);
  794. IF (x # NIL) & (x.id MOD 16 = mProc) THEN
  795. sig := S.VAL(Signature, x.struct);
  796. IF (sig.retStruct = NIL) & (sig.num = 0) THEN RETURN S.VAL(Command, mod.procBase + x.offs) END
  797. END;
  798. RETURN NIL
  799. END ThisCommand;
  800. PROCEDURE ThisType* (mod: Module; name: ARRAY OF SHORTCHAR): Type;
  801. VAR x: Object;
  802. BEGIN
  803. x := ThisObject(mod, name);
  804. IF (x # NIL) & (x.id MOD 16 = mTyp) & (S.VAL(INTEGER, x.struct) DIV 256 # 0) THEN
  805. RETURN x.struct
  806. ELSE
  807. RETURN NIL
  808. END
  809. END ThisType;
  810. PROCEDURE TypeOf* (IN rec: ANYREC): Type;
  811. BEGIN
  812. RETURN S.VAL(Type, S.TYP(rec))
  813. END TypeOf;
  814. PROCEDURE LevelOf* (t: Type): SHORTINT;
  815. BEGIN
  816. RETURN SHORT(t.id DIV 16 MOD 16)
  817. END LevelOf;
  818. PROCEDURE NewObj* (VAR o: S.PTR; t: Type);
  819. VAR i: INTEGER;
  820. BEGIN
  821. IF t.size = -1 THEN o := NIL
  822. ELSE
  823. i := 0; WHILE t.ptroffs[i] >= 0 DO INC(i) END;
  824. IF t.ptroffs[i+1] >= 0 THEN INC(S.VAL(INTEGER, t)) END; (* with interface pointers *)
  825. o := S.VAL(S.PTR, NewRec(S.VAL(INTEGER, t))) (* generic NEW *)
  826. END
  827. END NewObj;
  828. PROCEDURE GetObjName* (mod: Module; obj: Object; VAR name: Name);
  829. VAR p: StrPtr;
  830. BEGIN
  831. p := S.VAL(StrPtr, S.ADR(mod.names[obj.id DIV 256]));
  832. name := p^$
  833. END GetObjName;
  834. PROCEDURE GetTypeName* (t: Type; VAR name: Name);
  835. VAR p: StrPtr;
  836. BEGIN
  837. p := S.VAL(StrPtr, S.ADR(t.mod.names[t.id DIV 256]));
  838. name := p^$
  839. END GetTypeName;
  840. PROCEDURE RegisterMod* (mod: Module);
  841. VAR i: INTEGER;
  842. t: Libc.time_t; tm: Libc.tm;
  843. BEGIN
  844. mod.next := modList; modList := mod; mod.refcnt := 0; INCL(mod.opts, dyn); i := 0;
  845. WHILE i < mod.nofimps DO
  846. IF mod.imports[i] # NIL THEN INC(mod.imports[i].refcnt) END;
  847. INC(i)
  848. END;
  849. t := Libc.time(NIL);
  850. tm := Libc.localtime(t);
  851. mod.loadTime[0] := SHORT(tm.tm_year + 1900); (* Linux counts years from 1900 but BlackBox from 0000 *)
  852. mod.loadTime[1] := SHORT(tm.tm_mon + 1) (* Linux month range 0-11 but BB month range 1-12 *);
  853. mod.loadTime[2] := SHORT(tm.tm_mday);
  854. mod.loadTime[3] := SHORT(tm.tm_hour);
  855. mod.loadTime[4] := SHORT(tm.tm_min);
  856. mod.loadTime[5] := SHORT(tm.tm_sec);
  857. tm := NIL;
  858. IF ~(init IN mod.opts) THEN InitModule(mod) END
  859. END RegisterMod;
  860. PROCEDURE^ Collect*;
  861. PROCEDURE UnloadMod* (mod: Module);
  862. VAR i: INTEGER; t: Command;
  863. BEGIN
  864. IF mod.refcnt = 0 THEN
  865. t := mod.term; mod.term := NIL;
  866. IF t # NIL THEN t() END; (* terminate module *)
  867. i := 0;
  868. WHILE i < mod.nofptrs DO (* release global pointers *)
  869. S.PUT(mod.varBase + mod.ptrs[i], 0); INC(i)
  870. END;
  871. (*
  872. ReleaseIPtrs(mod); (* release global interface pointers *)
  873. *)
  874. Collect; (* call finalizers *)
  875. i := 0;
  876. WHILE i < mod.nofimps DO (* release imported modules *)
  877. IF mod.imports[i] # NIL THEN DEC(mod.imports[i].refcnt) END;
  878. INC(i)
  879. END;
  880. mod.refcnt := -1;
  881. IF dyn IN mod.opts THEN (* release memory *)
  882. InvalModMem(mod.data + mod.dsize - mod.refs, mod.refs)
  883. END
  884. END
  885. END UnloadMod;
  886. (* -------------------- dynamic procedure call --------------------- *) (* COMPILER DEPENDENT *)
  887. PROCEDURE [1] PUSH (p: INTEGER) 050H; (* push AX *)
  888. PROCEDURE [1] CALL (a: INTEGER) 0FFH, 0D0H; (* call AX *)
  889. PROCEDURE [1] RETI (): LONGINT;
  890. PROCEDURE [1] RETR (): REAL;
  891. (*
  892. type par
  893. 32 bit scalar value
  894. 64 bit scalar low hi
  895. var scalar address
  896. record address tag
  897. array address size
  898. open array address length .. length
  899. *)
  900. PROCEDURE Call* (adr: INTEGER; sig: Signature; IN par: ARRAY OF INTEGER; n: INTEGER): LONGINT;
  901. VAR p, kind, sp, size: INTEGER; typ: Type; r: REAL;
  902. BEGIN
  903. p := sig.num;
  904. WHILE p > 0 DO (* push parameters from right to left *)
  905. DEC(p);
  906. typ := sig.par[p].struct;
  907. kind := sig.par[p].id MOD 16;
  908. IF (S.VAL(INTEGER, typ) DIV 256 = 0) OR (typ.id MOD 4 IN {0, 3}) THEN (* scalar *)
  909. IF (kind = 10) & ((S.VAL(INTEGER, typ) = 8) OR (S.VAL(INTEGER, typ) = 10)) THEN (* 64 bit *)
  910. DEC(n); PUSH(par[n]) (* push hi word *)
  911. END;
  912. DEC(n); PUSH(par[n]) (* push value/address *)
  913. ELSIF typ.id MOD 4 = 1 THEN (* record *)
  914. IF kind # 10 THEN (* var par *)
  915. DEC(n); PUSH(par[n]); (* push tag *)
  916. DEC(n); PUSH(par[n]) (* push address *)
  917. ELSE
  918. DEC(n, 2); (* skip tag *)
  919. S.GETREG(SP, sp); sp := (sp - typ.size) DIV 4 * 4; S.PUTREG(SP, sp); (* allocate space *)
  920. S.MOVE(par[n], sp, typ.size) (* copy to stack *)
  921. END
  922. ELSIF typ.size = 0 THEN (* open array *)
  923. size := typ.id DIV 16 MOD 16; (* number of open dimensions *)
  924. WHILE size > 0 DO
  925. DEC(size); DEC(n); PUSH(par[n]) (* push length *)
  926. END;
  927. DEC(n); PUSH(par[n]) (* push address *)
  928. ELSE (* fix array *)
  929. IF kind # 10 THEN (* var par *)
  930. DEC(n, 2); PUSH(par[n]) (* push address *)
  931. ELSE
  932. DEC(n); size := par[n]; DEC(n);
  933. S.GETREG(SP, sp); sp := (sp - size) DIV 4 * 4; S.PUTREG(SP, sp); (* allocate space *)
  934. S.MOVE(par[n], sp, size) (* copy to stack *)
  935. END
  936. END
  937. END;
  938. ASSERT(n = 0);
  939. IF S.VAL(INTEGER, sig.retStruct) = 7 THEN (* shortreal *)
  940. CALL(adr);
  941. RETURN S.VAL(INTEGER, SHORT(RETR())) (* return value in fpu register *)
  942. ELSIF S.VAL(INTEGER, sig.retStruct) = 8 THEN (* real *)
  943. CALL(adr); r := RETR();
  944. RETURN S.VAL(LONGINT, r) (* return value in fpu register *)
  945. ELSE
  946. CALL(adr);
  947. RETURN RETI() (* return value in integer registers *)
  948. END
  949. END Call;
  950. (* -------------------- reference information (portable) --------------------- *)
  951. PROCEDURE RefCh (VAR ref: INTEGER; VAR ch: SHORTCHAR);
  952. BEGIN
  953. S.GET(ref, ch); INC(ref)
  954. END RefCh;
  955. PROCEDURE RefNum (VAR ref: INTEGER; VAR x: INTEGER);
  956. VAR s, n: INTEGER; ch: SHORTCHAR;
  957. BEGIN
  958. s := 0; n := 0; RefCh(ref, ch);
  959. WHILE ORD(ch) >= 128 DO INC(n, ASH(ORD(ch) - 128, s) ); INC(s, 7); RefCh(ref, ch) END;
  960. x := n + ASH(ORD(ch) MOD 64 - ORD(ch) DIV 64 * 64, s)
  961. END RefNum;
  962. PROCEDURE RefName (VAR ref: INTEGER; VAR n: Name);
  963. VAR i: INTEGER; ch: SHORTCHAR;
  964. BEGIN
  965. i := 0; RefCh(ref, ch);
  966. WHILE ch # 0X DO n[i] := ch; INC(i); RefCh(ref, ch) END;
  967. n[i] := 0X
  968. END RefName;
  969. PROCEDURE GetRefProc* (VAR ref: INTEGER; VAR adr: INTEGER; VAR name: Name);
  970. VAR ch: SHORTCHAR;
  971. BEGIN
  972. S.GET(ref, ch);
  973. WHILE ch >= 0FDX DO (* skip variables *)
  974. INC(ref); RefCh(ref, ch);
  975. IF ch = 10X THEN INC(ref, 4) END;
  976. RefNum(ref, adr); RefName(ref, name); S.GET(ref, ch)
  977. END;
  978. WHILE (ch > 0X) & (ch < 0FCX) DO (* skip source refs *)
  979. INC(ref); RefNum(ref, adr); S.GET(ref, ch)
  980. END;
  981. IF ch = 0FCX THEN INC(ref); RefNum(ref, adr); RefName(ref, name)
  982. ELSE adr := 0
  983. END
  984. END GetRefProc;
  985. PROCEDURE GetRefVar* (VAR ref: INTEGER; VAR mode, form: SHORTCHAR; VAR desc: Type;
  986. VAR adr: INTEGER; VAR name: Name);
  987. BEGIN
  988. S.GET(ref, mode); desc := NIL;
  989. IF mode >= 0FDX THEN
  990. mode := SHORT(CHR(ORD(mode) - 0FCH));
  991. INC(ref); RefCh(ref, form);
  992. IF form = 10X THEN
  993. S.GET(ref, desc); INC(ref, 4); form := SHORT(CHR(16 + desc.id MOD 4))
  994. END;
  995. RefNum(ref, adr); RefName(ref, name)
  996. ELSE
  997. mode := 0X; form := 0X; adr := 0
  998. END
  999. END GetRefVar;
  1000. PROCEDURE SourcePos* (mod: Module; codePos: INTEGER): INTEGER;
  1001. VAR ref, pos, ad, d: INTEGER; ch: SHORTCHAR; name: Name;
  1002. BEGIN
  1003. ref := mod.refs; pos := 0; ad := 0; S.GET(ref, ch);
  1004. WHILE ch # 0X DO
  1005. WHILE (ch > 0X) & (ch < 0FCX) DO
  1006. INC(ad, ORD(ch)); INC(ref); RefNum(ref, d);
  1007. IF ad > codePos THEN RETURN pos END;
  1008. INC(pos, d); S.GET(ref, ch)
  1009. END;
  1010. IF ch = 0FCX THEN INC(ref); RefNum(ref, d); RefName(ref, name); S.GET(ref, ch) END;
  1011. WHILE ch >= 0FDX DO (* skip variables *)
  1012. INC(ref); RefCh(ref, ch);
  1013. IF ch = 10X THEN INC(ref, 4) END;
  1014. RefNum(ref, d); RefName(ref, name); S.GET(ref, ch)
  1015. END
  1016. END;
  1017. RETURN -1
  1018. END SourcePos;
  1019. (* -------------------- dynamic link libraries --------------------- *)
  1020. PROCEDURE LoadDll* (IN name: ARRAY OF SHORTCHAR; VAR ok: BOOLEAN);
  1021. VAR h: Dl.HANDLE;
  1022. BEGIN
  1023. ok := FALSE;
  1024. h := Dl.dlopen(name, Dl.RTLD_LAZY + Dl.RTLD_GLOBAL);
  1025. IF h # Dl.NULL THEN ok := TRUE END
  1026. END LoadDll;
  1027. PROCEDURE ThisDllObj* (mode, fprint: INTEGER; IN dll, name: ARRAY OF SHORTCHAR): INTEGER;
  1028. VAR ad: INTEGER; h: Dl.HANDLE;
  1029. BEGIN
  1030. ad := 0;
  1031. IF mode IN {mVar, mProc} THEN
  1032. h := Dl.dlopen(dll, Dl.RTLD_LAZY+ Dl.RTLD_GLOBAL);
  1033. IF h # Dl.NULL THEN
  1034. ad := Dl.dlsym(h, name);
  1035. END
  1036. END;
  1037. RETURN ad
  1038. END ThisDllObj;
  1039. (* -------------------- garbage collector (portable) --------------------- *)
  1040. PROCEDURE Mark (this: Block);
  1041. VAR father, son: Block; tag: Type; flag, offset, actual: INTEGER;
  1042. BEGIN
  1043. IF ~ODD(S.VAL(INTEGER, this.tag)) THEN
  1044. father := NIL;
  1045. LOOP
  1046. INC(S.VAL(INTEGER, this.tag));
  1047. flag := S.VAL(INTEGER, this.tag) MOD 4;
  1048. tag := S.VAL(Type, S.VAL(INTEGER, this.tag) - flag);
  1049. IF flag >= 2 THEN actual := this.first; this.actual := actual
  1050. ELSE actual := S.ADR(this.last)
  1051. END;
  1052. LOOP
  1053. offset := tag.ptroffs[0];
  1054. IF offset < 0 THEN
  1055. INC(S.VAL(INTEGER, tag), offset + 4); (* restore tag *)
  1056. IF (flag >= 2) & (actual < this.last) & (offset < -4) THEN (* next array element *)
  1057. INC(actual, tag.size); this.actual := actual
  1058. ELSE (* up *)
  1059. this.tag := S.VAL(Type, S.VAL(INTEGER, tag) + flag);
  1060. IF father = NIL THEN RETURN END;
  1061. son := this; this := father;
  1062. flag := S.VAL(INTEGER, this.tag) MOD 4;
  1063. tag := S.VAL(Type, S.VAL(INTEGER, this.tag) - flag);
  1064. offset := tag.ptroffs[0];
  1065. IF flag >= 2 THEN actual := this.actual ELSE actual := S.ADR(this.last) END;
  1066. S.GET(actual + offset, father); S.PUT(actual + offset, S.ADR(son.last));
  1067. INC(S.VAL(INTEGER, tag), 4)
  1068. END
  1069. ELSE
  1070. S.GET(actual + offset, son);
  1071. IF son # NIL THEN
  1072. DEC(S.VAL(INTEGER, son), 4);
  1073. IF ~ODD(S.VAL(INTEGER, son.tag)) THEN (* down *)
  1074. this.tag := S.VAL(Type, S.VAL(INTEGER, tag) + flag);
  1075. S.PUT(actual + offset, father); father := this; this := son;
  1076. EXIT
  1077. END
  1078. END;
  1079. INC(S.VAL(INTEGER, tag), 4)
  1080. END
  1081. END
  1082. END
  1083. END
  1084. END Mark;
  1085. PROCEDURE MarkGlobals;
  1086. VAR m: Module; i, p: INTEGER;
  1087. BEGIN
  1088. m := modList;
  1089. WHILE m # NIL DO
  1090. IF m.refcnt >= 0 THEN
  1091. i := 0;
  1092. WHILE i < m.nofptrs DO
  1093. S.GET(m.varBase + m.ptrs[i], p); INC(i);
  1094. IF p # 0 THEN Mark(S.VAL(Block, p - 4)) END
  1095. END
  1096. END;
  1097. m := m.next
  1098. END
  1099. END MarkGlobals;
  1100. (* This is the specification for the code procedure following below:
  1101. PROCEDURE Next (b: Block): Block; (* next block in same cluster *)
  1102. VAR size: INTEGER;
  1103. BEGIN
  1104. S.GET(S.VAL(INTEGER, b.tag) DIV 4 * 4, size);
  1105. IF ODD(S.VAL(INTEGER, b.tag) DIV 2) THEN INC(size, b.last - S.ADR(b.last)) END;
  1106. RETURN S.VAL(Block, S.VAL(INTEGER, b) + (size + 19) DIV 16 * 16)
  1107. END Next;
  1108. *)
  1109. PROCEDURE [code] Next (b: Block): Block (* next block in same cluster *)
  1110. (*
  1111. MOV ECX,[EAX] b.tag
  1112. AND CL,0FCH b.tag DIV * 4
  1113. MOV ECX,[ECX] size
  1114. TESTB [EAX],02H ODD(b.tag DIV 2)
  1115. JE L1
  1116. ADD ECX,[EAX,4] size + b.last
  1117. SUB ECX,EAX
  1118. SUB ECX,4 size + b.last - ADR(b.last)
  1119. L1:
  1120. ADD ECX,19 size + 19
  1121. AND CL,0F0H (size + 19) DIV 16 * 16
  1122. ADD EAX,ECX b + size
  1123. *)
  1124. 08BH, 008H,
  1125. 080H, 0E1H, 0FCH,
  1126. 08BH, 009H,
  1127. 0F6H, 000H, 002H,
  1128. 074H, 008H,
  1129. 003H, 048H, 004H,
  1130. 029H, 0C1H,
  1131. 083H, 0E9H, 004H,
  1132. 083H, 0C1H, 013H,
  1133. 080H, 0E1H, 0F0H,
  1134. 001H, 0C8H;
  1135. PROCEDURE CheckCandidates;
  1136. (* pre: nofcand > 0 *)
  1137. VAR i, j, h, p, end: INTEGER; c: Cluster; blk, next: Block;
  1138. BEGIN
  1139. (* sort candidates (shellsort) *)
  1140. h := 1; REPEAT h := h*3 + 1 UNTIL h > nofcand;
  1141. REPEAT h := h DIV 3; i := h;
  1142. WHILE i < nofcand DO p := candidates[i]; j := i;
  1143. WHILE (j >= h) & (candidates[j-h] > p) DO
  1144. candidates[j] := candidates[j-h]; j := j-h
  1145. END;
  1146. candidates[j] := p; INC(i)
  1147. END
  1148. UNTIL h = 1;
  1149. (* sweep *)
  1150. c := root; i := 0;
  1151. WHILE c # NIL DO
  1152. blk := S.VAL(Block, S.VAL(INTEGER, c) + 12);
  1153. end := S.VAL(INTEGER, blk) + (c.size - 12) DIV 16 * 16;
  1154. WHILE candidates[i] < S.VAL(INTEGER, blk) DO
  1155. INC(i);
  1156. IF i = nofcand THEN RETURN END
  1157. END;
  1158. WHILE S.VAL(INTEGER, blk) < end DO
  1159. next := Next(blk);
  1160. IF candidates[i] < S.VAL(INTEGER, next) THEN
  1161. IF (S.VAL(INTEGER, blk.tag) # S.ADR(blk.last)) (* not a free block *)
  1162. & (~strictStackSweep OR (candidates[i] = S.ADR(blk.last))) THEN
  1163. Mark(blk)
  1164. END;
  1165. REPEAT
  1166. INC(i);
  1167. IF i = nofcand THEN RETURN END
  1168. UNTIL candidates[i] >= S.VAL(INTEGER, next)
  1169. END;
  1170. IF (S.VAL(INTEGER, blk.tag) MOD 4 = 0) & (S.VAL(INTEGER, blk.tag) # S.ADR(blk.last))
  1171. & (blk.tag.base[0] = NIL) & (blk.actual > 0) THEN (* referenced interface record *)
  1172. Mark(blk)
  1173. END;
  1174. blk := next
  1175. END;
  1176. c := c.next
  1177. END
  1178. END CheckCandidates;
  1179. PROCEDURE MarkLocals;
  1180. VAR sp, p, min, max: INTEGER; c: Cluster;
  1181. BEGIN
  1182. S.GETREG(FP, sp); nofcand := 0; c := root;
  1183. WHILE c.next # NIL DO c := c.next END;
  1184. min := S.VAL(INTEGER, root); max := S.VAL(INTEGER, c) + c.size;
  1185. WHILE sp < baseStack DO
  1186. S.GET(sp, p);
  1187. IF (p > min) & (p < max) & (~strictStackSweep OR (p MOD 16 = 0)) THEN
  1188. candidates[nofcand] := p; INC(nofcand);
  1189. IF nofcand = LEN(candidates) - 1 THEN CheckCandidates; nofcand := 0 END
  1190. END;
  1191. INC(sp, 4)
  1192. END;
  1193. candidates[nofcand] := max; INC(nofcand); (* ensure complete scan for interface mark*)
  1194. IF nofcand > 0 THEN CheckCandidates END
  1195. END MarkLocals;
  1196. PROCEDURE MarkFinObj;
  1197. VAR f: FList;
  1198. BEGIN
  1199. wouldFinalize := FALSE;
  1200. f := finalizers;
  1201. WHILE f # NIL DO
  1202. IF ~ODD(S.VAL(INTEGER, f.blk.tag)) THEN wouldFinalize := TRUE END;
  1203. Mark(f.blk);
  1204. f := f.next
  1205. END;
  1206. f := hotFinalizers;
  1207. WHILE f # NIL DO IF ~ODD(S.VAL(INTEGER, f.blk.tag)) THEN wouldFinalize := TRUE END;
  1208. Mark(f.blk);
  1209. f := f.next
  1210. END
  1211. END MarkFinObj;
  1212. PROCEDURE CheckFinalizers;
  1213. VAR f, g, h, k: FList;
  1214. BEGIN
  1215. f := finalizers; g := NIL;
  1216. IF hotFinalizers = NIL THEN k := NIL
  1217. ELSE
  1218. k := hotFinalizers;
  1219. WHILE k.next # NIL DO k := k.next END
  1220. END;
  1221. WHILE f # NIL DO
  1222. h := f; f := f.next;
  1223. IF ~ODD(S.VAL(INTEGER, h.blk.tag)) THEN
  1224. IF g = NIL THEN finalizers := f ELSE g.next := f END;
  1225. IF k = NIL THEN hotFinalizers := h ELSE k.next := h END;
  1226. k := h; h.next := NIL
  1227. ELSE g := h
  1228. END
  1229. END;
  1230. h := hotFinalizers;
  1231. WHILE h # NIL DO Mark(h.blk); h := h.next END
  1232. END CheckFinalizers;
  1233. PROCEDURE ExecFinalizer (a, b, c: INTEGER);
  1234. VAR f: FList; fin: PROCEDURE(this: ANYPTR);
  1235. BEGIN
  1236. f := S.VAL(FList, a);
  1237. IF f.aiptr THEN (* ArrFinalizer(S.VAL(ANYPTR, S.ADR(f.blk.last))) *)
  1238. ELSE
  1239. S.GET(S.VAL(INTEGER, f.blk.tag) - 4, fin); (* method 0 *)
  1240. IF (fin # NIL) & (f.blk.tag.mod.refcnt >= 0) THEN fin(S.VAL(ANYPTR, S.ADR(f.blk.last))) END;
  1241. (*
  1242. IF f.iptr THEN RecFinalizer(S.VAL(ANYPTR, S.ADR(f.blk.last))) END
  1243. *)
  1244. END
  1245. END ExecFinalizer;
  1246. PROCEDURE^ Try* (h: TryHandler; a, b, c: INTEGER); (* COMPILER DEPENDENT *)
  1247. PROCEDURE CallFinalizers;
  1248. VAR f: FList;
  1249. BEGIN
  1250. WHILE hotFinalizers # NIL DO
  1251. f := hotFinalizers; hotFinalizers := hotFinalizers.next;
  1252. Try(ExecFinalizer, S.VAL(INTEGER, f), 0, 0)
  1253. END;
  1254. wouldFinalize := FALSE
  1255. END CallFinalizers;
  1256. PROCEDURE Insert (blk: FreeBlock; size: INTEGER); (* insert block in free list *)
  1257. VAR i: INTEGER;
  1258. BEGIN
  1259. blk.size := size - 4; blk.tag := S.VAL(Type, S.ADR(blk.size));
  1260. i := MIN(N - 1, (blk.size DIV 16));
  1261. blk.next := free[i]; free[i] := blk
  1262. END Insert;
  1263. PROCEDURE Sweep (dealloc: BOOLEAN);
  1264. VAR cluster, last, c: Cluster; blk, next: Block; fblk, b, t: FreeBlock; end, i: INTEGER;
  1265. BEGIN
  1266. cluster := root; last := NIL; allocated := 0;
  1267. i := N;
  1268. REPEAT DEC(i); free[i] := sentinel UNTIL i = 0;
  1269. WHILE cluster # NIL DO
  1270. blk := S.VAL(Block, S.VAL(INTEGER, cluster) + 12);
  1271. end := S.VAL(INTEGER, blk) + (cluster.size - 12) DIV 16 * 16;
  1272. fblk := NIL;
  1273. WHILE S.VAL(INTEGER, blk) < end DO
  1274. next := Next(blk);
  1275. IF ODD(S.VAL(INTEGER, blk.tag)) THEN
  1276. IF fblk # NIL THEN
  1277. Insert(fblk, S.VAL(INTEGER, blk) - S.VAL(INTEGER, fblk));
  1278. fblk := NIL
  1279. END;
  1280. DEC(S.VAL(INTEGER, blk.tag)); (* unmark *)
  1281. INC(allocated, S.VAL(INTEGER, next) - S.VAL(INTEGER, blk))
  1282. ELSIF fblk = NIL THEN
  1283. fblk := S.VAL(FreeBlock, blk)
  1284. END;
  1285. blk := next
  1286. END;
  1287. IF dealloc & (S.VAL(INTEGER, fblk) = S.VAL(INTEGER, cluster) + 12) THEN (* deallocate cluster *)
  1288. c := cluster; cluster := cluster.next;
  1289. IF last = NIL THEN root := cluster ELSE last.next := cluster END;
  1290. FreeHeapMem(c)
  1291. ELSE
  1292. IF fblk # NIL THEN Insert(fblk, end - S.VAL(INTEGER, fblk)) END;
  1293. last := cluster; cluster := cluster.next
  1294. END
  1295. END;
  1296. (* reverse free list *)
  1297. i := N;
  1298. REPEAT
  1299. DEC(i);
  1300. b := free[i]; fblk := sentinel;
  1301. WHILE b # sentinel DO t := b; b := t.next; t.next := fblk; fblk := t END;
  1302. free[i] := fblk
  1303. UNTIL i = 0
  1304. END Sweep;
  1305. PROCEDURE Collect*;
  1306. BEGIN
  1307. IF root # NIL THEN
  1308. CallFinalizers; (* trap cleanup *)
  1309. IF debug & (watcher # NIL) THEN watcher(1) END;
  1310. MarkGlobals;
  1311. MarkLocals;
  1312. CheckFinalizers;
  1313. Sweep(TRUE);
  1314. CallFinalizers
  1315. END
  1316. END Collect;
  1317. PROCEDURE FastCollect*;
  1318. BEGIN
  1319. IF root # NIL THEN
  1320. IF debug & (watcher # NIL) THEN watcher(2) END;
  1321. MarkGlobals;
  1322. MarkLocals;
  1323. MarkFinObj;
  1324. Sweep(FALSE)
  1325. END
  1326. END FastCollect;
  1327. PROCEDURE WouldFinalize* (): BOOLEAN;
  1328. BEGIN
  1329. RETURN wouldFinalize
  1330. END WouldFinalize;
  1331. (* --------------------- memory allocation (portable) -------------------- *)
  1332. PROCEDURE OldBlock (size: INTEGER): FreeBlock; (* size MOD 16 = 0 *)
  1333. VAR b, l: FreeBlock; s, i: INTEGER;
  1334. BEGIN
  1335. IF debug & (watcher # NIL) THEN watcher(3) END;
  1336. s := size - 4;
  1337. i := MIN(N - 1, s DIV 16);
  1338. WHILE (i # N - 1) & (free[i] = sentinel) DO INC(i) END;
  1339. b := free[i]; l := NIL;
  1340. WHILE b.size < s DO l := b; b := b.next END;
  1341. IF b # sentinel THEN
  1342. IF l = NIL THEN free[i] := b.next ELSE l.next := b.next END
  1343. ELSE b := NIL
  1344. END;
  1345. RETURN b
  1346. END OldBlock;
  1347. PROCEDURE LastBlock (limit: INTEGER): FreeBlock; (* size MOD 16 = 0 *)
  1348. VAR b, l: FreeBlock; s, i: INTEGER;
  1349. BEGIN
  1350. s := limit - 4;
  1351. i := 0;
  1352. REPEAT
  1353. b := free[i]; l := NIL;
  1354. WHILE (b # sentinel) & (S.VAL(INTEGER, b) + b.size # s) DO l := b; b := b.next END;
  1355. IF b # sentinel THEN
  1356. IF l = NIL THEN free[i] := b.next ELSE l.next := b.next END
  1357. ELSE b := NIL
  1358. END;
  1359. INC(i)
  1360. UNTIL (b # NIL) OR (i = N);
  1361. RETURN b
  1362. END LastBlock;
  1363. PROCEDURE NewBlock (size: INTEGER): Block;
  1364. VAR tsize, a, s: INTEGER; b: FreeBlock; new, c: Cluster; r: Reducer;
  1365. BEGIN
  1366. ASSERT(size>=0,20);
  1367. IF size >7FFFFFECH THEN RETURN NIL END; (*20120822 Marc*)
  1368. tsize := (size + 19) DIV 16 * 16;
  1369. b := OldBlock(tsize); (* 1) search for free block *)
  1370. IF b = NIL THEN
  1371. FastCollect; b := OldBlock(tsize); (* 2) collect *)
  1372. IF b = NIL THEN
  1373. Collect; b := OldBlock(tsize); (* 2a) fully collect *)
  1374. END;
  1375. IF b = NIL THEN
  1376. AllocHeapMem(tsize + 12, new); (* 3) allocate new cluster *)
  1377. IF new # NIL THEN
  1378. IF (root = NIL) OR (S.VAL(INTEGER, new) < S.VAL(INTEGER, root)) THEN
  1379. new.next := root; root := new
  1380. ELSE
  1381. c := root;
  1382. WHILE (c.next # NIL) & (S.VAL(INTEGER, new) > S.VAL(INTEGER, c.next)) DO c := c.next END;
  1383. new.next := c.next; c.next := new
  1384. END;
  1385. b := S.VAL(FreeBlock, S.VAL(INTEGER, new) + 12);
  1386. b.size := (new.size - 12) DIV 16 * 16 - 4
  1387. ELSE
  1388. RETURN NIL (* 4) give up *)
  1389. END
  1390. END
  1391. END;
  1392. (* b # NIL *)
  1393. a := b.size + 4 - tsize;
  1394. IF a > 0 THEN Insert(S.VAL(FreeBlock, S.VAL(INTEGER, b) + tsize), a) END;
  1395. IF size > 0 THEN Erase(S.ADR(b.size), (size + 3) DIV 4) END;
  1396. INC(allocated, tsize);
  1397. RETURN S.VAL(Block, b)
  1398. END NewBlock;
  1399. PROCEDURE Allocated* (): INTEGER;
  1400. BEGIN
  1401. RETURN allocated
  1402. END Allocated;
  1403. PROCEDURE Used* (): INTEGER;
  1404. BEGIN
  1405. RETURN used
  1406. END Used;
  1407. PROCEDURE Root* (): INTEGER;
  1408. BEGIN
  1409. RETURN S.VAL(INTEGER, root)
  1410. END Root;
  1411. (* -------------------- Trap Handling --------------------- *)
  1412. PROCEDURE^ InitFpu;
  1413. PROCEDURE Start* (code: Command);
  1414. BEGIN
  1415. restart := code;
  1416. S.GETREG(SP, baseStack); (* save base stack *)
  1417. code()
  1418. END Start;
  1419. PROCEDURE Quit* (exitCode: INTEGER);
  1420. VAR m: Module; term: Command; t: BOOLEAN;
  1421. res: INTEGER;
  1422. BEGIN
  1423. trapViewer := NIL; trapChecker := NIL; restart := NIL;
  1424. t := terminating; terminating := TRUE; m := modList;
  1425. WHILE m # NIL DO (* call terminators *)
  1426. IF ~static OR ~t THEN
  1427. term := m.term; m.term := NIL;
  1428. IF term # NIL THEN term() END
  1429. END;
  1430. (*
  1431. ReleaseIPtrs(m);
  1432. *)
  1433. m := m.next
  1434. END;
  1435. CallFinalizers;
  1436. hotFinalizers := finalizers; finalizers := NIL;
  1437. CallFinalizers;
  1438. (*
  1439. IF ~inDll THEN
  1440. RemoveExcp(excpPtr^);
  1441. WinApi.ExitProcess(exitCode) (* never returns *)
  1442. END
  1443. *)
  1444. res := Libc.fflush(0);
  1445. Libc.exit(exitCode)
  1446. END Quit;
  1447. PROCEDURE FatalError* (id: INTEGER; str: ARRAY OF CHAR);
  1448. VAR res: INTEGER; title: ARRAY 16 OF CHAR; text: ARRAY 256 OF SHORTCHAR;
  1449. BEGIN
  1450. title := "Error xy";
  1451. title[6] := CHR(id DIV 10 + ORD("0"));
  1452. title[7] := CHR(id MOD 10 + ORD("0"));
  1453. (*
  1454. res := WinApi.MessageBoxW(0, str, title, {});
  1455. *)
  1456. text := SHORT(str$);
  1457. res := MessageBox(title$, SHORT(str), {mbOk});
  1458. (*
  1459. IF ~inDll THEN RemoveExcp(excpPtr^) END;
  1460. *)
  1461. (*
  1462. WinApi.ExitProcess(1)
  1463. *)
  1464. Libc.exit(1)
  1465. (* never returns *)
  1466. END FatalError;
  1467. PROCEDURE DefaultTrapViewer;
  1468. VAR len, ref, end, x, a, b, c: INTEGER; mod: Module;
  1469. name: Name; out: ARRAY 1024 OF SHORTCHAR;
  1470. PROCEDURE WriteString (s: ARRAY OF SHORTCHAR);
  1471. VAR i: INTEGER;
  1472. BEGIN
  1473. i := 0;
  1474. WHILE (len < LEN(out) - 1) & (s[i] # 0X) DO out[len] := s[i]; INC(i); INC(len) END
  1475. END WriteString;
  1476. PROCEDURE WriteHex (x, n: INTEGER);
  1477. VAR i, y: INTEGER;
  1478. BEGIN
  1479. IF len + n < LEN(out) THEN
  1480. i := len + n - 1;
  1481. WHILE i >= len DO
  1482. y := x MOD 16; x := x DIV 16;
  1483. IF y > 9 THEN y := y + (ORD("A") - ORD("0") - 10) END;
  1484. out[i] := SHORT(CHR(y + ORD("0"))); DEC(i)
  1485. END;
  1486. INC(len, n)
  1487. END
  1488. END WriteHex;
  1489. PROCEDURE WriteLn;
  1490. BEGIN
  1491. IF len < LEN(out) - 1 THEN out[len] := 0AX (* 0DX on Windows *); INC(len) END
  1492. END WriteLn;
  1493. BEGIN
  1494. len := 0;
  1495. IF err = 129 THEN WriteString("invalid with")
  1496. ELSIF err = 130 THEN WriteString("invalid case")
  1497. ELSIF err = 131 THEN WriteString("function without return")
  1498. ELSIF err = 132 THEN WriteString("type guard")
  1499. ELSIF err = 133 THEN WriteString("implied type guard")
  1500. ELSIF err = 134 THEN WriteString("value out of range")
  1501. ELSIF err = 135 THEN WriteString("index out of range")
  1502. ELSIF err = 136 THEN WriteString("string too long")
  1503. ELSIF err = 137 THEN WriteString("stack overflow")
  1504. ELSIF err = 138 THEN WriteString("integer overflow")
  1505. ELSIF err = 139 THEN WriteString("division by zero")
  1506. ELSIF err = 140 THEN WriteString("infinite real result")
  1507. ELSIF err = 141 THEN WriteString("real underflow")
  1508. ELSIF err = 142 THEN WriteString("real overflow")
  1509. ELSIF err = 143 THEN WriteString("undefined real result")
  1510. ELSIF err = 200 THEN WriteString("keyboard interrupt")
  1511. ELSIF err = 202 THEN WriteString("illegal instruction: ");
  1512. WriteHex(val, 4)
  1513. ELSIF err = 203 THEN WriteString("illegal memory read [ad = ");
  1514. WriteHex(val, 8); WriteString("]")
  1515. ELSIF err = 204 THEN WriteString("illegal memory write [ad = ");
  1516. WriteHex(val, 8); WriteString("]")
  1517. ELSIF err = 205 THEN WriteString("illegal execution [ad = ");
  1518. WriteHex(val, 8); WriteString("]")
  1519. ELSIF err < 0 THEN WriteString("exception #"); WriteHex(-err, 2)
  1520. ELSE err := err DIV 100 * 256 + err DIV 10 MOD 10 * 16 + err MOD 10;
  1521. WriteString("trap #"); WriteHex(err, 3)
  1522. END;
  1523. a := pc; b := fp; c := 12;
  1524. REPEAT
  1525. WriteLn; WriteString("- ");
  1526. mod := modList;
  1527. WHILE (mod # NIL) & ((a < mod.code) OR (a >= mod.code + mod.csize)) DO mod := mod.next END;
  1528. IF mod # NIL THEN
  1529. DEC(a, mod.code);
  1530. IF mod.refcnt >= 0 THEN
  1531. WriteString(mod.name); ref := mod.refs;
  1532. REPEAT GetRefProc(ref, end, name) UNTIL (end = 0) OR (a < end);
  1533. IF a < end THEN
  1534. WriteString("."); WriteString(name)
  1535. END
  1536. ELSE
  1537. WriteString("("); WriteString(mod.name); WriteString(")")
  1538. END;
  1539. WriteString(" ")
  1540. END;
  1541. WriteString("(pc="); WriteHex(a, 8);
  1542. WriteString(", fp="); WriteHex(b, 8); WriteString(")");
  1543. IF (b >= sp) & (b < stack) THEN
  1544. S.GET(b+4, a); (* stacked pc *)
  1545. S.GET(b, b); (* dynamic link *)
  1546. DEC(c)
  1547. ELSE c := 0
  1548. END
  1549. UNTIL c = 0;
  1550. out[len] := 0X;
  1551. x := MessageBox("BlackBox", out$, {mbOk})
  1552. END DefaultTrapViewer;
  1553. PROCEDURE TrapCleanup;
  1554. VAR t: TrapCleaner;
  1555. BEGIN
  1556. WHILE trapStack # NIL DO
  1557. t := trapStack; trapStack := trapStack.next; t.Cleanup
  1558. END;
  1559. IF (trapChecker # NIL) & (err # 128) THEN trapChecker END
  1560. END TrapCleanup;
  1561. PROCEDURE SetTrapGuard* (on: BOOLEAN);
  1562. BEGIN
  1563. guarded := on
  1564. END SetTrapGuard;
  1565. PROCEDURE Try* (h: TryHandler; a, b, c: INTEGER);
  1566. VAR res: INTEGER; context: Libc.sigjmp_buf; oldContext: POINTER TO Libc.sigjmp_buf;
  1567. BEGIN
  1568. oldContext := currentTryContext;
  1569. res := Libc.sigsetjmp(context, Libc.TRUE);
  1570. currentTryContext := S.ADR(context);
  1571. IF res = 0 THEN (* first time around *)
  1572. h(a, b, c);
  1573. ELSIF res = trapReturn THEN (* after a trap *)
  1574. ELSE
  1575. HALT(100)
  1576. END;
  1577. currentTryContext := oldContext;
  1578. END Try;
  1579. (* -------------------- Initialization --------------------- *)
  1580. PROCEDURE InitFpu; (* COMPILER DEPENDENT *)
  1581. (* could be eliminated, delayed for backward compatibility *)
  1582. VAR cw: SET;
  1583. BEGIN
  1584. FINIT;
  1585. FSTCW;
  1586. (* denorm, underflow, precision, zero div, overflow masked *)
  1587. (* invalid trapped *)
  1588. (* round to nearest, temp precision *)
  1589. cw := cw - {0..5, 8..11} + {1, 2, 3, 4, 5, 8, 9};
  1590. FLDCW
  1591. END InitFpu;
  1592. (* A. V. Shiryaev: Show extended trap information (OpenBSD) *)
  1593. PROCEDURE ShowTrap (sig: INTEGER; siginfo: Libc.Ptrsiginfo_t; context: Libc.Ptrucontext_t);
  1594. PROCEDURE WriteChar (c: SHORTCHAR);
  1595. VAR s: ARRAY [untagged] 2 OF SHORTCHAR;
  1596. BEGIN
  1597. s[0] := c; s[1] := 0X;
  1598. res := Libc.printf(s)
  1599. END WriteChar;
  1600. PROCEDURE WriteString (s: ARRAY OF SHORTCHAR);
  1601. VAR res: INTEGER;
  1602. BEGIN
  1603. res := Libc.printf(s)
  1604. END WriteString;
  1605. PROCEDURE WriteHex (x, n: INTEGER);
  1606. VAR i, y: INTEGER;
  1607. s: ARRAY 9 OF SHORTCHAR;
  1608. BEGIN
  1609. s[n] := 0X;
  1610. i := 0 + n - 1;
  1611. WriteChar("$");
  1612. WHILE i >= 0 DO
  1613. y := x MOD 16; x := x DIV 16;
  1614. IF y > 9 THEN y := y + (ORD("A") - ORD("0") - 10) END;
  1615. s[i] := SHORT(CHR(y + ORD("0")));
  1616. DEC(i)
  1617. END;
  1618. WriteString(s)
  1619. END WriteHex;
  1620. PROCEDURE WriteLn;
  1621. BEGIN
  1622. WriteChar(0AX)
  1623. END WriteLn;
  1624. PROCEDURE KV (name: ARRAY OF SHORTCHAR; x: INTEGER);
  1625. BEGIN
  1626. WriteString(name); WriteString(" = "); WriteHex(x, 8)
  1627. END KV;
  1628. BEGIN
  1629. WriteString("================================"); WriteLn;
  1630. WriteString("TRAP:"); WriteLn;
  1631. WriteString("--------------------------------"); WriteLn;
  1632. KV("sig", sig); WriteString(", ");
  1633. KV("baseStack", baseStack); WriteLn;
  1634. KV("GS ", context.sc_gs); WriteString(", ");
  1635. KV("FS ", context.sc_fs); WriteString(", ");
  1636. KV("ES ", context.sc_es); WriteString(", ");
  1637. KV("DS ", context.sc_ds); WriteLn;
  1638. KV("EDI", context.sc_edi); WriteString(", ");
  1639. KV("ESI", context.sc_esi); WriteString(", ");
  1640. KV("EBP", context.sc_ebp); WriteString(", ");
  1641. KV("EBX", context.sc_ebx); WriteLn;
  1642. KV("EDX", context.sc_edx); WriteString(", ");
  1643. KV("ECX", context.sc_ecx); WriteString(", ");
  1644. KV("EAX", context.sc_eax); WriteString(", ");
  1645. KV("EIP", context.sc_eip); WriteLn;
  1646. KV("CS", context.sc_cs); WriteString(", ");
  1647. KV("EFLAGS", context.sc_eflags); WriteString(", ");
  1648. KV("ESP", context.sc_esp); WriteString(", ");
  1649. KV("SS", context.sc_ss); WriteLn;
  1650. KV("ONSTACK", context.sc_onstack); WriteString(", ");
  1651. KV("MASK", context.sc_mask); WriteString(", ");
  1652. KV("TRAPNO", context.sc_trapno); WriteString(", ");
  1653. KV("ERR", context.sc_err); WriteLn;
  1654. (* WriteString("--------------------------------"); WriteLn; *)
  1655. (* TODO: show siginfo *)
  1656. WriteString("================================"); WriteLn
  1657. END ShowTrap;
  1658. PROCEDURE TrapHandler (sig: INTEGER; siginfo: Libc.Ptrsiginfo_t; context: Libc.Ptrucontext_t);
  1659. BEGIN
  1660. (*
  1661. S.GETREG(SP, sp);
  1662. S.GETREG(FP, fp);
  1663. *)
  1664. stack := baseStack;
  1665. (* A. V. Shiryaev *)
  1666. (*
  1667. sp := context.uc_mcontext.gregs[7]; (* TODO: is the stack pointer really stored in register 7? *)
  1668. fp := context.uc_mcontext.gregs[6]; (* TODO: is the frame pointer really stored in register 6? *)
  1669. pc := context.uc_mcontext.gregs[14]; (* TODO: is the pc really stored in register 14? *)
  1670. *)
  1671. (* val := siginfo.si_addr; *)
  1672. (* OpenBSD *)
  1673. ShowTrap(sig, siginfo, context);
  1674. sp := context.sc_esp; fp := context.sc_ebp; pc := context.sc_eip;
  1675. val := siginfo.si_pid; (* XXX *)
  1676. (*
  1677. Int(sig); Int(siginfo.si_signo); Int(siginfo.si_code); Int(siginfo.si_errno);
  1678. Int(siginfo.si_status); Int(siginfo.si_value); Int(siginfo.si_int);
  1679. *)
  1680. err := sig;
  1681. IF trapped THEN DefaultTrapViewer END;
  1682. CASE sig OF
  1683. Libc.SIGINT:
  1684. err := 200 (* Interrupt (ANSI). *)
  1685. | Libc.SIGILL: (* Illegal instruction (ANSI). *)
  1686. err := 202; val := 0;
  1687. IF IsReadable(pc, pc + 4) THEN
  1688. S.GET(pc, val);
  1689. IF val MOD 100H = 8DH THEN (* lea reg,reg *)
  1690. IF val DIV 100H MOD 100H = 0F0H THEN
  1691. err := val DIV 10000H MOD 100H (* trap *)
  1692. ELSIF val DIV 1000H MOD 10H = 0EH THEN
  1693. err := 128 + val DIV 100H MOD 10H (* run time error *)
  1694. END
  1695. END
  1696. END
  1697. | Libc.SIGFPE:
  1698. CASE siginfo.si_code OF
  1699. 0: (* TODO: ?????? *)
  1700. (* A. V. Shiryaev: OpenBSD *)
  1701. (*
  1702. IF siginfo.si_int = 8 THEN
  1703. err := 139
  1704. ELSIF siginfo.si_int = 0 THEN
  1705. err := 143
  1706. END
  1707. *)
  1708. err := 143;
  1709. | Libc.FPE_INTDIV: err := 139 (* Integer divide by zero. *)
  1710. | Libc.FPE_INTOVF: err := 138 (* Integer overflow. *)
  1711. | Libc.FPE_FLTDIV: err := 140 (* Floating point divide by zero. *)
  1712. | Libc.FPE_FLTOVF: err := 142 (* Floating point overflow. *)
  1713. | Libc.FPE_FLTUND: err := 141 (* Floating point underflow. *)
  1714. | Libc.FPE_FLTRES: err := 143 (* Floating point inexact result. *)
  1715. | Libc.FPE_FLTINV: err := 143 (* Floating point invalid operation. *)
  1716. | Libc.FPE_FLTSUB: err := 134 (* Subscript out of range. *)
  1717. ELSE
  1718. END
  1719. | Libc.SIGSEGV: (* Segmentation violation (ANSI). *)
  1720. err := 203
  1721. ELSE
  1722. END;
  1723. INC(trapCount);
  1724. InitFpu;
  1725. TrapCleanup;
  1726. IF err # 128 THEN
  1727. IF (trapViewer = NIL) OR trapped THEN
  1728. DefaultTrapViewer
  1729. ELSE
  1730. trapped := TRUE;
  1731. trapViewer();
  1732. trapped := FALSE
  1733. END
  1734. END;
  1735. IF currentTryContext # NIL THEN (* Try failed *)
  1736. Libc.siglongjmp(currentTryContext, trapReturn)
  1737. ELSE
  1738. IF restart # NIL THEN (* Start failed *)
  1739. Libc.siglongjmp(loopContext, trapReturn)
  1740. END;
  1741. Quit(1);
  1742. END;
  1743. trapped := FALSE
  1744. END TrapHandler;
  1745. PROCEDURE InstallSignals*;
  1746. CONST
  1747. sigStackSize = Libc.SIGSTKSZ;
  1748. VAR sa, old: Libc.sigaction_t; res, i: INTEGER;
  1749. sigstk: Libc.sigaltstack_t;
  1750. errno: INTEGER;
  1751. BEGIN
  1752. (* A. V. Shiryaev: Set alternative stack on which signals are to be processed *)
  1753. sigstk.ss_sp := Libc.calloc(1, sigStackSize);
  1754. IF sigstk.ss_sp # Libc.NULL THEN
  1755. sigstk.ss_size := sigStackSize;
  1756. sigstk.ss_flags := 0;
  1757. res := Libc.sigaltstack(sigstk, NIL);
  1758. IF res # 0 THEN Msg("ERROR: Kernel.InstallSignals: sigaltstack failed!");
  1759. S.GET( Libc.__errno_location(), errno );
  1760. Int(errno);
  1761. Libc.exit(1)
  1762. END
  1763. ELSE Msg("ERROR: malloc(SIGSTKSIZE) failed");
  1764. Libc.exit(1)
  1765. END;
  1766. sa.sa_sigaction := TrapHandler;
  1767. (*
  1768. res := LinLibc.sigemptyset(S.ADR(sa.sa_mask));
  1769. *)
  1770. res := Libc.sigfillset(S.ADR(sa.sa_mask));
  1771. sa.sa_flags := Libc.SA_ONSTACK + Libc.SA_SIGINFO; (* TrapHandler takes three arguments *)
  1772. (*
  1773. IF LinLibc.sigaction(LinLibc.SIGINT, sa, old) # 0 THEN Msg("failed to install SIGINT") END;
  1774. IF LinLibc.sigaction(LinLibc.SIGILL, sa, old) # 0 THEN Msg("failed to install SIGILL") END;
  1775. IF LinLibc.sigaction(LinLibc.SIGFPE, sa, old) # 0 THEN Msg("failed to install SIGFPE") END;
  1776. IF LinLibc.sigaction(LinLibc.SIGSEGV, sa, old) # 0 THEN Msg("failed to install SIGSEGV") END;
  1777. IF LinLibc.sigaction(LinLibc.SIGPIPE, sa, old) # 0 THEN Msg("failed to install SIGPIPE") END;
  1778. IF LinLibc.sigaction(LinLibc.SIGTERM, sa, old) # 0 THEN Msg("failed to install SIGTERM") END;
  1779. *)
  1780. (* respond to all possible signals *)
  1781. FOR i := 1 TO Libc._NSIG - 1 DO
  1782. IF (i # Libc.SIGKILL)
  1783. & (i # Libc.SIGSTOP)
  1784. & (i # Libc.SIGWINCH)
  1785. & (i # Libc.SIGTHR) (* A. V. Shiryaev: OpenBSD -pthread *)
  1786. THEN
  1787. IF Libc.sigaction(i, sa, old) # 0 THEN Msg("failed to install signal"); Int(i) END;
  1788. END
  1789. END
  1790. END InstallSignals;
  1791. PROCEDURE Init;
  1792. VAR i: INTEGER;
  1793. BEGIN
  1794. InstallSignals; (* init exception handling *)
  1795. currentTryContext := NIL;
  1796. allocated := 0; total := 0; used := 0;
  1797. sentinelBlock.size := MAX(INTEGER);
  1798. sentinel := S.ADR(sentinelBlock);
  1799. (*
  1800. S.PUTREG(ML, S.ADR(modList));
  1801. *)
  1802. i := N;
  1803. REPEAT DEC(i); free[i] := sentinel UNTIL i = 0;
  1804. IF inDll THEN
  1805. (*
  1806. baseStack := FPageWord(4); (* begin of stack segment *)
  1807. *)
  1808. END;
  1809. InitFpu;
  1810. IF ~static THEN
  1811. InitModule(modList);
  1812. IF ~inDll THEN Quit(1) END
  1813. END;
  1814. told := 0; shift := 0
  1815. END Init;
  1816. PROCEDURE SetCmdLine;
  1817. VAR i, l: INTEGER;
  1818. BEGIN
  1819. l := LEN(cmdLine);
  1820. cmdLine := bootInfo.argv[0]$;
  1821. FOR i := 1 TO bootInfo.argc - 1 DO cmdLine := cmdLine + " " + bootInfo.argv[i]END
  1822. END SetCmdLine;
  1823. PROCEDURE SetCmdLine2;
  1824. VAR x: Libc.PtrSTR;
  1825. BEGIN
  1826. x := Libc.getenv("CMDLINE");
  1827. IF x # NIL THEN
  1828. cmdLine := x$
  1829. END
  1830. END SetCmdLine2;
  1831. BEGIN
  1832. IF modList = NIL THEN (* only once *)
  1833. IF bootInfo # NIL THEN
  1834. modList := bootInfo.modList; (* boot loader initializes the bootInfo struct *)
  1835. S.GETREG(SP, baseStack); (* TODO: Check that this is ok. *)
  1836. SetCmdLine
  1837. ELSE
  1838. S.GETREG(ML, modList); (* linker loads module list to BX *)
  1839. S.GETREG(SP, baseStack);
  1840. SetCmdLine2
  1841. END;
  1842. static := init IN modList.opts;
  1843. inDll := dll IN modList.opts;
  1844. Init
  1845. END
  1846. CLOSE
  1847. IF ~terminating THEN
  1848. terminating := TRUE;
  1849. Quit(0)
  1850. END
  1851. END Kernel.