Generic.Unix.I386.Machine.Mod 30 KB

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  1. MODULE Machine; (** AUTHOR "pjm, G.F."; PURPOSE "Bootstrapping, configuration and machine interface"; *)
  2. IMPORT S := SYSTEM, Trace, Unix, Glue;
  3. CONST
  4. DefaultConfig = "Color 0 StackSize 128";
  5. Version = "Aos (rev.6640)";
  6. DefaultObjectFileExtension* = ".Obj";
  7. Second* = 1000; (* frequency of ticks increments in Hz *)
  8. (** bits in features variable *)
  9. MTTR* = 12; MMX* = 23;
  10. AddrSize = SIZEOF( ADDRESS );
  11. SizeSize = SIZEOF( SIZE );
  12. AddressSize = SIZEOF(ADDRESS);
  13. BlockHeaderSize = 2 * AddressSize;
  14. RecordDescSize = 4 * AddressSize; (* needs to be adapted in case Heaps.RecordBlockDesc is changed *)
  15. StaticBlockSize = 32; (* static heap block size *)
  16. BlockSize = 32;
  17. MemBlockSize* = 64*1024*1024;
  18. TraceOutput* = 0; (* Trace output *)
  19. Memory* = 1; (*! Virtual memory management, stack and page allocation, not used in UnixAos *)
  20. Heaps* = 2; (* Storage allocation and Garbage collection *)
  21. Interrupts* = 3; (*! Interrupt handling, not used in UnixAos *)
  22. Modules* = 4; (* Module list *)
  23. Objects* = 5; (*! Ready queue, not used in UnixAos *)
  24. Processors* = 6; (*! Interprocessor interrupts, not used in UnixAos *)
  25. KernelLog* = 7; (* Atomic output *)
  26. X11* = 8; (* XWindows I/O *)
  27. Trap* = 9;
  28. GC = 10;
  29. MaxLocks* = 11; (* { <= 32 } *)
  30. MaxCPU* = 4;
  31. TYPE
  32. Vendor* = ARRAY 13 OF CHAR;
  33. MemoryBlock* = POINTER TO MemoryBlockDesc;
  34. MemoryBlockDesc* = RECORD
  35. next- {UNTRACED}: MemoryBlock;
  36. startAdr-: ADDRESS; (* sort key in linked list of memory blocks *)
  37. size-: SIZE;
  38. beginBlockAdr-, endBlockAdr-: ADDRESS
  39. END;
  40. (** processor state, ordering of record fields is predefined! *)
  41. (*!(not used in UnixAos, for interface compatibility only)*)
  42. State* = RECORD (* offsets used in FieldInterrupt, FieldIRQ and Objects.RestoreState *)
  43. EDI*, ESI*, ERR*, ESP0*, EBX*, EDX*, ECX*, EAX*: LONGINT; (** ESP0 = ADR(s.INT) *)
  44. INT*, BP*, PC*, CS*: LONGINT; (* BP and ERR are exchanged by glue code, for procedure link *)
  45. FLAGS*: SET;
  46. SP*, SS*: LONGINT; (** only valid if (VMBit IN s.EFLAGS) OR (CS MOD 4 < s.CS MOD 4) *)
  47. ES*, DS*, FS*, GS*: LONGINT; (** only valid if (VMBit IN s.FLAGS) *)
  48. END;
  49. VAR
  50. mtx : ARRAY MaxLocks OF Unix.Mutex_t;
  51. version-: ARRAY 64 OF CHAR; (** Aos version *)
  52. features-, features2 : SET;
  53. MMXSupport- : BOOLEAN;
  54. SSESupport- : BOOLEAN;
  55. SSE2Support- : BOOLEAN;
  56. SSE3Support- : BOOLEAN;
  57. SSSE3Support- : BOOLEAN;
  58. SSE41Support- : BOOLEAN;
  59. SSE42Support- : BOOLEAN;
  60. SSE5Support- : BOOLEAN;
  61. AVXSupport- : BOOLEAN;
  62. GCacquired- : BOOLEAN;
  63. ticks-: LONGINT; (** timer ticks. Use Kernel.GetTicks() to read, don't write *)
  64. prioLow-, prioHigh-: LONGINT; (* permitted thread priorities *)
  65. fcr-: SET; (** default floating-point control register value (default rounding mode is towards -infinity, for ENTIER) *)
  66. mhz-: HUGEINT; (** clock rate of GetTimer in MHz, or 0 if not known *)
  67. standaloneAppl-: BOOLEAN;
  68. firstMemBlock: MemoryBlockDesc; (* pseudo heap *)
  69. gcThreshold-: SIZE;
  70. memBlockHead-{UNTRACED}, memBlockTail-{UNTRACED}: MemoryBlock; (* head and tail of sorted list of memory blocks *)
  71. config: ARRAY 2048 OF CHAR; (* config strings *)
  72. (*
  73. Unix.ThrInitialize : PROCEDURE {REALTIME, C} ( VAR low, high: LONGINT ): BOOLEAN;
  74. Unix.MtxInit : PROCEDURE {REALTIME, C} ( dummy: LONGINT ): Unix.Mutex_t;
  75. Unix.MtxDestroy : PROCEDURE {REALTIME, C} ( mtx: Unix.Mutex_t );
  76. Unix.MtxLock : PROCEDURE {REALTIME, C} ( mtx: Unix.Mutex_t );
  77. Unix.MtxUnlock : PROCEDURE {REALTIME, C} ( mtx: Unix.Mutex_t );
  78. conInit : PROCEDURE {REALTIME, C} ( dummy: LONGINT ): Unix.Condition_t;
  79. conDestroy : PROCEDURE {REALTIME, C} ( cond: Unix.Condition_t );
  80. conWait : PROCEDURE {REALTIME, C} ( cond: Unix.Condition_t; mtx: Unix.Mutex_t );
  81. conSignal : PROCEDURE {REALTIME, C} ( cond: Unix.Condition_t );
  82. thrSleep : PROCEDURE {REALTIME, C} ( ms: LONGINT );
  83. thrThis : PROCEDURE {REALTIME, C} ( dummy: LONGINT ): Unix.Thread_t;
  84. *)
  85. logfile: LONGINT;
  86. traceHeap: BOOLEAN;
  87. timer0 : HUGEINT;
  88. (** Return current processor ID (0 to MaxNum-1). *)
  89. PROCEDURE {REALTIME} ID* (): LONGINT;
  90. BEGIN
  91. RETURN 0
  92. END ID;
  93. (**
  94. * Flush Data Cache for the specified virtual address range. If len is negative, flushes the whole cache.
  95. * This is used on some architecture to interact with DMA hardware (e.g. Ethernet and USB. It can be
  96. * left empty on Intel architecture.
  97. *)
  98. PROCEDURE FlushDCacheRange * (adr: ADDRESS; len: LONGINT);
  99. END FlushDCacheRange;
  100. (**
  101. * Invalidate Data Cache for the specified virtual address range. If len is negative, flushes the whole cache.
  102. * This is used on some architecture to interact with DMA hardware (e.g. Ethernet and USB. It can be
  103. * left empty on Intel architecture.
  104. *)
  105. PROCEDURE InvalidateDCacheRange * (adr: ADDRESS; len: LONGINT);
  106. END InvalidateDCacheRange;
  107. (**
  108. * Invalidate Instruction Cache for the specified virtual address range. If len is negative, flushes the whole cache.
  109. * This is used on some architecture to interact with DMA hardware (e.g. Ethernet and USB. It can be
  110. * left empty on Intel architecture.
  111. *)
  112. PROCEDURE InvalidateICacheRange * (adr: ADDRESS; len: LONGINT);
  113. END InvalidateICacheRange;
  114. (* insert given memory block in sorted list of memory blocks, sort key is startAdr field - called during GC *)
  115. PROCEDURE InsertMemoryBlock(memBlock: MemoryBlock);
  116. VAR cur {UNTRACED}, prev {UNTRACED}: MemoryBlock;
  117. BEGIN
  118. cur := memBlockHead;
  119. prev := NIL;
  120. WHILE (cur # NIL) & (cur.startAdr < memBlock.startAdr) DO
  121. prev := cur;
  122. cur := cur.next
  123. END;
  124. IF prev = NIL THEN (* insert at head of list *)
  125. memBlock.next := memBlockHead;
  126. memBlockHead := memBlock
  127. ELSE (* insert in middle or at end of list *)
  128. prev.next := memBlock;
  129. memBlock.next := cur;
  130. IF cur = NIL THEN
  131. memBlockTail := memBlock
  132. END
  133. END
  134. END InsertMemoryBlock;
  135. (* Free unused memory block - called during GC *)
  136. PROCEDURE FreeMemBlock*(memBlock: MemoryBlock);
  137. VAR cur {UNTRACED}, prev {UNTRACED}: MemoryBlock;
  138. BEGIN
  139. cur := memBlockHead;
  140. prev := NIL;
  141. WHILE (cur # NIL) & (cur # memBlock) DO
  142. prev := cur;
  143. cur := cur.next
  144. END;
  145. IF cur = memBlock THEN
  146. IF traceHeap THEN
  147. Trace.String( "Release memory block " ); Trace.Hex( memBlock.startAdr, -8 ); Trace.Ln
  148. END;
  149. IF prev = NIL THEN
  150. memBlockHead := cur.next
  151. ELSE
  152. prev.next := cur.next;
  153. IF cur.next = NIL THEN
  154. memBlockTail := prev
  155. END
  156. END;
  157. Unix.free( memBlock.startAdr )
  158. ELSE
  159. HALT(535) (* error in memory block management *)
  160. END;
  161. END FreeMemBlock;
  162. (* expand heap by allocating a new memory block *)
  163. PROCEDURE ExpandHeap*( dummy: LONGINT; size: SIZE; VAR memoryBlock: MemoryBlock; VAR beginBlockAdr, endBlockAdr: ADDRESS );
  164. VAR mBlock: MemoryBlock; alloc, s: SIZE; a, adr: ADDRESS;
  165. BEGIN
  166. IF size < (MemBlockSize - (2*BlockSize)) THEN alloc := MemBlockSize
  167. ELSE alloc := size + (2*BlockSize);
  168. END;
  169. INC( alloc, (-alloc) MOD Unix.PageSize );
  170. IF Unix.posix_memalign( adr, Unix.PageSize, alloc ) # 0 THEN
  171. Unix.Perror( "Machine.ExpandHeap: posix_memalign" );
  172. beginBlockAdr := 0;
  173. endBlockAdr := 0
  174. ELSE
  175. IF Unix.mprotect( adr, alloc, 7 (* READ WRITE EXEC *) ) # 0 THEN
  176. Unix.Perror( "Machine.ExpandHeap: mprotect" )
  177. END;
  178. mBlock := S.VAL( MemoryBlock, adr );
  179. mBlock.next := NIL;
  180. mBlock.startAdr := adr;
  181. mBlock.size := alloc;
  182. mBlock.beginBlockAdr := adr + BlockSize - AddrSize;
  183. ASSERT( (mBlock.beginBlockAdr + AddrSize) MOD BlockSize = 0 );
  184. s := adr + alloc - mBlock.beginBlockAdr - BlockSize;
  185. DEC( s, s MOD BlockSize );
  186. ASSERT( s >= size );
  187. mBlock.endBlockAdr := mBlock.beginBlockAdr + s;
  188. InsertMemoryBlock( mBlock );
  189. IF traceHeap THEN TraceHeap( mBlock ) END;
  190. a := mBlock.beginBlockAdr;
  191. S.PUT( a, a + AddrSize ); (* tag *)
  192. S.PUT( a + AddrSize, s - AddrSize ); (* size *)
  193. S.PUT( a + AddrSize + SizeSize, S.VAL( ADDRESS, 0 ) ); (* next *)
  194. beginBlockAdr := mBlock.beginBlockAdr;
  195. endBlockAdr := mBlock.endBlockAdr;
  196. memoryBlock := mBlock;
  197. END
  198. END ExpandHeap;
  199. (* Set memory block end address *)
  200. PROCEDURE SetMemoryBlockEndAddress*(memBlock: MemoryBlock; endBlockAdr: ADDRESS);
  201. BEGIN
  202. ASSERT(endBlockAdr >= memBlock.beginBlockAdr);
  203. memBlock.endBlockAdr := endBlockAdr
  204. END SetMemoryBlockEndAddress;
  205. PROCEDURE TraceHeap( new: MemoryBlock );
  206. VAR cur{UNTRACED}: MemoryBlock;
  207. BEGIN
  208. Trace.Ln;
  209. Trace.String( "Heap expanded" ); Trace.Ln;
  210. cur := memBlockHead;
  211. WHILE cur # NIL DO
  212. Trace.Hex( cur.startAdr, -8 ); Trace.String( " " ); Trace.Int( cur.size, 15 );
  213. IF cur = new THEN Trace.String( " (new)" ) END;
  214. Trace.Ln;
  215. cur := cur.next
  216. END
  217. END TraceHeap;
  218. (** Get first memory block and first free address, the first free address is identical to memBlockHead.endBlockAdr *)
  219. PROCEDURE GetStaticHeap*(VAR beginBlockAdr, endBlockAdr, freeBlockAdr: ADDRESS);
  220. VAR memBlockAdr: ADDRESS;
  221. BEGIN
  222. InitHeap(memBlockHead,beginBlockAdr, endBlockAdr);
  223. memBlockTail := memBlockHead;
  224. (*
  225. SYSTEM.GET(bootHeapAdr + EndBlockOfs, freeBlockAdr);
  226. ASSERT(freeBlockAdr MOD StaticBlockSize = 0);
  227. memBlockAdr := bootHeapAdr + HeaderSize + MemoryBlockOfs;
  228. memBlockHead := SYSTEM.VAL(MemoryBlock, memBlockAdr); (* this block will never be freed since there is a global reference (initBlock in Heaps.Mod) to it *)
  229. memBlockHead.startAdr := bootHeapAdr;
  230. memBlockHead.size := bootHeapSize;
  231. ASSERT(memBlockHead.beginBlockAdr MOD StaticBlockSize = 0);
  232. ASSERT((memBlockHead.endBlockAdr - memBlockHead.beginBlockAdr) MOD StaticBlockSize = 0);
  233. memBlockTail := memBlockHead;
  234. *)
  235. beginBlockAdr := memBlockHead.beginBlockAdr;
  236. endBlockAdr := memBlockHead.endBlockAdr;
  237. freeBlockAdr := beginBlockAdr;
  238. END GetStaticHeap;
  239. (* returns if an address is a currently allocated heap address *)
  240. PROCEDURE ValidHeapAddress*( p: ADDRESS ): BOOLEAN;
  241. VAR mb: MemoryBlock;
  242. BEGIN
  243. mb := memBlockHead;
  244. WHILE mb # NIL DO
  245. IF (p >= mb.beginBlockAdr) & (p <= mb.endBlockAdr) THEN RETURN TRUE END;
  246. mb := mb.next;
  247. END;
  248. RETURN FALSE
  249. END ValidHeapAddress;
  250. (** Return information on free memory in Kbytes. *)
  251. PROCEDURE GetFreeK*(VAR total, lowFree, highFree: SIZE);
  252. BEGIN
  253. (*! meaningless in Unix port, for interface compatibility only *)
  254. total := 0;
  255. lowFree := 0;
  256. highFree := 0
  257. END GetFreeK;
  258. (** Fill "size" bytes at "destAdr" with "filler". "size" must be multiple of 4. *)
  259. PROCEDURE {REALTIME} Fill32* (destAdr: ADDRESS; size: SIZE; filler: LONGINT);
  260. CODE {SYSTEM.i386}
  261. MOV EDI, [EBP+destAdr]
  262. MOV ECX, [EBP+size]
  263. MOV EAX, [EBP+filler]
  264. TEST ECX, 3
  265. JZ ok
  266. PUSH 8 ; ASSERT failure
  267. INT 3
  268. ok:
  269. SHR ECX, 2
  270. CLD
  271. REP STOSD
  272. END Fill32;
  273. PROCEDURE Portin8*(port: LONGINT; VAR val: CHAR);
  274. END Portin8;
  275. PROCEDURE Portin16*(port: LONGINT; VAR val: INTEGER);
  276. END Portin16;
  277. PROCEDURE Portin32*(port: LONGINT; VAR val: LONGINT);
  278. END Portin32;
  279. PROCEDURE Portout8*(port: LONGINT; val: CHAR);
  280. END Portout8;
  281. PROCEDURE Portout16*(port: LONGINT; val: INTEGER);
  282. END Portout16;
  283. PROCEDURE Portout32*(port: LONGINT; val: LONGINT);
  284. END Portout32;
  285. (** -- Atomic operations -- *)
  286. (** Atomic INC(x). *)
  287. PROCEDURE -AtomicInc*(VAR x: LONGINT);
  288. CODE {SYSTEM.i386}
  289. POP EAX
  290. LOCK
  291. INC DWORD [EAX]
  292. END AtomicInc;
  293. (** Atomic DEC(x). *)
  294. PROCEDURE -AtomicDec*(VAR x: LONGINT);
  295. CODE {SYSTEM.i386}
  296. POP EAX
  297. LOCK
  298. DEC DWORD [EAX]
  299. END AtomicDec;
  300. (** Atomic INC(x, y). *)
  301. PROCEDURE -AtomicAdd*(VAR x: LONGINT; y: LONGINT);
  302. CODE {SYSTEM.i386}
  303. POP EBX
  304. POP EAX
  305. LOCK
  306. ADD DWORD [EAX], EBX
  307. END AtomicAdd;
  308. (** Atomic EXCL. *)
  309. PROCEDURE AtomicExcl* (VAR s: SET; bit: LONGINT);
  310. CODE {SYSTEM.i386}
  311. MOV EAX, [EBP+bit]
  312. MOV EBX, [EBP+s]
  313. LOCK
  314. BTR [EBX], EAX
  315. END AtomicExcl;
  316. (** Atomic test-and-set. Set x = TRUE and return old value of x. *)
  317. PROCEDURE -AtomicTestSet*(VAR x: BOOLEAN): BOOLEAN;
  318. CODE {SYSTEM.i386}
  319. POP EBX
  320. MOV AL, 1
  321. XCHG [EBX], AL
  322. END AtomicTestSet;
  323. (* Atomic compare-and-swap. Set x = new if x = old and return old value of x *)
  324. PROCEDURE {REALTIME} -AtomicCAS* (VAR x: LONGINT; old, new: LONGINT): LONGINT;
  325. CODE {SYSTEM.i386}
  326. POP EBX ; new
  327. POP EAX ; old
  328. POP ECX ; address of x
  329. DB 0F0X, 00FX, 0B1X, 019X ; LOCK CMPXCHG [ECX], EBX; atomicly compare x with old and set it to new if equal
  330. END AtomicCAS;
  331. (* Return current instruction pointer *)
  332. PROCEDURE {REALTIME} CurrentPC* (): ADDRESS;
  333. CODE {SYSTEM.i386}
  334. MOV EAX, [EBP+4]
  335. END CurrentPC;
  336. (* Return current frame pointer *)
  337. PROCEDURE {REALTIME} -CurrentBP* (): ADDRESS;
  338. CODE {SYSTEM.i386}
  339. MOV EAX, EBP
  340. END CurrentBP;
  341. (* Set current frame pointer *)
  342. PROCEDURE {REALTIME} -SetBP* (bp: ADDRESS);
  343. CODE {SYSTEM.i386}
  344. POP EBP
  345. END SetBP;
  346. (* Return current stack pointer *)
  347. PROCEDURE {REALTIME} -CurrentSP* (): ADDRESS;
  348. CODE {SYSTEM.i386}
  349. MOV EAX, ESP
  350. END CurrentSP;
  351. (* Set current stack pointer *)
  352. PROCEDURE {REALTIME} -SetSP* (sp: ADDRESS);
  353. CODE {SYSTEM.i386}
  354. POP ESP
  355. END SetSP;
  356. PROCEDURE {REALTIME} -GetEAX*(): LONGINT;
  357. CODE{SYSTEM.i386}
  358. END GetEAX;
  359. PROCEDURE {REALTIME} -GetECX*(): LONGINT;
  360. CODE{SYSTEM.i386}
  361. MOV EAX,ECX
  362. END GetECX;
  363. PROCEDURE {REALTIME} -GetESI*(): LONGINT;
  364. CODE{SYSTEM.i386}
  365. MOV EAX,ESI
  366. END GetESI;
  367. PROCEDURE {REALTIME} -GetEDI*(): LONGINT;
  368. CODE{SYSTEM.i386}
  369. MOV EAX,EDI
  370. END GetEDI;
  371. PROCEDURE {REALTIME} -SetEAX*(n: LONGINT);
  372. CODE{SYSTEM.i386}
  373. POP EAX
  374. END SetEAX;
  375. PROCEDURE {REALTIME} -SetEBX*(n: LONGINT);
  376. CODE{SYSTEM.i386}
  377. POP EBX
  378. END SetEBX;
  379. PROCEDURE {REALTIME} -SetECX*(n: LONGINT);
  380. CODE{SYSTEM.i386}
  381. POP ECX
  382. END SetECX;
  383. PROCEDURE {REALTIME} -SetEDX*(n: LONGINT);
  384. CODE{SYSTEM.i386}
  385. POP EDX
  386. END SetEDX;
  387. PROCEDURE {REALTIME} -SetESI*(n: LONGINT);
  388. CODE{SYSTEM.i386}
  389. POP ESI
  390. END SetESI;
  391. PROCEDURE {REALTIME} -SetEDI*(n: LONGINT);
  392. CODE{SYSTEM.i386}
  393. POP EDI
  394. END SetEDI;
  395. PROCEDURE -GetTimer* (): HUGEINT;
  396. CODE {SYSTEM.Pentium}
  397. RDTSC ; set EDX:EAX
  398. END GetTimer;
  399. (** -- Configuration and bootstrapping -- *)
  400. (** Return the value of the configuration string specified by parameter name in parameter val. Returns val = "" if the string was not found, or has an empty value. *)
  401. PROCEDURE GetConfig* (CONST name: ARRAY OF CHAR; VAR val: ARRAY OF CHAR);
  402. VAR i, src: LONGINT; ch: CHAR;
  403. BEGIN
  404. ASSERT (name[0] # "="); (* no longer supported, use GetInit instead *)
  405. src := -1;
  406. LOOP
  407. REPEAT
  408. INC( src ); ch := config[src];
  409. IF ch = 0X THEN EXIT END;
  410. UNTIL ch > ' ';
  411. i := 0;
  412. LOOP
  413. ch := config[src];
  414. IF (ch # name[i]) OR (name[i] = 0X) THEN EXIT END;
  415. INC (i); INC (src)
  416. END;
  417. IF (ch <= ' ') & (name[i] = 0X) THEN (* found *)
  418. i := 0;
  419. REPEAT
  420. INC (src); ch := config[src]; val[i] := ch; INC (i);
  421. IF i = LEN(val) THEN val[i - 1] := 0X; RETURN END (* val too short *)
  422. UNTIL ch <= ' ';
  423. IF ch = ' ' THEN val[i -1] := 0X END;
  424. RETURN
  425. ELSE
  426. WHILE ch > ' ' DO (* skip to end of name *)
  427. INC (src); ch := config[src]
  428. END;
  429. INC (src);
  430. REPEAT (* skip to end of value *)
  431. ch := config[src]; INC (src)
  432. UNTIL ch <= ' '
  433. END
  434. END;
  435. val[0] := 0X
  436. END GetConfig;
  437. (** Convert a string to an integer. Parameter i specifies where in the string scanning should begin (usually 0 in the first call). Scanning stops at the first non-valid character, and i returns the updated position. Parameter s is the string to be scanned. The value is returned as result, or 0 if not valid. Syntax: number = ["-"] digit {digit} ["H" | "h"] . digit = "0" | ... "9" | "A" .. "F" | "a" .. "f" . If the number contains any hexdecimal letter, or if it ends in "H" or "h", it is interpreted as hexadecimal. *)
  438. PROCEDURE StrToInt* (VAR i: LONGINT; CONST s: ARRAY OF CHAR): LONGINT;
  439. VAR vd, vh, sgn, d: LONGINT; hex: BOOLEAN;
  440. BEGIN
  441. vd := 0; vh := 0; hex := FALSE;
  442. IF s[i] = "-" THEN sgn := -1; INC (i) ELSE sgn := 1 END;
  443. LOOP
  444. IF (s[i] >= "0") & (s[i] <= "9") THEN d := ORD (s[i])-ORD ("0")
  445. ELSIF (CAP (s[i]) >= "A") & (CAP (s[i]) <= "F") THEN d := ORD (CAP (s[i]))-ORD ("A") + 10; hex := TRUE
  446. ELSE EXIT
  447. END;
  448. vd := 10*vd + d; vh := 16*vh + d;
  449. INC (i)
  450. END;
  451. IF CAP (s[i]) = "H" THEN hex := TRUE; INC (i) END; (* optional H *)
  452. IF hex THEN vd := vh END;
  453. RETURN sgn * vd
  454. END StrToInt;
  455. (* function returning the number of processors that are available to Aos *)
  456. PROCEDURE NumberOfProcessors*( ): LONGINT;
  457. BEGIN
  458. RETURN 1
  459. END NumberOfProcessors;
  460. (*! non portable code, for native Aos only *)
  461. PROCEDURE SetNumberOfProcessors*( num: LONGINT );
  462. BEGIN
  463. (* numberOfProcessors := num; *)
  464. END SetNumberOfProcessors;
  465. (* function for changing byte order *)
  466. PROCEDURE ChangeByteOrder* (n: LONGINT): LONGINT;
  467. CODE { SYSTEM.i486 }
  468. MOV EAX, [EBP+n] ; load n in eax
  469. BSWAP EAX ; swap byte order
  470. END ChangeByteOrder;
  471. (* Send and print character *)
  472. PROCEDURE TraceChar *(c: CHAR);
  473. BEGIN
  474. Trace.Char( c )
  475. END TraceChar;
  476. (** CPU identification *)
  477. PROCEDURE CPUID*( VAR vendor: Vendor; VAR version: LONGINT; VAR features1,features2: SET );
  478. CODE {SYSTEM.i386, SYSTEM.Pentium}
  479. MOV EAX, 0
  480. CPUID
  481. CMP EAX, 0
  482. JNE ok
  483. MOV ESI, [EBP+vendor]
  484. MOV [ESI], AL ; AL = 0
  485. MOV ESI, [EBP+version]
  486. MOV [ESI], EAX ; EAX = 0
  487. MOV ESI, [EBP+features1]
  488. MOV [ESI], EAX
  489. MOV ESI, [EBP+features2]
  490. MOV [ESI], EAX
  491. JMP end
  492. ok:
  493. MOV ESI, [EBP+vendor]
  494. MOV [ESI], EBX
  495. MOV [ESI+4], EDX
  496. MOV [ESI+8], ECX
  497. MOV BYTE [ESI+12], 0
  498. MOV EAX, 1
  499. CPUID
  500. MOV ESI, [EBP+version]
  501. MOV [ESI], EAX
  502. MOV ESI, [EBP+features1]
  503. MOV [ESI], EDX
  504. MOV ESI, [EBP+features2]
  505. MOV [ESI], ECX
  506. end:
  507. END CPUID;
  508. (* If the CPUID instruction is supported, the ID flag (bit 21) of the EFLAGS register is r/w *)
  509. PROCEDURE CpuIdSupported( ) : BOOLEAN;
  510. CODE {SYSTEM.i386}
  511. PUSHFD ; save EFLAGS
  512. POP EAX ; store EFLAGS in EAX
  513. MOV EBX, EAX ; save EBX for later testing
  514. XOR EAX, 00200000H ; toggle bit 21
  515. PUSH EAX ; push to stack
  516. POPFD ; save changed EAX to EFLAGS
  517. PUSHFD ; push EFLAGS to TOS
  518. POP EAX ; store EFLAGS in EAX
  519. CMP EAX, EBX ; see if bit 21 has changed
  520. SETNE AL; ; return TRUE if bit 21 has changed, FALSE otherwise
  521. END CpuIdSupported;
  522. (* setup MMX, SSE and SSE2..SSE5 and AVX extension *)
  523. PROCEDURE SetupSSE2Ext;
  524. CONST
  525. MMXFlag=23;(*IN features from EBX*)
  526. FXSRFlag = 24;
  527. SSEFlag = 25;
  528. SSE2Flag = 26;
  529. SSE3Flag = 0; (*IN features2 from ECX*) (*PH 04/11*)
  530. SSSE3Flag =9;
  531. SSE41Flag =19;
  532. SSE42Flag =20;
  533. SSE5Flag = 11;
  534. AVXFlag = 28;
  535. BEGIN
  536. MMXSupport := MMXFlag IN features;
  537. SSESupport := SSEFlag IN features;
  538. SSE2Support := SSESupport & (SSE2Flag IN features);
  539. SSE3Support := SSE2Support & (SSE3Flag IN features2);
  540. SSSE3Support := SSE3Support & (SSSE3Flag IN features2); (* PH 04/11*)
  541. SSE41Support := SSE3Support & (SSE41Flag IN features2);
  542. SSE42Support := SSE3Support & (SSE42Flag IN features2);
  543. SSE5Support := SSE3Support & (SSE5Flag IN features2);
  544. AVXSupport := SSE3Support & (AVXFlag IN features2);
  545. IF SSESupport & (FXSRFlag IN features) THEN
  546. (* InitSSE(); *) (*! not privileged mode in Windows and Unix, not allowed *)
  547. END;
  548. END SetupSSE2Ext;
  549. (** -- Processor initialization -- *)
  550. PROCEDURE -SetFCR( s: SET );
  551. CODE {SYSTEM.i386, SYSTEM.FPU}
  552. FLDCW [ESP] ; parameter s
  553. POP EAX
  554. END SetFCR;
  555. PROCEDURE -FCR( ): SET;
  556. CODE {SYSTEM.i386, SYSTEM.FPU}
  557. PUSH 0
  558. FNSTCW [ESP]
  559. FWAIT
  560. POP EAX
  561. END FCR;
  562. PROCEDURE -InitFPU;
  563. CODE {SYSTEM.i386, SYSTEM.FPU}
  564. FNINIT
  565. END InitFPU;
  566. (** Setup FPU control word of current processor. *)
  567. PROCEDURE SetupFPU*;
  568. BEGIN
  569. InitFPU; SetFCR( fcr )
  570. END SetupFPU;
  571. (* Initialize locks. *)
  572. PROCEDURE InitLocks;
  573. VAR i: LONGINT; a: ADDRESS;
  574. BEGIN
  575. i := 0;
  576. WHILE i < MaxLocks DO
  577. TRACE(i);
  578. mtx[i] := Unix.MtxInit(0); INC( i ) END;
  579. END InitLocks;
  580. PROCEDURE CleanupLocks*;
  581. VAR i: LONGINT;
  582. BEGIN
  583. i := 0;
  584. WHILE i < MaxLocks DO Unix.MtxDestroy( mtx[i] ); INC( i ) END;
  585. END CleanupLocks;
  586. (** Acquire a spin-lock. *)
  587. PROCEDURE Acquire*( level: LONGINT ); (* non reentrant lock *)
  588. BEGIN
  589. Unix.MtxLock( mtx[level] );
  590. END Acquire;
  591. (** Release a spin-lock. *)
  592. PROCEDURE Release*( level: LONGINT );
  593. BEGIN
  594. Unix.MtxUnlock( mtx[level] );
  595. END Release;
  596. PROCEDURE AcquireGC*( ): BOOLEAN;
  597. VAR res: BOOLEAN;
  598. BEGIN
  599. Unix.MtxLock( mtx[GC] );
  600. IF ~GCacquired THEN GCacquired := TRUE; res := TRUE ELSE res := FALSE END;
  601. Unix.MtxUnlock( mtx[GC] );
  602. RETURN res
  603. END AcquireGC;
  604. (** Release a spin-lock. *)
  605. PROCEDURE ReleaseGC*;
  606. BEGIN
  607. Unix.MtxLock( mtx[GC] );
  608. GCacquired := FALSE;
  609. Unix.MtxUnlock( mtx[GC] )
  610. END ReleaseGC;
  611. PROCEDURE Shutdown*( reboot: BOOLEAN );
  612. VAR ignore: LONGINT;
  613. BEGIN
  614. ignore := Unix.close( logfile );
  615. IF reboot THEN Unix.exit( 0 ) ELSE Unix.exit( 1 ) END;
  616. END Shutdown;
  617. (* Set machine-dependent parameter gcThreshold *)
  618. PROCEDURE SetGCParams*;
  619. BEGIN
  620. gcThreshold := 10*1024*1024; (* 10 MB *)
  621. END SetGCParams;
  622. (* expand heap by allocating a new memory block - called during GC *)
  623. PROCEDURE InitHeap(VAR memoryBlock: MemoryBlock; VAR beginBlockAdr, endBlockAdr: ADDRESS);
  624. CONST MemBlockHeaderSize = BlockHeaderSize + RecordDescSize + BlockHeaderSize;
  625. TypeDescOffset = -AddressSize; (* see Heaps.Mod *)
  626. HeapBlockOffset = - 2 * AddressSize; (* see Heaps.Mod *)
  627. DataAdrOffset = AddressSize; (* offset of dataAdr field in Heaps.HeapBlockDesc *)
  628. VAR memDescSize, memBlkSize, alignOffset: SIZE; adr, memHeaderAdr, memBlockAdr, memBlockHeadAdr: ADDRESS;
  629. memBlock {UNTRACED}: MemoryBlock; i: LONGINT; ch: CHAR; h: HUGEINT; size: LONGINT;
  630. initVal: LONGINT;
  631. BEGIN
  632. (*
  633. HeapBlockPtr -- bootHeapAdr
  634. 4 Type
  635. 8 Mark
  636. 12 DataAdr
  637. 16 Size
  638. 20 HeapBlockPtr
  639. 24 Type
  640. 28 next -- MemoryBlock
  641. 32 startAdr
  642. 36 size
  643. 40 beginBlockAdr
  644. 44 endBlockAdr
  645. 48 --beginBlockAdr
  646. ....
  647. --endBlockAdr
  648. *)
  649. size := 1;
  650. memDescSize := MemBlockHeaderSize + SIZEOF(MemoryBlockDesc);
  651. INC(memDescSize, (-memDescSize) MOD StaticBlockSize); (* round up to multiple of StaticBlockSize *)
  652. INC(size, (-size) MOD StaticBlockSize); (* round up to multiple of StaticBlockSize *)
  653. memBlkSize := memDescSize + size + StaticBlockSize; (* add StaticBlockSize to account for alignments different from multiples of StaticBlockSize *)
  654. IF memBlkSize < MemBlockSize THEN memBlkSize := MemBlockSize END; (* MemBlockSize implicitly multiple of StaticBlockSize *)
  655. initVal := 8*1024*1024;
  656. TRACE(initVal, adr);
  657. IF Unix.posix_memalign( adr, Unix.PageSize, initVal ) # 0 THEN
  658. Unix.Perror( "Machine.ExpandHeap: posix_memalign" );
  659. beginBlockAdr := 0;
  660. endBlockAdr := 0
  661. ELSE
  662. TRACE(adr, initVal);
  663. IF Unix.mprotect( adr, initVal, 7 (* READ WRITE EXEC *) ) # 0 THEN
  664. Unix.Perror( "Machine.ExpandHeap: mprotect" )
  665. END;
  666. TRACE(adr, initVal);
  667. END;
  668. (*
  669. adr := Kernel32.VirtualAlloc(initVal, memBlkSize, {Kernel32.MEMCommit, Kernel32.MEMReserve}, {Kernel32.PageExecuteReadWrite});
  670. IF adr = NilVal THEN (* allocation failed *)
  671. adr := Kernel32.VirtualAlloc(NilVal, memBlkSize, {Kernel32.MEMCommit}, {Kernel32.PageExecuteReadWrite});
  672. END;
  673. *)
  674. Trace.String("first heap block intVal "); Trace.Int(initVal,1); Trace.Ln;
  675. Trace.String("first heap block memBlkSize "); Trace.Int(memBlkSize,1); Trace.Ln;
  676. Trace.String("first heap block adr "); Trace.Int(adr,1); Trace.Ln;
  677. ASSERT(adr # 0);
  678. alignOffset := (-adr) MOD StaticBlockSize;
  679. memHeaderAdr := adr + alignOffset; (* force alignment of memory block start *)
  680. memBlockAdr := memHeaderAdr + MemBlockHeaderSize;
  681. memBlock := S.VAL(MemoryBlock, memBlockAdr);
  682. beginBlockAdr := memHeaderAdr + memDescSize;
  683. memBlock.next := NIL;
  684. memBlock.startAdr := adr;
  685. memBlock.size := memBlkSize;
  686. beginBlockAdr := memHeaderAdr + memDescSize;
  687. endBlockAdr := adr + memBlkSize - alignOffset;
  688. memBlock.beginBlockAdr := beginBlockAdr;
  689. memBlock.endBlockAdr := endBlockAdr;
  690. (* correct fields *)
  691. S.PUT(memBlockAdr + HeapBlockOffset, memHeaderAdr + BlockHeaderSize); (* set reference to header part of memory block correctly *)
  692. S.PUT(memBlockAdr + TypeDescOffset, 0); (* set type descriptor field of memory block to default value, memory blocks are not traced by GC *)
  693. S.PUT(memHeaderAdr + BlockHeaderSize + DataAdrOffset, memBlockAdr); (* set dataAdr of RecordBlockDesc to correct value *)
  694. S.PUT(memHeaderAdr + BlockHeaderSize + 2*AddressSize , memBlkSize);
  695. (* fill first heap block *)
  696. S.PUT(beginBlockAdr,0);
  697. S.PUT(beginBlockAdr+AddressSize,0);
  698. S.PUT(beginBlockAdr+2*AddressSize,0);
  699. S.PUT(beginBlockAdr+3*AddressSize,beginBlockAdr+7*AddressSize);
  700. S.PUT(beginBlockAdr+4*AddressSize,endBlockAdr-beginBlockAdr);
  701. S.PUT(beginBlockAdr+5*AddressSize,beginBlockAdr+2*AddressSize);
  702. S.PUT(beginBlockAdr+6*AddressSize,0);
  703. memoryBlock := memBlock;
  704. TRACE("InitHeap done");
  705. END InitHeap;
  706. (*
  707. PROCEDURE InitHeap;
  708. VAR heapAdr, firstBlock: ADDRESS; size: SIZE;
  709. BEGIN
  710. Unix.Dlsym( 0, "heapAdr", ADDRESSOF( heapAdr ) );
  711. Unix.Dlsym( 0, "heapSize", ADDRESSOF( size ) );
  712. firstBlock := heapAdr + ((-heapAdr - AddrSize) MOD BlockSize);
  713. size := heapAdr + size - BlockSize - firstBlock; DEC( size, size MOD BlockSize + BlockSize );
  714. firstMemBlock.next := NIL;
  715. firstMemBlock.startAdr := heapAdr;
  716. firstMemBlock.beginBlockAdr := firstBlock;
  717. firstMemBlock.endBlockAdr := firstBlock + size;
  718. firstMemBlock.size := size;
  719. memBlockHead := S.VAL( MemoryBlock, ADDRESSOF( firstMemBlock ) );
  720. memBlockTail := memBlockHead;
  721. END InitHeap;
  722. *)
  723. PROCEDURE InitConfig;
  724. VAR a: ADDRESS; i: LONGINT; c: CHAR;
  725. BEGIN
  726. a := Unix.getenv( ADDRESSOF( "AOSCONFIG" ) );
  727. IF a = 0 THEN config := DefaultConfig
  728. ELSE
  729. REPEAT
  730. S.GET( a, c ); INC( a ); config[i] := c; INC( i )
  731. UNTIL c = 0X
  732. END
  733. END InitConfig;
  734. PROCEDURE UpdateTicks*;
  735. BEGIN
  736. ticks := SHORT( (GetTimer() - timer0) DIV (mhz * 1000) );
  737. END UpdateTicks;
  738. PROCEDURE InitThreads;
  739. VAR res: BOOLEAN;
  740. BEGIN
  741. res := Unix.ThrInitialize( prioLow, prioHigh );
  742. IF ~res THEN
  743. Trace.StringLn( "Machine.InitThreads: no threads support in boot environment. teminating" );
  744. Unix.exit( 1 )
  745. END;
  746. IF Glue.debug # {} THEN
  747. Trace.String( "Threads initialized, priorities low, high: " );
  748. Trace.Int( prioLow, 0 ); Trace.String( ", " ); Trace.Int( prioHigh, 0 );
  749. Trace.Ln
  750. END
  751. END InitThreads;
  752. PROCEDURE CPUSpeed;
  753. VAR t0, t1: HUGEINT;
  754. BEGIN
  755. t0 := GetTimer(); Unix.ThrSleep( 100 ); t1 := GetTimer();
  756. mhz := (t1 - t0) DIV 100000;
  757. IF Glue.debug # {} THEN
  758. Trace.String( "CPU speed: ~" ); Trace.Int( SHORT( mhz ), 0); Trace.String( " MHz" ); Trace.Ln
  759. END
  760. END CPUSpeed;
  761. PROCEDURE Log( c: CHAR );
  762. VAR ignore: LONGINT;
  763. BEGIN
  764. ignore := Unix.write( 1, ADDRESSOF( c ), 1 );
  765. ignore := Unix.write( logfile, ADDRESSOF( c ), 1 );
  766. END Log;
  767. PROCEDURE LogFileOnly( c: CHAR );
  768. VAR ignore: LONGINT;
  769. BEGIN
  770. ignore := Unix.write( logfile, ADDRESSOF( c ), 1 );
  771. END LogFileOnly;
  772. PROCEDURE InitLog;
  773. VAR name, cmd: ARRAY 32 OF CHAR; pid, i: LONGINT;
  774. BEGIN
  775. name := "AOS.xxxxx.Log";
  776. pid := Unix.getpid(); i := 8;
  777. REPEAT
  778. name[i] := CHR( pid MOD 10 + ORD( '0' ) ); DEC( i );
  779. pid := pid DIV 10;
  780. UNTIL i = 3;
  781. logfile := Unix.open( ADDRESSOF( name ), Unix.rdwr + Unix.creat + Unix.trunc, Unix.rwrwr );
  782. IF Unix.argc > 2 THEN
  783. Unix.GetArgval( "-x", cmd );
  784. IF cmd # "" THEN SilentLog; standaloneAppl := TRUE
  785. ELSE VerboseLog
  786. END
  787. ELSE
  788. VerboseLog
  789. END
  790. END InitLog;
  791. PROCEDURE SilentLog*;
  792. BEGIN
  793. Trace.Char := LogFileOnly
  794. END SilentLog;
  795. PROCEDURE VerboseLog*;
  796. BEGIN
  797. Trace.Char := Log
  798. END VerboseLog;
  799. PROCEDURE Append( VAR a: ARRAY OF CHAR; CONST this: ARRAY OF CHAR );
  800. VAR i, j: LONGINT;
  801. BEGIN
  802. i := 0; j := 0;
  803. WHILE a[i] # 0X DO INC( i ) END;
  804. WHILE (i < LEN( a ) - 1) & (this[j] # 0X) DO a[i] := this[j]; INC( i ); INC( j ) END;
  805. a[i] := 0X
  806. END Append;
  807. PROCEDURE Init;
  808. VAR vendor: Vendor; ver: LONGINT;
  809. BEGIN
  810. TRACE("Machine Init Start");
  811. (*
  812. Unix.Dlsym( 0, "Unix.ThrInitialize", ADDRESSOF( Unix.ThrInitialize ) );
  813. Unix.Dlsym( 0, "Unix.MtxInit", ADDRESSOF( Unix.MtxInit ) );
  814. Unix.Dlsym( 0, "Unix.MtxDestroy", ADDRESSOF( Unix.MtxDestroy ) );
  815. Unix.Dlsym( 0, "Unix.MtxLock", ADDRESSOF( Unix.MtxLock ) );
  816. Unix.Dlsym( 0, "Unix.MtxUnlock", ADDRESSOF( Unix.MtxUnlock ) );
  817. Unix.Dlsym( 0, "conInit", ADDRESSOF( conInit ) );
  818. Unix.Dlsym( 0, "conDestroy", ADDRESSOF( conDestroy ) );
  819. Unix.Dlsym( 0, "conWait", ADDRESSOF( conWait ) );
  820. Unix.Dlsym( 0, "conSignal", ADDRESSOF( conSignal ) );
  821. Unix.Dlsym( 0, "thrSleep", ADDRESSOF( thrSleep ) );
  822. Unix.Dlsym( 0, "thrThis", ADDRESSOF( thrThis ) );
  823. *)
  824. standaloneAppl := FALSE;
  825. COPY( Unix.Version, version ); Append( version, Version );
  826. timer0 := GetTimer( ); ticks := 0;
  827. InitThreads;
  828. TRACE(0);
  829. InitLocks;
  830. TRACE(1);
  831. traceHeap := 1 IN Glue.debug;
  832. InitConfig;
  833. TRACE(2);
  834. InitLog;
  835. TRACE(3);
  836. CPUSpeed;
  837. TRACE(4);
  838. IF CpuIdSupported() THEN
  839. CPUID( vendor, ver, features, features2 ); SetupSSE2Ext
  840. END;
  841. TRACE(5);
  842. fcr := (FCR() - {0,2,3,10,11}) + {0..5,8,9}; (* default FCR RC=00B *)
  843. TRACE("Machine Init End");
  844. END Init;
  845. PROCEDURE {INITIAL} Init0;
  846. BEGIN
  847. Init;
  848. END Init0;
  849. END Machine.
  850. (*
  851. 03.03.1998 pjm First version
  852. 30.06.1999 pjm ProcessorID moved to AosProcessor
  853. *)
  854. (**
  855. Notes
  856. This module defines an interface to the boot environment of the system. The facilities provided here are only intended for the lowest levels of the system, and should never be directly imported by user modules (exceptions are noted below). They are highly specific to the system hardware and firmware architecture.
  857. Typically a machine has some type of firmware that performs initial testing and setup of the system. The firmware initiates the operating system bootstrap loader, which loads the boot file. This module is the first module in the statically linked boot file that gets control.
  858. There are two more-or-less general procedures in this module: GetConfig and StrToInt. GetConfig is used to query low-level system settings, e.g., the location of the boot file system. StrToInt is a utility procedure that parses numeric strings.
  859. Config strings:
  860. ExtMemSize Specifies size of extended memory (above 1MB) in MB. This value is not checked for validity. Setting it false may cause the system to fail, possible after running for some time. The memory size is usually detected automatically, but if the detection does not work for some reason, or if you want to limit the amount of memory detected, this string can be set. For example, if the machine has 64MB of memory, this value can be set as ExtMemSize="63".
  861. *)