lgc.c 35 KB

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  1. /*
  2. ** $Id: lgc.c,v 2.202 2015/01/16 16:54:37 roberto Exp roberto $
  3. ** Garbage Collector
  4. ** See Copyright Notice in lua.h
  5. */
  6. #define lgc_c
  7. #define LUA_CORE
  8. #include "lprefix.h"
  9. #include <string.h>
  10. #include "lua.h"
  11. #include "ldebug.h"
  12. #include "ldo.h"
  13. #include "lfunc.h"
  14. #include "lgc.h"
  15. #include "lmem.h"
  16. #include "lobject.h"
  17. #include "lstate.h"
  18. #include "lstring.h"
  19. #include "ltable.h"
  20. #include "ltm.h"
  21. /*
  22. ** internal state for collector while inside the atomic phase. The
  23. ** collector should never be in this state while running regular code.
  24. */
  25. #define GCSinsideatomic (GCSpause + 1)
  26. /*
  27. ** cost of sweeping one element (the size of a small object divided
  28. ** by some adjust for the sweep speed)
  29. */
  30. #define GCSWEEPCOST ((sizeof(TString) + 4) / 4)
  31. /* maximum number of elements to sweep in each single step */
  32. #define GCSWEEPMAX (cast_int((GCSTEPSIZE / GCSWEEPCOST) / 4))
  33. /* cost of calling one finalizer */
  34. #define GCFINALIZECOST GCSWEEPCOST
  35. /*
  36. ** macro to adjust 'stepmul': 'stepmul' is actually used like
  37. ** 'stepmul / STEPMULADJ' (value chosen by tests)
  38. */
  39. #define STEPMULADJ 200
  40. /*
  41. ** macro to adjust 'pause': 'pause' is actually used like
  42. ** 'pause / PAUSEADJ' (value chosen by tests)
  43. */
  44. #define PAUSEADJ 100
  45. /*
  46. ** 'makewhite' erases all color bits then sets only the current white
  47. ** bit
  48. */
  49. #define maskcolors (~(bitmask(BLACKBIT) | WHITEBITS))
  50. #define makewhite(g,x) \
  51. (x->marked = cast_byte((x->marked & maskcolors) | luaC_white(g)))
  52. #define white2gray(x) resetbits(x->marked, WHITEBITS)
  53. #define black2gray(x) resetbit(x->marked, BLACKBIT)
  54. #define valiswhite(x) (iscollectable(x) && iswhite(gcvalue(x)))
  55. #define checkdeadkey(n) lua_assert(!ttisdeadkey(gkey(n)) || ttisnil(gval(n)))
  56. #define checkconsistency(obj) \
  57. lua_longassert(!iscollectable(obj) || righttt(obj))
  58. #define markvalue(g,o) { checkconsistency(o); \
  59. if (valiswhite(o)) reallymarkobject(g,gcvalue(o)); }
  60. #define markobject(g,t) \
  61. { if ((t) && iswhite(t)) reallymarkobject(g, obj2gco(t)); }
  62. static void reallymarkobject (global_State *g, GCObject *o);
  63. /*
  64. ** {======================================================
  65. ** Generic functions
  66. ** =======================================================
  67. */
  68. /*
  69. ** one after last element in a hash array
  70. */
  71. #define gnodelast(h) gnode(h, cast(size_t, sizenode(h)))
  72. /*
  73. ** link collectable object 'o' into list pointed by 'p'
  74. */
  75. #define linkgclist(o,p) ((o)->gclist = (p), (p) = obj2gco(o))
  76. /*
  77. ** if key is not marked, mark its entry as dead (therefore removing it
  78. ** from the table)
  79. */
  80. static void removeentry (Node *n) {
  81. lua_assert(ttisnil(gval(n)));
  82. if (valiswhite(gkey(n)))
  83. setdeadvalue(wgkey(n)); /* unused and unmarked key; remove it */
  84. }
  85. /*
  86. ** tells whether a key or value can be cleared from a weak
  87. ** table. Non-collectable objects are never removed from weak
  88. ** tables. Strings behave as 'values', so are never removed too. for
  89. ** other objects: if really collected, cannot keep them; for objects
  90. ** being finalized, keep them in keys, but not in values
  91. */
  92. static int iscleared (global_State *g, const TValue *o) {
  93. if (!iscollectable(o)) return 0;
  94. else if (ttisstring(o)) {
  95. markobject(g, tsvalue(o)); /* strings are 'values', so are never weak */
  96. return 0;
  97. }
  98. else return iswhite(gcvalue(o));
  99. }
  100. /*
  101. ** barrier that moves collector forward, that is, mark the white object
  102. ** being pointed by a black object. (If in sweep phase, clear the black
  103. ** object to white [sweep it] to avoid other barrier calls for this
  104. ** same object.)
  105. */
  106. void luaC_barrier_ (lua_State *L, GCObject *o, GCObject *v) {
  107. global_State *g = G(L);
  108. lua_assert(isblack(o) && iswhite(v) && !isdead(g, v) && !isdead(g, o));
  109. if (keepinvariant(g)) /* must keep invariant? */
  110. reallymarkobject(g, v); /* restore invariant */
  111. else { /* sweep phase */
  112. lua_assert(issweepphase(g));
  113. makewhite(g, o); /* mark main obj. as white to avoid other barriers */
  114. }
  115. }
  116. /*
  117. ** barrier that moves collector backward, that is, mark the black object
  118. ** pointing to a white object as gray again.
  119. */
  120. void luaC_barrierback_ (lua_State *L, Table *t) {
  121. global_State *g = G(L);
  122. lua_assert(isblack(t) && !isdead(g, t));
  123. black2gray(t); /* make table gray (again) */
  124. linkgclist(t, g->grayagain);
  125. }
  126. /*
  127. ** barrier for assignments to closed upvalues. Because upvalues are
  128. ** shared among closures, it is impossible to know the color of all
  129. ** closures pointing to it. So, we assume that the object being assigned
  130. ** must be marked.
  131. */
  132. void luaC_upvalbarrier_ (lua_State *L, UpVal *uv) {
  133. global_State *g = G(L);
  134. GCObject *o = gcvalue(uv->v);
  135. lua_assert(!upisopen(uv)); /* ensured by macro luaC_upvalbarrier */
  136. if (keepinvariant(g))
  137. markobject(g, o);
  138. }
  139. void luaC_fix (lua_State *L, GCObject *o) {
  140. global_State *g = G(L);
  141. lua_assert(g->allgc == o); /* object must be 1st in 'allgc' list! */
  142. white2gray(o); /* they will be gray forever */
  143. g->allgc = o->next; /* remove object from 'allgc' list */
  144. o->next = g->fixedgc; /* link it to 'fixedgc' list */
  145. g->fixedgc = o;
  146. }
  147. /*
  148. ** create a new collectable object (with given type and size) and link
  149. ** it to 'allgc' list.
  150. */
  151. GCObject *luaC_newobj (lua_State *L, int tt, size_t sz) {
  152. global_State *g = G(L);
  153. GCObject *o = cast(GCObject *, luaM_newobject(L, novariant(tt), sz));
  154. o->marked = luaC_white(g);
  155. o->tt = tt;
  156. o->next = g->allgc;
  157. g->allgc = o;
  158. return o;
  159. }
  160. /* }====================================================== */
  161. /*
  162. ** {======================================================
  163. ** Mark functions
  164. ** =======================================================
  165. */
  166. /*
  167. ** mark an object. Userdata, strings, and closed upvalues are visited
  168. ** and turned black here. Other objects are marked gray and added
  169. ** to appropriate list to be visited (and turned black) later. (Open
  170. ** upvalues are already linked in 'headuv' list.)
  171. */
  172. static void reallymarkobject (global_State *g, GCObject *o) {
  173. reentry:
  174. white2gray(o);
  175. switch (o->tt) {
  176. case LUA_TSHRSTR: {
  177. gray2black(o);
  178. g->GCmemtrav += sizelstring(gco2ts(o)->shrlen);
  179. break;
  180. }
  181. case LUA_TLNGSTR: {
  182. gray2black(o);
  183. g->GCmemtrav += sizelstring(gco2ts(o)->u.lnglen);
  184. break;
  185. }
  186. case LUA_TUSERDATA: {
  187. TValue uvalue;
  188. markobject(g, gco2u(o)->metatable); /* mark its metatable */
  189. gray2black(o);
  190. g->GCmemtrav += sizeudata(gco2u(o));
  191. getuservalue(g->mainthread, gco2u(o), &uvalue);
  192. if (valiswhite(&uvalue)) { /* markvalue(g, &uvalue); */
  193. o = gcvalue(&uvalue);
  194. goto reentry;
  195. }
  196. break;
  197. }
  198. case LUA_TLCL: {
  199. linkgclist(gco2lcl(o), g->gray);
  200. break;
  201. }
  202. case LUA_TCCL: {
  203. linkgclist(gco2ccl(o), g->gray);
  204. break;
  205. }
  206. case LUA_TTABLE: {
  207. linkgclist(gco2t(o), g->gray);
  208. break;
  209. }
  210. case LUA_TTHREAD: {
  211. linkgclist(gco2th(o), g->gray);
  212. break;
  213. }
  214. case LUA_TPROTO: {
  215. linkgclist(gco2p(o), g->gray);
  216. break;
  217. }
  218. default: lua_assert(0); break;
  219. }
  220. }
  221. /*
  222. ** mark metamethods for basic types
  223. */
  224. static void markmt (global_State *g) {
  225. int i;
  226. for (i=0; i < LUA_NUMTAGS; i++)
  227. markobject(g, g->mt[i]);
  228. }
  229. /*
  230. ** mark all objects in list of being-finalized
  231. */
  232. static void markbeingfnz (global_State *g) {
  233. GCObject *o;
  234. for (o = g->tobefnz; o != NULL; o = o->next)
  235. markobject(g, o);
  236. }
  237. /*
  238. ** Mark all values stored in marked open upvalues from non-marked threads.
  239. ** (Values from marked threads were already marked when traversing the
  240. ** thread.) Remove from the list threads that no longer have upvalues and
  241. ** not-marked threads.
  242. */
  243. static void remarkupvals (global_State *g) {
  244. lua_State *thread;
  245. lua_State **p = &g->twups;
  246. while ((thread = *p) != NULL) {
  247. lua_assert(!isblack(thread)); /* threads are never black */
  248. if (isgray(thread) && thread->openupval != NULL)
  249. p = &thread->twups; /* keep marked thread with upvalues in the list */
  250. else { /* thread is not marked or without upvalues */
  251. UpVal *uv;
  252. *p = thread->twups; /* remove thread from the list */
  253. thread->twups = thread; /* mark that it is out of list */
  254. for (uv = thread->openupval; uv != NULL; uv = uv->u.open.next) {
  255. if (uv->u.open.touched) {
  256. markvalue(g, uv->v); /* remark upvalue's value */
  257. uv->u.open.touched = 0;
  258. }
  259. }
  260. }
  261. }
  262. }
  263. /*
  264. ** mark root set and reset all gray lists, to start a new collection
  265. */
  266. static void restartcollection (global_State *g) {
  267. g->gray = g->grayagain = NULL;
  268. g->weak = g->allweak = g->ephemeron = NULL;
  269. markobject(g, g->mainthread);
  270. markvalue(g, &g->l_registry);
  271. markmt(g);
  272. markbeingfnz(g); /* mark any finalizing object left from previous cycle */
  273. }
  274. /* }====================================================== */
  275. /*
  276. ** {======================================================
  277. ** Traverse functions
  278. ** =======================================================
  279. */
  280. /*
  281. ** Traverse a table with weak values and link it to proper list. During
  282. ** propagate phase, keep it in 'grayagain' list, to be revisited in the
  283. ** atomic phase. In the atomic phase, if table has any white value,
  284. ** put it in 'weak' list, to be cleared.
  285. */
  286. static void traverseweakvalue (global_State *g, Table *h) {
  287. Node *n, *limit = gnodelast(h);
  288. /* if there is array part, assume it may have white values (it is not
  289. worth traversing it now just to check) */
  290. int hasclears = (h->sizearray > 0);
  291. for (n = gnode(h, 0); n < limit; n++) { /* traverse hash part */
  292. checkdeadkey(n);
  293. if (ttisnil(gval(n))) /* entry is empty? */
  294. removeentry(n); /* remove it */
  295. else {
  296. lua_assert(!ttisnil(gkey(n)));
  297. markvalue(g, gkey(n)); /* mark key */
  298. if (!hasclears && iscleared(g, gval(n))) /* is there a white value? */
  299. hasclears = 1; /* table will have to be cleared */
  300. }
  301. }
  302. if (g->gcstate == GCSpropagate)
  303. linkgclist(h, g->grayagain); /* must retraverse it in atomic phase */
  304. else if (hasclears)
  305. linkgclist(h, g->weak); /* has to be cleared later */
  306. }
  307. /*
  308. ** Traverse an ephemeron table and link it to proper list. Returns true
  309. ** iff any object was marked during this traversal (which implies that
  310. ** convergence has to continue). During propagation phase, keep table
  311. ** in 'grayagain' list, to be visited again in the atomic phase. In
  312. ** the atomic phase, if table has any white->white entry, it has to
  313. ** be revisited during ephemeron convergence (as that key may turn
  314. ** black). Otherwise, if it has any white key, table has to be cleared
  315. ** (in the atomic phase).
  316. */
  317. static int traverseephemeron (global_State *g, Table *h) {
  318. int marked = 0; /* true if an object is marked in this traversal */
  319. int hasclears = 0; /* true if table has white keys */
  320. int hasww = 0; /* true if table has entry "white-key -> white-value" */
  321. Node *n, *limit = gnodelast(h);
  322. unsigned int i;
  323. /* traverse array part */
  324. for (i = 0; i < h->sizearray; i++) {
  325. if (valiswhite(&h->array[i])) {
  326. marked = 1;
  327. reallymarkobject(g, gcvalue(&h->array[i]));
  328. }
  329. }
  330. /* traverse hash part */
  331. for (n = gnode(h, 0); n < limit; n++) {
  332. checkdeadkey(n);
  333. if (ttisnil(gval(n))) /* entry is empty? */
  334. removeentry(n); /* remove it */
  335. else if (iscleared(g, gkey(n))) { /* key is not marked (yet)? */
  336. hasclears = 1; /* table must be cleared */
  337. if (valiswhite(gval(n))) /* value not marked yet? */
  338. hasww = 1; /* white-white entry */
  339. }
  340. else if (valiswhite(gval(n))) { /* value not marked yet? */
  341. marked = 1;
  342. reallymarkobject(g, gcvalue(gval(n))); /* mark it now */
  343. }
  344. }
  345. /* link table into proper list */
  346. if (g->gcstate == GCSpropagate)
  347. linkgclist(h, g->grayagain); /* must retraverse it in atomic phase */
  348. else if (hasww) /* table has white->white entries? */
  349. linkgclist(h, g->ephemeron); /* have to propagate again */
  350. else if (hasclears) /* table has white keys? */
  351. linkgclist(h, g->allweak); /* may have to clean white keys */
  352. return marked;
  353. }
  354. static void traversestrongtable (global_State *g, Table *h) {
  355. Node *n, *limit = gnodelast(h);
  356. unsigned int i;
  357. for (i = 0; i < h->sizearray; i++) /* traverse array part */
  358. markvalue(g, &h->array[i]);
  359. for (n = gnode(h, 0); n < limit; n++) { /* traverse hash part */
  360. checkdeadkey(n);
  361. if (ttisnil(gval(n))) /* entry is empty? */
  362. removeentry(n); /* remove it */
  363. else {
  364. lua_assert(!ttisnil(gkey(n)));
  365. markvalue(g, gkey(n)); /* mark key */
  366. markvalue(g, gval(n)); /* mark value */
  367. }
  368. }
  369. }
  370. static lu_mem traversetable (global_State *g, Table *h) {
  371. const char *weakkey, *weakvalue;
  372. const TValue *mode = gfasttm(g, h->metatable, TM_MODE);
  373. markobject(g, h->metatable);
  374. if (mode && ttisstring(mode) && /* is there a weak mode? */
  375. ((weakkey = strchr(svalue(mode), 'k')),
  376. (weakvalue = strchr(svalue(mode), 'v')),
  377. (weakkey || weakvalue))) { /* is really weak? */
  378. black2gray(h); /* keep table gray */
  379. if (!weakkey) /* strong keys? */
  380. traverseweakvalue(g, h);
  381. else if (!weakvalue) /* strong values? */
  382. traverseephemeron(g, h);
  383. else /* all weak */
  384. linkgclist(h, g->allweak); /* nothing to traverse now */
  385. }
  386. else /* not weak */
  387. traversestrongtable(g, h);
  388. return sizeof(Table) + sizeof(TValue) * h->sizearray +
  389. sizeof(Node) * cast(size_t, sizenode(h));
  390. }
  391. static int traverseproto (global_State *g, Proto *f) {
  392. int i;
  393. if (f->cache && iswhite(f->cache))
  394. f->cache = NULL; /* allow cache to be collected */
  395. markobject(g, f->source);
  396. for (i = 0; i < f->sizek; i++) /* mark literals */
  397. markvalue(g, &f->k[i]);
  398. for (i = 0; i < f->sizeupvalues; i++) /* mark upvalue names */
  399. markobject(g, f->upvalues[i].name);
  400. for (i = 0; i < f->sizep; i++) /* mark nested protos */
  401. markobject(g, f->p[i]);
  402. for (i = 0; i < f->sizelocvars; i++) /* mark local-variable names */
  403. markobject(g, f->locvars[i].varname);
  404. return sizeof(Proto) + sizeof(Instruction) * f->sizecode +
  405. sizeof(Proto *) * f->sizep +
  406. sizeof(TValue) * f->sizek +
  407. sizeof(int) * f->sizelineinfo +
  408. sizeof(LocVar) * f->sizelocvars +
  409. sizeof(Upvaldesc) * f->sizeupvalues;
  410. }
  411. static lu_mem traverseCclosure (global_State *g, CClosure *cl) {
  412. int i;
  413. for (i = 0; i < cl->nupvalues; i++) /* mark its upvalues */
  414. markvalue(g, &cl->upvalue[i]);
  415. return sizeCclosure(cl->nupvalues);
  416. }
  417. /*
  418. ** open upvalues point to values in a thread, so those values should
  419. ** be marked when the thread is traversed except in the atomic phase
  420. ** (because then the value cannot be changed by the thread and the
  421. ** thread may not be traversed again)
  422. */
  423. static lu_mem traverseLclosure (global_State *g, LClosure *cl) {
  424. int i;
  425. markobject(g, cl->p); /* mark its prototype */
  426. for (i = 0; i < cl->nupvalues; i++) { /* mark its upvalues */
  427. UpVal *uv = cl->upvals[i];
  428. if (uv != NULL) {
  429. if (upisopen(uv) && g->gcstate != GCSinsideatomic)
  430. uv->u.open.touched = 1; /* can be marked in 'remarkupvals' */
  431. else
  432. markvalue(g, uv->v);
  433. }
  434. }
  435. return sizeLclosure(cl->nupvalues);
  436. }
  437. static lu_mem traversethread (global_State *g, lua_State *th) {
  438. StkId o = th->stack;
  439. if (o == NULL)
  440. return 1; /* stack not completely built yet */
  441. lua_assert(g->gcstate == GCSinsideatomic ||
  442. th->openupval == NULL || isintwups(th));
  443. for (; o < th->top; o++) /* mark live elements in the stack */
  444. markvalue(g, o);
  445. if (g->gcstate == GCSinsideatomic) { /* final traversal? */
  446. StkId lim = th->stack + th->stacksize; /* real end of stack */
  447. for (; o < lim; o++) /* clear not-marked stack slice */
  448. setnilvalue(o);
  449. /* 'remarkupvals' may have removed thread from 'twups' list */
  450. if (!isintwups(th) && th->openupval != NULL) {
  451. th->twups = g->twups; /* link it back to the list */
  452. g->twups = th;
  453. }
  454. }
  455. else if (g->gckind != KGC_EMERGENCY)
  456. luaD_shrinkstack(th); /* do not change stack in emergency cycle */
  457. return (sizeof(lua_State) + sizeof(TValue) * th->stacksize);
  458. }
  459. /*
  460. ** traverse one gray object, turning it to black (except for threads,
  461. ** which are always gray).
  462. */
  463. static void propagatemark (global_State *g) {
  464. lu_mem size;
  465. GCObject *o = g->gray;
  466. lua_assert(isgray(o));
  467. gray2black(o);
  468. switch (o->tt) {
  469. case LUA_TTABLE: {
  470. Table *h = gco2t(o);
  471. g->gray = h->gclist; /* remove from 'gray' list */
  472. size = traversetable(g, h);
  473. break;
  474. }
  475. case LUA_TLCL: {
  476. LClosure *cl = gco2lcl(o);
  477. g->gray = cl->gclist; /* remove from 'gray' list */
  478. size = traverseLclosure(g, cl);
  479. break;
  480. }
  481. case LUA_TCCL: {
  482. CClosure *cl = gco2ccl(o);
  483. g->gray = cl->gclist; /* remove from 'gray' list */
  484. size = traverseCclosure(g, cl);
  485. break;
  486. }
  487. case LUA_TTHREAD: {
  488. lua_State *th = gco2th(o);
  489. g->gray = th->gclist; /* remove from 'gray' list */
  490. linkgclist(th, g->grayagain); /* insert into 'grayagain' list */
  491. black2gray(o);
  492. size = traversethread(g, th);
  493. break;
  494. }
  495. case LUA_TPROTO: {
  496. Proto *p = gco2p(o);
  497. g->gray = p->gclist; /* remove from 'gray' list */
  498. size = traverseproto(g, p);
  499. break;
  500. }
  501. default: lua_assert(0); return;
  502. }
  503. g->GCmemtrav += size;
  504. }
  505. static void propagateall (global_State *g) {
  506. while (g->gray) propagatemark(g);
  507. }
  508. static void convergeephemerons (global_State *g) {
  509. int changed;
  510. do {
  511. GCObject *w;
  512. GCObject *next = g->ephemeron; /* get ephemeron list */
  513. g->ephemeron = NULL; /* tables may return to this list when traversed */
  514. changed = 0;
  515. while ((w = next) != NULL) {
  516. next = gco2t(w)->gclist;
  517. if (traverseephemeron(g, gco2t(w))) { /* traverse marked some value? */
  518. propagateall(g); /* propagate changes */
  519. changed = 1; /* will have to revisit all ephemeron tables */
  520. }
  521. }
  522. } while (changed);
  523. }
  524. /* }====================================================== */
  525. /*
  526. ** {======================================================
  527. ** Sweep Functions
  528. ** =======================================================
  529. */
  530. /*
  531. ** clear entries with unmarked keys from all weaktables in list 'l' up
  532. ** to element 'f'
  533. */
  534. static void clearkeys (global_State *g, GCObject *l, GCObject *f) {
  535. for (; l != f; l = gco2t(l)->gclist) {
  536. Table *h = gco2t(l);
  537. Node *n, *limit = gnodelast(h);
  538. for (n = gnode(h, 0); n < limit; n++) {
  539. if (!ttisnil(gval(n)) && (iscleared(g, gkey(n)))) {
  540. setnilvalue(gval(n)); /* remove value ... */
  541. removeentry(n); /* and remove entry from table */
  542. }
  543. }
  544. }
  545. }
  546. /*
  547. ** clear entries with unmarked values from all weaktables in list 'l' up
  548. ** to element 'f'
  549. */
  550. static void clearvalues (global_State *g, GCObject *l, GCObject *f) {
  551. for (; l != f; l = gco2t(l)->gclist) {
  552. Table *h = gco2t(l);
  553. Node *n, *limit = gnodelast(h);
  554. unsigned int i;
  555. for (i = 0; i < h->sizearray; i++) {
  556. TValue *o = &h->array[i];
  557. if (iscleared(g, o)) /* value was collected? */
  558. setnilvalue(o); /* remove value */
  559. }
  560. for (n = gnode(h, 0); n < limit; n++) {
  561. if (!ttisnil(gval(n)) && iscleared(g, gval(n))) {
  562. setnilvalue(gval(n)); /* remove value ... */
  563. removeentry(n); /* and remove entry from table */
  564. }
  565. }
  566. }
  567. }
  568. void luaC_upvdeccount (lua_State *L, UpVal *uv) {
  569. lua_assert(uv->refcount > 0);
  570. uv->refcount--;
  571. if (uv->refcount == 0 && !upisopen(uv))
  572. luaM_free(L, uv);
  573. }
  574. static void freeLclosure (lua_State *L, LClosure *cl) {
  575. int i;
  576. for (i = 0; i < cl->nupvalues; i++) {
  577. UpVal *uv = cl->upvals[i];
  578. if (uv)
  579. luaC_upvdeccount(L, uv);
  580. }
  581. luaM_freemem(L, cl, sizeLclosure(cl->nupvalues));
  582. }
  583. static void freeobj (lua_State *L, GCObject *o) {
  584. switch (o->tt) {
  585. case LUA_TPROTO: luaF_freeproto(L, gco2p(o)); break;
  586. case LUA_TLCL: {
  587. freeLclosure(L, gco2lcl(o));
  588. break;
  589. }
  590. case LUA_TCCL: {
  591. luaM_freemem(L, o, sizeCclosure(gco2ccl(o)->nupvalues));
  592. break;
  593. }
  594. case LUA_TTABLE: luaH_free(L, gco2t(o)); break;
  595. case LUA_TTHREAD: luaE_freethread(L, gco2th(o)); break;
  596. case LUA_TUSERDATA: luaM_freemem(L, o, sizeudata(gco2u(o))); break;
  597. case LUA_TSHRSTR:
  598. luaS_remove(L, gco2ts(o)); /* remove it from hash table */
  599. luaM_freemem(L, o, sizelstring(gco2ts(o)->shrlen));
  600. break;
  601. case LUA_TLNGSTR: {
  602. luaM_freemem(L, o, sizelstring(gco2ts(o)->u.lnglen));
  603. break;
  604. }
  605. default: lua_assert(0);
  606. }
  607. }
  608. #define sweepwholelist(L,p) sweeplist(L,p,MAX_LUMEM)
  609. static GCObject **sweeplist (lua_State *L, GCObject **p, lu_mem count);
  610. /*
  611. ** sweep at most 'count' elements from a list of GCObjects erasing dead
  612. ** objects, where a dead object is one marked with the old (non current)
  613. ** white; change all non-dead objects back to white, preparing for next
  614. ** collection cycle. Return where to continue the traversal or NULL if
  615. ** list is finished.
  616. */
  617. static GCObject **sweeplist (lua_State *L, GCObject **p, lu_mem count) {
  618. global_State *g = G(L);
  619. int ow = otherwhite(g);
  620. int white = luaC_white(g); /* current white */
  621. while (*p != NULL && count-- > 0) {
  622. GCObject *curr = *p;
  623. int marked = curr->marked;
  624. if (isdeadm(ow, marked)) { /* is 'curr' dead? */
  625. *p = curr->next; /* remove 'curr' from list */
  626. freeobj(L, curr); /* erase 'curr' */
  627. }
  628. else { /* change mark to 'white' */
  629. curr->marked = cast_byte((marked & maskcolors) | white);
  630. p = &curr->next; /* go to next element */
  631. }
  632. }
  633. return (*p == NULL) ? NULL : p;
  634. }
  635. /*
  636. ** sweep a list until a live object (or end of list)
  637. */
  638. static GCObject **sweeptolive (lua_State *L, GCObject **p, int *n) {
  639. GCObject **old = p;
  640. int i = 0;
  641. do {
  642. i++;
  643. p = sweeplist(L, p, 1);
  644. } while (p == old);
  645. if (n) *n += i;
  646. return p;
  647. }
  648. /* }====================================================== */
  649. /*
  650. ** {======================================================
  651. ** Finalization
  652. ** =======================================================
  653. */
  654. /*
  655. ** If possible, free concatenation buffer and shrink string table
  656. */
  657. static void checkSizes (lua_State *L, global_State *g) {
  658. if (g->gckind != KGC_EMERGENCY) {
  659. l_mem olddebt = g->GCdebt;
  660. luaZ_freebuffer(L, &g->buff); /* free concatenation buffer */
  661. if (g->strt.nuse < g->strt.size / 4) /* string table too big? */
  662. luaS_resize(L, g->strt.size / 2); /* shrink it a little */
  663. g->GCestimate += g->GCdebt - olddebt; /* update estimate */
  664. }
  665. }
  666. static GCObject *udata2finalize (global_State *g) {
  667. GCObject *o = g->tobefnz; /* get first element */
  668. lua_assert(tofinalize(o));
  669. g->tobefnz = o->next; /* remove it from 'tobefnz' list */
  670. o->next = g->allgc; /* return it to 'allgc' list */
  671. g->allgc = o;
  672. resetbit(o->marked, FINALIZEDBIT); /* object is "normal" again */
  673. if (issweepphase(g))
  674. makewhite(g, o); /* "sweep" object */
  675. return o;
  676. }
  677. static void dothecall (lua_State *L, void *ud) {
  678. UNUSED(ud);
  679. luaD_call(L, L->top - 2, 0, 0);
  680. }
  681. static void GCTM (lua_State *L, int propagateerrors) {
  682. global_State *g = G(L);
  683. const TValue *tm;
  684. TValue v;
  685. setgcovalue(L, &v, udata2finalize(g));
  686. tm = luaT_gettmbyobj(L, &v, TM_GC);
  687. if (tm != NULL && ttisfunction(tm)) { /* is there a finalizer? */
  688. int status;
  689. lu_byte oldah = L->allowhook;
  690. int running = g->gcrunning;
  691. L->allowhook = 0; /* stop debug hooks during GC metamethod */
  692. g->gcrunning = 0; /* avoid GC steps */
  693. setobj2s(L, L->top, tm); /* push finalizer... */
  694. setobj2s(L, L->top + 1, &v); /* ... and its argument */
  695. L->top += 2; /* and (next line) call the finalizer */
  696. status = luaD_pcall(L, dothecall, NULL, savestack(L, L->top - 2), 0);
  697. L->allowhook = oldah; /* restore hooks */
  698. g->gcrunning = running; /* restore state */
  699. if (status != LUA_OK && propagateerrors) { /* error while running __gc? */
  700. if (status == LUA_ERRRUN) { /* is there an error object? */
  701. const char *msg = (ttisstring(L->top - 1))
  702. ? svalue(L->top - 1)
  703. : "no message";
  704. luaO_pushfstring(L, "error in __gc metamethod (%s)", msg);
  705. status = LUA_ERRGCMM; /* error in __gc metamethod */
  706. }
  707. luaD_throw(L, status); /* re-throw error */
  708. }
  709. }
  710. }
  711. /*
  712. ** call a few (up to 'g->gcfinnum') finalizers
  713. */
  714. static int runafewfinalizers (lua_State *L) {
  715. global_State *g = G(L);
  716. unsigned int i;
  717. lua_assert(!g->tobefnz || g->gcfinnum > 0);
  718. for (i = 0; g->tobefnz && i < g->gcfinnum; i++)
  719. GCTM(L, 1); /* call one finalizer */
  720. g->gcfinnum = (!g->tobefnz) ? 0 /* nothing more to finalize? */
  721. : g->gcfinnum * 2; /* else call a few more next time */
  722. return i;
  723. }
  724. /*
  725. ** call all pending finalizers
  726. */
  727. static void callallpendingfinalizers (lua_State *L, int propagateerrors) {
  728. global_State *g = G(L);
  729. while (g->tobefnz)
  730. GCTM(L, propagateerrors);
  731. }
  732. /*
  733. ** find last 'next' field in list 'p' list (to add elements in its end)
  734. */
  735. static GCObject **findlast (GCObject **p) {
  736. while (*p != NULL)
  737. p = &(*p)->next;
  738. return p;
  739. }
  740. /*
  741. ** move all unreachable objects (or 'all' objects) that need
  742. ** finalization from list 'finobj' to list 'tobefnz' (to be finalized)
  743. */
  744. static void separatetobefnz (global_State *g, int all) {
  745. GCObject *curr;
  746. GCObject **p = &g->finobj;
  747. GCObject **lastnext = findlast(&g->tobefnz);
  748. while ((curr = *p) != NULL) { /* traverse all finalizable objects */
  749. lua_assert(tofinalize(curr));
  750. if (!(iswhite(curr) || all)) /* not being collected? */
  751. p = &curr->next; /* don't bother with it */
  752. else {
  753. *p = curr->next; /* remove 'curr' from 'finobj' list */
  754. curr->next = *lastnext; /* link at the end of 'tobefnz' list */
  755. *lastnext = curr;
  756. lastnext = &curr->next;
  757. }
  758. }
  759. }
  760. /*
  761. ** if object 'o' has a finalizer, remove it from 'allgc' list (must
  762. ** search the list to find it) and link it in 'finobj' list.
  763. */
  764. void luaC_checkfinalizer (lua_State *L, GCObject *o, Table *mt) {
  765. global_State *g = G(L);
  766. if (tofinalize(o) || /* obj. is already marked... */
  767. gfasttm(g, mt, TM_GC) == NULL) /* or has no finalizer? */
  768. return; /* nothing to be done */
  769. else { /* move 'o' to 'finobj' list */
  770. GCObject **p;
  771. if (issweepphase(g)) {
  772. makewhite(g, o); /* "sweep" object 'o' */
  773. if (g->sweepgc == &o->next) /* should not remove 'sweepgc' object */
  774. g->sweepgc = sweeptolive(L, g->sweepgc, NULL); /* change 'sweepgc' */
  775. }
  776. /* search for pointer pointing to 'o' */
  777. for (p = &g->allgc; *p != o; p = &(*p)->next) { /* empty */ }
  778. *p = o->next; /* remove 'o' from 'allgc' list */
  779. o->next = g->finobj; /* link it in 'finobj' list */
  780. g->finobj = o;
  781. l_setbit(o->marked, FINALIZEDBIT); /* mark it as such */
  782. }
  783. }
  784. /* }====================================================== */
  785. /*
  786. ** {======================================================
  787. ** GC control
  788. ** =======================================================
  789. */
  790. /*
  791. ** Set a reasonable "time" to wait before starting a new GC cycle; cycle
  792. ** will start when memory use hits threshold. (Division by 'estimate'
  793. ** should be OK: it cannot be zero (because Lua cannot even start with
  794. ** less than PAUSEADJ bytes).
  795. */
  796. static void setpause (global_State *g) {
  797. l_mem threshold, debt;
  798. l_mem estimate = g->GCestimate / PAUSEADJ; /* adjust 'estimate' */
  799. lua_assert(estimate > 0);
  800. threshold = (g->gcpause < MAX_LMEM / estimate) /* overflow? */
  801. ? estimate * g->gcpause /* no overflow */
  802. : MAX_LMEM; /* overflow; truncate to maximum */
  803. debt = gettotalbytes(g) - threshold;
  804. luaE_setdebt(g, debt);
  805. }
  806. /*
  807. ** Enter first sweep phase.
  808. ** The call to 'sweeptolive' makes pointer point to an object inside
  809. ** the list (instead of to the header), so that the real sweep do not
  810. ** need to skip objects created between "now" and the start of the real
  811. ** sweep.
  812. ** Returns how many objects it swept.
  813. */
  814. static int entersweep (lua_State *L) {
  815. global_State *g = G(L);
  816. int n = 0;
  817. g->gcstate = GCSswpallgc;
  818. lua_assert(g->sweepgc == NULL);
  819. g->sweepgc = sweeptolive(L, &g->allgc, &n);
  820. return n;
  821. }
  822. void luaC_freeallobjects (lua_State *L) {
  823. global_State *g = G(L);
  824. separatetobefnz(g, 1); /* separate all objects with finalizers */
  825. lua_assert(g->finobj == NULL);
  826. callallpendingfinalizers(L, 0);
  827. lua_assert(g->tobefnz == NULL);
  828. g->currentwhite = WHITEBITS; /* this "white" makes all objects look dead */
  829. g->gckind = KGC_NORMAL;
  830. sweepwholelist(L, &g->finobj);
  831. sweepwholelist(L, &g->allgc);
  832. sweepwholelist(L, &g->fixedgc); /* collect fixed objects */
  833. lua_assert(g->strt.nuse == 0);
  834. }
  835. /*
  836. ** Clear API string cache. (Entries cannot be empty, so fill them with
  837. ** a non-collectable string.)
  838. */
  839. static void clearapihash (global_State *g) {
  840. int i;
  841. for (i = 0; i < STRCACHE_SIZE; i++) {
  842. if (iswhite(g->strcache[i])) /* will entry be collected? */
  843. g->strcache[i] = g->memerrmsg; /* replace it with something fixed */
  844. }
  845. }
  846. static l_mem atomic (lua_State *L) {
  847. global_State *g = G(L);
  848. l_mem work;
  849. GCObject *origweak, *origall;
  850. GCObject *grayagain = g->grayagain; /* save original list */
  851. lua_assert(g->ephemeron == NULL && g->weak == NULL);
  852. lua_assert(!iswhite(g->mainthread));
  853. g->gcstate = GCSinsideatomic;
  854. g->GCmemtrav = 0; /* start counting work */
  855. markobject(g, L); /* mark running thread */
  856. /* registry and global metatables may be changed by API */
  857. markvalue(g, &g->l_registry);
  858. markmt(g); /* mark global metatables */
  859. /* remark occasional upvalues of (maybe) dead threads */
  860. remarkupvals(g);
  861. propagateall(g); /* propagate changes */
  862. work = g->GCmemtrav; /* stop counting (do not recount 'grayagain') */
  863. g->gray = grayagain;
  864. propagateall(g); /* traverse 'grayagain' list */
  865. g->GCmemtrav = 0; /* restart counting */
  866. convergeephemerons(g);
  867. /* at this point, all strongly accessible objects are marked. */
  868. /* Clear values from weak tables, before checking finalizers */
  869. clearvalues(g, g->weak, NULL);
  870. clearvalues(g, g->allweak, NULL);
  871. origweak = g->weak; origall = g->allweak;
  872. work += g->GCmemtrav; /* stop counting (objects being finalized) */
  873. separatetobefnz(g, 0); /* separate objects to be finalized */
  874. g->gcfinnum = 1; /* there may be objects to be finalized */
  875. markbeingfnz(g); /* mark objects that will be finalized */
  876. propagateall(g); /* remark, to propagate 'resurrection' */
  877. g->GCmemtrav = 0; /* restart counting */
  878. convergeephemerons(g);
  879. /* at this point, all resurrected objects are marked. */
  880. /* remove dead objects from weak tables */
  881. clearkeys(g, g->ephemeron, NULL); /* clear keys from all ephemeron tables */
  882. clearkeys(g, g->allweak, NULL); /* clear keys from all 'allweak' tables */
  883. /* clear values from resurrected weak tables */
  884. clearvalues(g, g->weak, origweak);
  885. clearvalues(g, g->allweak, origall);
  886. clearapihash(g);
  887. g->currentwhite = cast_byte(otherwhite(g)); /* flip current white */
  888. work += g->GCmemtrav; /* complete counting */
  889. return work; /* estimate of memory marked by 'atomic' */
  890. }
  891. static lu_mem sweepstep (lua_State *L, global_State *g,
  892. int nextstate, GCObject **nextlist) {
  893. if (g->sweepgc) {
  894. l_mem olddebt = g->GCdebt;
  895. g->sweepgc = sweeplist(L, g->sweepgc, GCSWEEPMAX);
  896. g->GCestimate += g->GCdebt - olddebt; /* update estimate */
  897. if (g->sweepgc) /* is there still something to sweep? */
  898. return (GCSWEEPMAX * GCSWEEPCOST);
  899. }
  900. /* else enter next state */
  901. g->gcstate = nextstate;
  902. g->sweepgc = nextlist;
  903. return 0;
  904. }
  905. static lu_mem singlestep (lua_State *L) {
  906. global_State *g = G(L);
  907. switch (g->gcstate) {
  908. case GCSpause: {
  909. g->GCmemtrav = g->strt.size * sizeof(GCObject*);
  910. restartcollection(g);
  911. g->gcstate = GCSpropagate;
  912. return g->GCmemtrav;
  913. }
  914. case GCSpropagate: {
  915. g->GCmemtrav = 0;
  916. lua_assert(g->gray);
  917. propagatemark(g);
  918. if (g->gray == NULL) /* no more gray objects? */
  919. g->gcstate = GCSatomic; /* finish propagate phase */
  920. return g->GCmemtrav; /* memory traversed in this step */
  921. }
  922. case GCSatomic: {
  923. lu_mem work;
  924. int sw;
  925. propagateall(g); /* make sure gray list is empty */
  926. work = atomic(L); /* work is what was traversed by 'atomic' */
  927. sw = entersweep(L);
  928. g->GCestimate = gettotalbytes(g); /* first estimate */;
  929. return work + sw * GCSWEEPCOST;
  930. }
  931. case GCSswpallgc: { /* sweep "regular" objects */
  932. return sweepstep(L, g, GCSswpfinobj, &g->finobj);
  933. }
  934. case GCSswpfinobj: { /* sweep objects with finalizers */
  935. return sweepstep(L, g, GCSswptobefnz, &g->tobefnz);
  936. }
  937. case GCSswptobefnz: { /* sweep objects to be finalized */
  938. return sweepstep(L, g, GCSswpend, NULL);
  939. }
  940. case GCSswpend: { /* finish sweeps */
  941. makewhite(g, g->mainthread); /* sweep main thread */
  942. checkSizes(L, g);
  943. g->gcstate = GCScallfin;
  944. return 0;
  945. }
  946. case GCScallfin: { /* call remaining finalizers */
  947. if (g->tobefnz && g->gckind != KGC_EMERGENCY) {
  948. int n = runafewfinalizers(L);
  949. return (n * GCFINALIZECOST);
  950. }
  951. else { /* emergency mode or no more finalizers */
  952. g->gcstate = GCSpause; /* finish collection */
  953. return 0;
  954. }
  955. }
  956. default: lua_assert(0); return 0;
  957. }
  958. }
  959. /*
  960. ** advances the garbage collector until it reaches a state allowed
  961. ** by 'statemask'
  962. */
  963. void luaC_runtilstate (lua_State *L, int statesmask) {
  964. global_State *g = G(L);
  965. while (!testbit(statesmask, g->gcstate))
  966. singlestep(L);
  967. }
  968. /*
  969. ** get GC debt and convert it from Kb to 'work units' (avoid zero debt
  970. ** and overflows)
  971. */
  972. static l_mem getdebt (global_State *g) {
  973. l_mem debt = g->GCdebt;
  974. int stepmul = g->gcstepmul;
  975. debt = (debt / STEPMULADJ) + 1;
  976. debt = (debt < MAX_LMEM / stepmul) ? debt * stepmul : MAX_LMEM;
  977. return debt;
  978. }
  979. /*
  980. ** performs a basic GC step when collector is running
  981. */
  982. void luaC_step (lua_State *L) {
  983. global_State *g = G(L);
  984. l_mem debt = getdebt(g); /* GC deficit (be paid now) */
  985. if (!g->gcrunning) { /* not running? */
  986. luaE_setdebt(g, -GCSTEPSIZE * 10); /* avoid being called too often */
  987. return;
  988. }
  989. do { /* repeat until pause or enough "credit" (negative debt) */
  990. lu_mem work = singlestep(L); /* perform one single step */
  991. debt -= work;
  992. } while (debt > -GCSTEPSIZE && g->gcstate != GCSpause);
  993. if (g->gcstate == GCSpause)
  994. setpause(g); /* pause until next cycle */
  995. else {
  996. debt = (debt / g->gcstepmul) * STEPMULADJ; /* convert 'work units' to Kb */
  997. luaE_setdebt(g, debt);
  998. runafewfinalizers(L);
  999. }
  1000. }
  1001. /*
  1002. ** Performs a full GC cycle; if 'isemergency', set a flag to avoid
  1003. ** some operations which could change the interpreter state in some
  1004. ** unexpected ways (running finalizers and shrinking some structures).
  1005. ** Before running the collection, check 'keepinvariant'; if it is true,
  1006. ** there may be some objects marked as black, so the collector has
  1007. ** to sweep all objects to turn them back to white (as white has not
  1008. ** changed, nothing will be collected).
  1009. */
  1010. void luaC_fullgc (lua_State *L, int isemergency) {
  1011. global_State *g = G(L);
  1012. lua_assert(g->gckind == KGC_NORMAL);
  1013. if (isemergency) g->gckind = KGC_EMERGENCY; /* set flag */
  1014. if (keepinvariant(g)) { /* black objects? */
  1015. entersweep(L); /* sweep everything to turn them back to white */
  1016. }
  1017. /* finish any pending sweep phase to start a new cycle */
  1018. luaC_runtilstate(L, bitmask(GCSpause));
  1019. luaC_runtilstate(L, ~bitmask(GCSpause)); /* start new collection */
  1020. luaC_runtilstate(L, bitmask(GCScallfin)); /* run up to finalizers */
  1021. /* estimate must be correct after a full GC cycle */
  1022. lua_assert(g->GCestimate == gettotalbytes(g));
  1023. luaC_runtilstate(L, bitmask(GCSpause)); /* finish collection */
  1024. g->gckind = KGC_NORMAL;
  1025. setpause(g);
  1026. }
  1027. /* }====================================================== */