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      1 /*	$NetBSD: lgc.c,v 1.13 2023/06/08 21:12:08 nikita Exp $	*/
      2 
      3 /*
      4 ** Id: lgc.c
      5 ** Garbage Collector
      6 ** See Copyright Notice in lua.h
      7 */
      8 
      9 #define lgc_c
     10 #define LUA_CORE
     11 
     12 #include "lprefix.h"
     13 
     14 #ifndef _KERNEL
     15 #include <stdio.h>
     16 #include <string.h>
     17 #endif /* _KERNEL */
     18 
     19 #include "lua.h"
     20 
     21 #include "ldebug.h"
     22 #include "ldo.h"
     23 #include "lfunc.h"
     24 #include "lgc.h"
     25 #include "lmem.h"
     26 #include "lobject.h"
     27 #include "lstate.h"
     28 #include "lstring.h"
     29 #include "ltable.h"
     30 #include "ltm.h"
     31 
     32 
     33 /*
     34 ** Maximum number of elements to sweep in each single step.
     35 ** (Large enough to dissipate fixed overheads but small enough
     36 ** to allow small steps for the collector.)
     37 */
     38 #define GCSWEEPMAX	100
     39 
     40 /*
     41 ** Maximum number of finalizers to call in each single step.
     42 */
     43 #define GCFINMAX	10
     44 
     45 
     46 /*
     47 ** Cost of calling one finalizer.
     48 */
     49 #define GCFINALIZECOST	50
     50 
     51 
     52 /*
     53 ** The equivalent, in bytes, of one unit of "work" (visiting a slot,
     54 ** sweeping an object, etc.)
     55 */
     56 #define WORK2MEM	sizeof(TValue)
     57 
     58 
     59 /*
     60 ** macro to adjust 'pause': 'pause' is actually used like
     61 ** 'pause / PAUSEADJ' (value chosen by tests)
     62 */
     63 #define PAUSEADJ		100
     64 
     65 
     66 /* mask with all color bits */
     67 #define maskcolors	(bitmask(BLACKBIT) | WHITEBITS)
     68 
     69 /* mask with all GC bits */
     70 #define maskgcbits      (maskcolors | AGEBITS)
     71 
     72 
     73 /* macro to erase all color bits then set only the current white bit */
     74 #define makewhite(g,x)	\
     75   (x->marked = cast_byte((x->marked & ~maskcolors) | luaC_white(g)))
     76 
     77 /* make an object gray (neither white nor black) */
     78 #define set2gray(x)	resetbits(x->marked, maskcolors)
     79 
     80 
     81 /* make an object black (coming from any color) */
     82 #define set2black(x)  \
     83   (x->marked = cast_byte((x->marked & ~WHITEBITS) | bitmask(BLACKBIT)))
     84 
     85 
     86 #define valiswhite(x)   (iscollectable(x) && iswhite(gcvalue(x)))
     87 
     88 #define keyiswhite(n)   (keyiscollectable(n) && iswhite(gckey(n)))
     89 
     90 
     91 /*
     92 ** Protected access to objects in values
     93 */
     94 #define gcvalueN(o)     (iscollectable(o) ? gcvalue(o) : NULL)
     95 
     96 
     97 #define markvalue(g,o) { checkliveness(g->mainthread,o); \
     98   if (valiswhite(o)) reallymarkobject(g,gcvalue(o)); }
     99 
    100 #define markkey(g, n)	{ if keyiswhite(n) reallymarkobject(g,gckey(n)); }
    101 
    102 #define markobject(g,t)	{ if (iswhite(t)) reallymarkobject(g, obj2gco(t)); }
    103 
    104 /*
    105 ** mark an object that can be NULL (either because it is really optional,
    106 ** or it was stripped as debug info, or inside an uncompleted structure)
    107 */
    108 #define markobjectN(g,t)	{ if (t) markobject(g,t); }
    109 
    110 static void reallymarkobject (global_State *g, GCObject *o);
    111 static lu_mem atomic (lua_State *L);
    112 static void entersweep (lua_State *L);
    113 
    114 
    115 /*
    116 ** {======================================================
    117 ** Generic functions
    118 ** =======================================================
    119 */
    120 
    121 
    122 /*
    123 ** one after last element in a hash array
    124 */
    125 #define gnodelast(h)	gnode(h, cast_sizet(sizenode(h)))
    126 
    127 
    128 static GCObject **getgclist (GCObject *o) {
    129   switch (o->tt) {
    130     case LUA_VTABLE: return &gco2t(o)->gclist;
    131     case LUA_VLCL: return &gco2lcl(o)->gclist;
    132     case LUA_VCCL: return &gco2ccl(o)->gclist;
    133     case LUA_VTHREAD: return &gco2th(o)->gclist;
    134     case LUA_VPROTO: return &gco2p(o)->gclist;
    135     case LUA_VUSERDATA: {
    136       Udata *u = gco2u(o);
    137       lua_assert(u->nuvalue > 0);
    138       return &u->gclist;
    139     }
    140     default: lua_assert(0); return 0;
    141   }
    142 }
    143 
    144 
    145 /*
    146 ** Link a collectable object 'o' with a known type into the list 'p'.
    147 ** (Must be a macro to access the 'gclist' field in different types.)
    148 */
    149 #define linkgclist(o,p)	linkgclist_(obj2gco(o), &(o)->gclist, &(p))
    150 
    151 static void linkgclist_ (GCObject *o, GCObject **pnext, GCObject **list) {
    152   lua_assert(!isgray(o));  /* cannot be in a gray list */
    153   *pnext = *list;
    154   *list = o;
    155   set2gray(o);  /* now it is */
    156 }
    157 
    158 
    159 /*
    160 ** Link a generic collectable object 'o' into the list 'p'.
    161 */
    162 #define linkobjgclist(o,p) linkgclist_(obj2gco(o), getgclist(o), &(p))
    163 
    164 
    165 
    166 /*
    167 ** Clear keys for empty entries in tables. If entry is empty, mark its
    168 ** entry as dead. This allows the collection of the key, but keeps its
    169 ** entry in the table: its removal could break a chain and could break
    170 ** a table traversal.  Other places never manipulate dead keys, because
    171 ** its associated empty value is enough to signal that the entry is
    172 ** logically empty.
    173 */
    174 static void clearkey (Node *n) {
    175   lua_assert(isempty(gval(n)));
    176   if (keyiscollectable(n))
    177     setdeadkey(n);  /* unused key; remove it */
    178 }
    179 
    180 
    181 /*
    182 ** tells whether a key or value can be cleared from a weak
    183 ** table. Non-collectable objects are never removed from weak
    184 ** tables. Strings behave as 'values', so are never removed too. for
    185 ** other objects: if really collected, cannot keep them; for objects
    186 ** being finalized, keep them in keys, but not in values
    187 */
    188 static int iscleared (global_State *g, const GCObject *o) {
    189   if (o == NULL) return 0;  /* non-collectable value */
    190   else if (novariant(o->tt) == LUA_TSTRING) {
    191     markobject(g, o);  /* strings are 'values', so are never weak */
    192     return 0;
    193   }
    194   else return iswhite(o);
    195 }
    196 
    197 
    198 /*
    199 ** Barrier that moves collector forward, that is, marks the white object
    200 ** 'v' being pointed by the black object 'o'.  In the generational
    201 ** mode, 'v' must also become old, if 'o' is old; however, it cannot
    202 ** be changed directly to OLD, because it may still point to non-old
    203 ** objects. So, it is marked as OLD0. In the next cycle it will become
    204 ** OLD1, and in the next it will finally become OLD (regular old). By
    205 ** then, any object it points to will also be old.  If called in the
    206 ** incremental sweep phase, it clears the black object to white (sweep
    207 ** it) to avoid other barrier calls for this same object. (That cannot
    208 ** be done is generational mode, as its sweep does not distinguish
    209 ** whites from deads.)
    210 */
    211 void luaC_barrier_ (lua_State *L, GCObject *o, GCObject *v) {
    212   global_State *g = G(L);
    213   lua_assert(isblack(o) && iswhite(v) && !isdead(g, v) && !isdead(g, o));
    214   if (keepinvariant(g)) {  /* must keep invariant? */
    215     reallymarkobject(g, v);  /* restore invariant */
    216     if (isold(o)) {
    217       lua_assert(!isold(v));  /* white object could not be old */
    218       setage(v, G_OLD0);  /* restore generational invariant */
    219     }
    220   }
    221   else {  /* sweep phase */
    222     lua_assert(issweepphase(g));
    223     if (g->gckind == KGC_INC)  /* incremental mode? */
    224       makewhite(g, o);  /* mark 'o' as white to avoid other barriers */
    225   }
    226 }
    227 
    228 
    229 /*
    230 ** barrier that moves collector backward, that is, mark the black object
    231 ** pointing to a white object as gray again.
    232 */
    233 void luaC_barrierback_ (lua_State *L, GCObject *o) {
    234   global_State *g = G(L);
    235   lua_assert(isblack(o) && !isdead(g, o));
    236   lua_assert((g->gckind == KGC_GEN) == (isold(o) && getage(o) != G_TOUCHED1));
    237   if (getage(o) == G_TOUCHED2)  /* already in gray list? */
    238     set2gray(o);  /* make it gray to become touched1 */
    239   else  /* link it in 'grayagain' and paint it gray */
    240     linkobjgclist(o, g->grayagain);
    241   if (isold(o))  /* generational mode? */
    242     setage(o, G_TOUCHED1);  /* touched in current cycle */
    243 }
    244 
    245 
    246 void luaC_fix (lua_State *L, GCObject *o) {
    247   global_State *g = G(L);
    248   lua_assert(g->allgc == o);  /* object must be 1st in 'allgc' list! */
    249   set2gray(o);  /* they will be gray forever */
    250   setage(o, G_OLD);  /* and old forever */
    251   g->allgc = o->next;  /* remove object from 'allgc' list */
    252   o->next = g->fixedgc;  /* link it to 'fixedgc' list */
    253   g->fixedgc = o;
    254 }
    255 
    256 
    257 /*
    258 ** create a new collectable object (with given type, size, and offset)
    259 ** and link it to 'allgc' list.
    260 */
    261 GCObject *luaC_newobjdt (lua_State *L, int tt, size_t sz, size_t offset) {
    262   global_State *g = G(L);
    263   char *p = cast_charp(luaM_newobject(L, novariant(tt), sz));
    264   GCObject *o = cast(GCObject *, p + offset);
    265   o->marked = luaC_white(g);
    266   o->tt = tt;
    267   o->next = g->allgc;
    268   g->allgc = o;
    269   return o;
    270 }
    271 
    272 
    273 GCObject *luaC_newobj (lua_State *L, int tt, size_t sz) {
    274   return luaC_newobjdt(L, tt, sz, 0);
    275 }
    276 
    277 /* }====================================================== */
    278 
    279 
    280 
    281 /*
    282 ** {======================================================
    283 ** Mark functions
    284 ** =======================================================
    285 */
    286 
    287 
    288 /*
    289 ** Mark an object.  Userdata with no user values, strings, and closed
    290 ** upvalues are visited and turned black here.  Open upvalues are
    291 ** already indirectly linked through their respective threads in the
    292 ** 'twups' list, so they don't go to the gray list; nevertheless, they
    293 ** are kept gray to avoid barriers, as their values will be revisited
    294 ** by the thread or by 'remarkupvals'.  Other objects are added to the
    295 ** gray list to be visited (and turned black) later.  Both userdata and
    296 ** upvalues can call this function recursively, but this recursion goes
    297 ** for at most two levels: An upvalue cannot refer to another upvalue
    298 ** (only closures can), and a userdata's metatable must be a table.
    299 */
    300 static void reallymarkobject (global_State *g, GCObject *o) {
    301   switch (o->tt) {
    302     case LUA_VSHRSTR:
    303     case LUA_VLNGSTR: {
    304       set2black(o);  /* nothing to visit */
    305       break;
    306     }
    307     case LUA_VUPVAL: {
    308       UpVal *uv = gco2upv(o);
    309       if (upisopen(uv))
    310         set2gray(uv);  /* open upvalues are kept gray */
    311       else
    312         set2black(uv);  /* closed upvalues are visited here */
    313       markvalue(g, uv->v.p);  /* mark its content */
    314       break;
    315     }
    316     case LUA_VUSERDATA: {
    317       Udata *u = gco2u(o);
    318       if (u->nuvalue == 0) {  /* no user values? */
    319         markobjectN(g, u->metatable);  /* mark its metatable */
    320         set2black(u);  /* nothing else to mark */
    321         break;
    322       }
    323       /* else... */
    324     }  /* FALLTHROUGH */
    325     case LUA_VLCL: case LUA_VCCL: case LUA_VTABLE:
    326     case LUA_VTHREAD: case LUA_VPROTO: {
    327       linkobjgclist(o, g->gray);  /* to be visited later */
    328       break;
    329     }
    330     default: lua_assert(0); break;
    331   }
    332 }
    333 
    334 
    335 /*
    336 ** mark metamethods for basic types
    337 */
    338 static void markmt (global_State *g) {
    339   int i;
    340   for (i=0; i < LUA_NUMTAGS; i++)
    341     markobjectN(g, g->mt[i]);
    342 }
    343 
    344 
    345 /*
    346 ** mark all objects in list of being-finalized
    347 */
    348 static lu_mem markbeingfnz (global_State *g) {
    349   GCObject *o;
    350   lu_mem count = 0;
    351   for (o = g->tobefnz; o != NULL; o = o->next) {
    352     count++;
    353     markobject(g, o);
    354   }
    355   return count;
    356 }
    357 
    358 
    359 /*
    360 ** For each non-marked thread, simulates a barrier between each open
    361 ** upvalue and its value. (If the thread is collected, the value will be
    362 ** assigned to the upvalue, but then it can be too late for the barrier
    363 ** to act. The "barrier" does not need to check colors: A non-marked
    364 ** thread must be young; upvalues cannot be older than their threads; so
    365 ** any visited upvalue must be young too.) Also removes the thread from
    366 ** the list, as it was already visited. Removes also threads with no
    367 ** upvalues, as they have nothing to be checked. (If the thread gets an
    368 ** upvalue later, it will be linked in the list again.)
    369 */
    370 static int remarkupvals (global_State *g) {
    371   lua_State *thread;
    372   lua_State **p = &g->twups;
    373   int work = 0;  /* estimate of how much work was done here */
    374   while ((thread = *p) != NULL) {
    375     work++;
    376     if (!iswhite(thread) && thread->openupval != NULL)
    377       p = &thread->twups;  /* keep marked thread with upvalues in the list */
    378     else {  /* thread is not marked or without upvalues */
    379       UpVal *uv;
    380       lua_assert(!isold(thread) || thread->openupval == NULL);
    381       *p = thread->twups;  /* remove thread from the list */
    382       thread->twups = thread;  /* mark that it is out of list */
    383       for (uv = thread->openupval; uv != NULL; uv = uv->u.open.next) {
    384         lua_assert(getage(uv) <= getage(thread));
    385         work++;
    386         if (!iswhite(uv)) {  /* upvalue already visited? */
    387           lua_assert(upisopen(uv) && isgray(uv));
    388           markvalue(g, uv->v.p);  /* mark its value */
    389         }
    390       }
    391     }
    392   }
    393   return work;
    394 }
    395 
    396 
    397 static void cleargraylists (global_State *g) {
    398   g->gray = g->grayagain = NULL;
    399   g->weak = g->allweak = g->ephemeron = NULL;
    400 }
    401 
    402 
    403 /*
    404 ** mark root set and reset all gray lists, to start a new collection
    405 */
    406 static void restartcollection (global_State *g) {
    407   cleargraylists(g);
    408   markobject(g, g->mainthread);
    409   markvalue(g, &g->l_registry);
    410   markmt(g);
    411   markbeingfnz(g);  /* mark any finalizing object left from previous cycle */
    412 }
    413 
    414 /* }====================================================== */
    415 
    416 
    417 /*
    418 ** {======================================================
    419 ** Traverse functions
    420 ** =======================================================
    421 */
    422 
    423 
    424 /*
    425 ** Check whether object 'o' should be kept in the 'grayagain' list for
    426 ** post-processing by 'correctgraylist'. (It could put all old objects
    427 ** in the list and leave all the work to 'correctgraylist', but it is
    428 ** more efficient to avoid adding elements that will be removed.) Only
    429 ** TOUCHED1 objects need to be in the list. TOUCHED2 doesn't need to go
    430 ** back to a gray list, but then it must become OLD. (That is what
    431 ** 'correctgraylist' does when it finds a TOUCHED2 object.)
    432 */
    433 static void genlink (global_State *g, GCObject *o) {
    434   lua_assert(isblack(o));
    435   if (getage(o) == G_TOUCHED1) {  /* touched in this cycle? */
    436     linkobjgclist(o, g->grayagain);  /* link it back in 'grayagain' */
    437   }  /* everything else do not need to be linked back */
    438   else if (getage(o) == G_TOUCHED2)
    439     changeage(o, G_TOUCHED2, G_OLD);  /* advance age */
    440 }
    441 
    442 
    443 /*
    444 ** Traverse a table with weak values and link it to proper list. During
    445 ** propagate phase, keep it in 'grayagain' list, to be revisited in the
    446 ** atomic phase. In the atomic phase, if table has any white value,
    447 ** put it in 'weak' list, to be cleared.
    448 */
    449 static void traverseweakvalue (global_State *g, Table *h) {
    450   Node *n, *limit = gnodelast(h);
    451   /* if there is array part, assume it may have white values (it is not
    452      worth traversing it now just to check) */
    453   int hasclears = (h->alimit > 0);
    454   for (n = gnode(h, 0); n < limit; n++) {  /* traverse hash part */
    455     if (isempty(gval(n)))  /* entry is empty? */
    456       clearkey(n);  /* clear its key */
    457     else {
    458       lua_assert(!keyisnil(n));
    459       markkey(g, n);
    460       if (!hasclears && iscleared(g, gcvalueN(gval(n))))  /* a white value? */
    461         hasclears = 1;  /* table will have to be cleared */
    462     }
    463   }
    464   if (g->gcstate == GCSatomic && hasclears)
    465     linkgclist(h, g->weak);  /* has to be cleared later */
    466   else
    467     linkgclist(h, g->grayagain);  /* must retraverse it in atomic phase */
    468 }
    469 
    470 
    471 /*
    472 ** Traverse an ephemeron table and link it to proper list. Returns true
    473 ** iff any object was marked during this traversal (which implies that
    474 ** convergence has to continue). During propagation phase, keep table
    475 ** in 'grayagain' list, to be visited again in the atomic phase. In
    476 ** the atomic phase, if table has any white->white entry, it has to
    477 ** be revisited during ephemeron convergence (as that key may turn
    478 ** black). Otherwise, if it has any white key, table has to be cleared
    479 ** (in the atomic phase). In generational mode, some tables
    480 ** must be kept in some gray list for post-processing; this is done
    481 ** by 'genlink'.
    482 */
    483 static int traverseephemeron (global_State *g, Table *h, int inv) {
    484   int marked = 0;  /* true if an object is marked in this traversal */
    485   int hasclears = 0;  /* true if table has white keys */
    486   int hasww = 0;  /* true if table has entry "white-key -> white-value" */
    487   unsigned int i;
    488   unsigned int asize = luaH_realasize(h);
    489   unsigned int nsize = sizenode(h);
    490   /* traverse array part */
    491   for (i = 0; i < asize; i++) {
    492     if (valiswhite(&h->array[i])) {
    493       marked = 1;
    494       reallymarkobject(g, gcvalue(&h->array[i]));
    495     }
    496   }
    497   /* traverse hash part; if 'inv', traverse descending
    498      (see 'convergeephemerons') */
    499   for (i = 0; i < nsize; i++) {
    500     Node *n = inv ? gnode(h, nsize - 1 - i) : gnode(h, i);
    501     if (isempty(gval(n)))  /* entry is empty? */
    502       clearkey(n);  /* clear its key */
    503     else if (iscleared(g, gckeyN(n))) {  /* key is not marked (yet)? */
    504       hasclears = 1;  /* table must be cleared */
    505       if (valiswhite(gval(n)))  /* value not marked yet? */
    506         hasww = 1;  /* white-white entry */
    507     }
    508     else if (valiswhite(gval(n))) {  /* value not marked yet? */
    509       marked = 1;
    510       reallymarkobject(g, gcvalue(gval(n)));  /* mark it now */
    511     }
    512   }
    513   /* link table into proper list */
    514   if (g->gcstate == GCSpropagate)
    515     linkgclist(h, g->grayagain);  /* must retraverse it in atomic phase */
    516   else if (hasww)  /* table has white->white entries? */
    517     linkgclist(h, g->ephemeron);  /* have to propagate again */
    518   else if (hasclears)  /* table has white keys? */
    519     linkgclist(h, g->allweak);  /* may have to clean white keys */
    520   else
    521     genlink(g, obj2gco(h));  /* check whether collector still needs to see it */
    522   return marked;
    523 }
    524 
    525 
    526 static void traversestrongtable (global_State *g, Table *h) {
    527   Node *n, *limit = gnodelast(h);
    528   unsigned int i;
    529   unsigned int asize = luaH_realasize(h);
    530   for (i = 0; i < asize; i++)  /* traverse array part */
    531     markvalue(g, &h->array[i]);
    532   for (n = gnode(h, 0); n < limit; n++) {  /* traverse hash part */
    533     if (isempty(gval(n)))  /* entry is empty? */
    534       clearkey(n);  /* clear its key */
    535     else {
    536       lua_assert(!keyisnil(n));
    537       markkey(g, n);
    538       markvalue(g, gval(n));
    539     }
    540   }
    541   genlink(g, obj2gco(h));
    542 }
    543 
    544 
    545 static lu_mem traversetable (global_State *g, Table *h) {
    546   const char *weakkey, *weakvalue;
    547   const TValue *mode = gfasttm(g, h->metatable, TM_MODE);
    548   markobjectN(g, h->metatable);
    549   if (mode && ttisstring(mode) &&  /* is there a weak mode? */
    550       (cast_void(weakkey = strchr(svalue(mode), 'k')),
    551        cast_void(weakvalue = strchr(svalue(mode), 'v')),
    552        (weakkey || weakvalue))) {  /* is really weak? */
    553     if (!weakkey)  /* strong keys? */
    554       traverseweakvalue(g, h);
    555     else if (!weakvalue)  /* strong values? */
    556       traverseephemeron(g, h, 0);
    557     else  /* all weak */
    558       linkgclist(h, g->allweak);  /* nothing to traverse now */
    559   }
    560   else  /* not weak */
    561     traversestrongtable(g, h);
    562   return 1 + h->alimit + 2 * allocsizenode(h);
    563 }
    564 
    565 
    566 static int traverseudata (global_State *g, Udata *u) {
    567   int i;
    568   markobjectN(g, u->metatable);  /* mark its metatable */
    569   for (i = 0; i < u->nuvalue; i++)
    570     markvalue(g, &u->uv[i].uv);
    571   genlink(g, obj2gco(u));
    572   return 1 + u->nuvalue;
    573 }
    574 
    575 
    576 /*
    577 ** Traverse a prototype. (While a prototype is being build, its
    578 ** arrays can be larger than needed; the extra slots are filled with
    579 ** NULL, so the use of 'markobjectN')
    580 */
    581 static int traverseproto (global_State *g, Proto *f) {
    582   int i;
    583   markobjectN(g, f->source);
    584   for (i = 0; i < f->sizek; i++)  /* mark literals */
    585     markvalue(g, &f->k[i]);
    586   for (i = 0; i < f->sizeupvalues; i++)  /* mark upvalue names */
    587     markobjectN(g, f->upvalues[i].name);
    588   for (i = 0; i < f->sizep; i++)  /* mark nested protos */
    589     markobjectN(g, f->p[i]);
    590   for (i = 0; i < f->sizelocvars; i++)  /* mark local-variable names */
    591     markobjectN(g, f->locvars[i].varname);
    592   return 1 + f->sizek + f->sizeupvalues + f->sizep + f->sizelocvars;
    593 }
    594 
    595 
    596 static int traverseCclosure (global_State *g, CClosure *cl) {
    597   int i;
    598   for (i = 0; i < cl->nupvalues; i++)  /* mark its upvalues */
    599     markvalue(g, &cl->upvalue[i]);
    600   return 1 + cl->nupvalues;
    601 }
    602 
    603 /*
    604 ** Traverse a Lua closure, marking its prototype and its upvalues.
    605 ** (Both can be NULL while closure is being created.)
    606 */
    607 static int traverseLclosure (global_State *g, LClosure *cl) {
    608   int i;
    609   markobjectN(g, cl->p);  /* mark its prototype */
    610   for (i = 0; i < cl->nupvalues; i++) {  /* visit its upvalues */
    611     UpVal *uv = cl->upvals[i];
    612     markobjectN(g, uv);  /* mark upvalue */
    613   }
    614   return 1 + cl->nupvalues;
    615 }
    616 
    617 
    618 /*
    619 ** Traverse a thread, marking the elements in the stack up to its top
    620 ** and cleaning the rest of the stack in the final traversal. That
    621 ** ensures that the entire stack have valid (non-dead) objects.
    622 ** Threads have no barriers. In gen. mode, old threads must be visited
    623 ** at every cycle, because they might point to young objects.  In inc.
    624 ** mode, the thread can still be modified before the end of the cycle,
    625 ** and therefore it must be visited again in the atomic phase. To ensure
    626 ** these visits, threads must return to a gray list if they are not new
    627 ** (which can only happen in generational mode) or if the traverse is in
    628 ** the propagate phase (which can only happen in incremental mode).
    629 */
    630 static int traversethread (global_State *g, lua_State *th) {
    631   UpVal *uv;
    632   StkId o = th->stack.p;
    633   if (isold(th) || g->gcstate == GCSpropagate)
    634     linkgclist(th, g->grayagain);  /* insert into 'grayagain' list */
    635   if (o == NULL)
    636     return 1;  /* stack not completely built yet */
    637   lua_assert(g->gcstate == GCSatomic ||
    638              th->openupval == NULL || isintwups(th));
    639   for (; o < th->top.p; o++)  /* mark live elements in the stack */
    640     markvalue(g, s2v(o));
    641   for (uv = th->openupval; uv != NULL; uv = uv->u.open.next)
    642     markobject(g, uv);  /* open upvalues cannot be collected */
    643   if (g->gcstate == GCSatomic) {  /* final traversal? */
    644     for (; o < th->stack_last.p + EXTRA_STACK; o++)
    645       setnilvalue(s2v(o));  /* clear dead stack slice */
    646     /* 'remarkupvals' may have removed thread from 'twups' list */
    647     if (!isintwups(th) && th->openupval != NULL) {
    648       th->twups = g->twups;  /* link it back to the list */
    649       g->twups = th;
    650     }
    651   }
    652   else if (!g->gcemergency)
    653     luaD_shrinkstack(th); /* do not change stack in emergency cycle */
    654   return 1 + stacksize(th);
    655 }
    656 
    657 
    658 /*
    659 ** traverse one gray object, turning it to black.
    660 */
    661 static lu_mem propagatemark (global_State *g) {
    662   GCObject *o = g->gray;
    663   nw2black(o);
    664   g->gray = *getgclist(o);  /* remove from 'gray' list */
    665   switch (o->tt) {
    666     case LUA_VTABLE: return traversetable(g, gco2t(o));
    667     case LUA_VUSERDATA: return traverseudata(g, gco2u(o));
    668     case LUA_VLCL: return traverseLclosure(g, gco2lcl(o));
    669     case LUA_VCCL: return traverseCclosure(g, gco2ccl(o));
    670     case LUA_VPROTO: return traverseproto(g, gco2p(o));
    671     case LUA_VTHREAD: return traversethread(g, gco2th(o));
    672     default: lua_assert(0); return 0;
    673   }
    674 }
    675 
    676 
    677 static lu_mem propagateall (global_State *g) {
    678   lu_mem tot = 0;
    679   while (g->gray)
    680     tot += propagatemark(g);
    681   return tot;
    682 }
    683 
    684 
    685 /*
    686 ** Traverse all ephemeron tables propagating marks from keys to values.
    687 ** Repeat until it converges, that is, nothing new is marked. 'dir'
    688 ** inverts the direction of the traversals, trying to speed up
    689 ** convergence on chains in the same table.
    690 **
    691 */
    692 static void convergeephemerons (global_State *g) {
    693   int changed;
    694   int dir = 0;
    695   do {
    696     GCObject *w;
    697     GCObject *next = g->ephemeron;  /* get ephemeron list */
    698     g->ephemeron = NULL;  /* tables may return to this list when traversed */
    699     changed = 0;
    700     while ((w = next) != NULL) {  /* for each ephemeron table */
    701       Table *h = gco2t(w);
    702       next = h->gclist;  /* list is rebuilt during loop */
    703       nw2black(h);  /* out of the list (for now) */
    704       if (traverseephemeron(g, h, dir)) {  /* marked some value? */
    705         propagateall(g);  /* propagate changes */
    706         changed = 1;  /* will have to revisit all ephemeron tables */
    707       }
    708     }
    709     dir = !dir;  /* invert direction next time */
    710   } while (changed);  /* repeat until no more changes */
    711 }
    712 
    713 /* }====================================================== */
    714 
    715 
    716 /*
    717 ** {======================================================
    718 ** Sweep Functions
    719 ** =======================================================
    720 */
    721 
    722 
    723 /*
    724 ** clear entries with unmarked keys from all weaktables in list 'l'
    725 */
    726 static void clearbykeys (global_State *g, GCObject *l) {
    727   for (; l; l = gco2t(l)->gclist) {
    728     Table *h = gco2t(l);
    729     Node *limit = gnodelast(h);
    730     Node *n;
    731     for (n = gnode(h, 0); n < limit; n++) {
    732       if (iscleared(g, gckeyN(n)))  /* unmarked key? */
    733         setempty(gval(n));  /* remove entry */
    734       if (isempty(gval(n)))  /* is entry empty? */
    735         clearkey(n);  /* clear its key */
    736     }
    737   }
    738 }
    739 
    740 
    741 /*
    742 ** clear entries with unmarked values from all weaktables in list 'l' up
    743 ** to element 'f'
    744 */
    745 static void clearbyvalues (global_State *g, GCObject *l, GCObject *f) {
    746   for (; l != f; l = gco2t(l)->gclist) {
    747     Table *h = gco2t(l);
    748     Node *n, *limit = gnodelast(h);
    749     unsigned int i;
    750     unsigned int asize = luaH_realasize(h);
    751     for (i = 0; i < asize; i++) {
    752       TValue *o = &h->array[i];
    753       if (iscleared(g, gcvalueN(o)))  /* value was collected? */
    754         setempty(o);  /* remove entry */
    755     }
    756     for (n = gnode(h, 0); n < limit; n++) {
    757       if (iscleared(g, gcvalueN(gval(n))))  /* unmarked value? */
    758         setempty(gval(n));  /* remove entry */
    759       if (isempty(gval(n)))  /* is entry empty? */
    760         clearkey(n);  /* clear its key */
    761     }
    762   }
    763 }
    764 
    765 
    766 static void freeupval (lua_State *L, UpVal *uv) {
    767   if (upisopen(uv))
    768     luaF_unlinkupval(uv);
    769   luaM_free(L, uv);
    770 }
    771 
    772 
    773 static void freeobj (lua_State *L, GCObject *o) {
    774   switch (o->tt) {
    775     case LUA_VPROTO:
    776       luaF_freeproto(L, gco2p(o));
    777       break;
    778     case LUA_VUPVAL:
    779       freeupval(L, gco2upv(o));
    780       break;
    781     case LUA_VLCL: {
    782       LClosure *cl = gco2lcl(o);
    783       luaM_freemem(L, cl, sizeLclosure(cl->nupvalues));
    784       break;
    785     }
    786     case LUA_VCCL: {
    787       CClosure *cl = gco2ccl(o);
    788       luaM_freemem(L, cl, sizeCclosure(cl->nupvalues));
    789       break;
    790     }
    791     case LUA_VTABLE:
    792       luaH_free(L, gco2t(o));
    793       break;
    794     case LUA_VTHREAD:
    795       luaE_freethread(L, gco2th(o));
    796       break;
    797     case LUA_VUSERDATA: {
    798       Udata *u = gco2u(o);
    799       luaM_freemem(L, o, sizeudata(u->nuvalue, u->len));
    800       break;
    801     }
    802     case LUA_VSHRSTR: {
    803       TString *ts = gco2ts(o);
    804       luaS_remove(L, ts);  /* remove it from hash table */
    805       luaM_freemem(L, ts, sizelstring(ts->shrlen));
    806       break;
    807     }
    808     case LUA_VLNGSTR: {
    809       TString *ts = gco2ts(o);
    810       luaM_freemem(L, ts, sizelstring(ts->u.lnglen));
    811       break;
    812     }
    813     default: lua_assert(0);
    814   }
    815 }
    816 
    817 
    818 /*
    819 ** sweep at most 'countin' elements from a list of GCObjects erasing dead
    820 ** objects, where a dead object is one marked with the old (non current)
    821 ** white; change all non-dead objects back to white, preparing for next
    822 ** collection cycle. Return where to continue the traversal or NULL if
    823 ** list is finished. ('*countout' gets the number of elements traversed.)
    824 */
    825 static GCObject **sweeplist (lua_State *L, GCObject **p, int countin,
    826                              int *countout) {
    827   global_State *g = G(L);
    828   int ow = otherwhite(g);
    829   int i;
    830   int white = luaC_white(g);  /* current white */
    831   for (i = 0; *p != NULL && i < countin; i++) {
    832     GCObject *curr = *p;
    833     int marked = curr->marked;
    834     if (isdeadm(ow, marked)) {  /* is 'curr' dead? */
    835       *p = curr->next;  /* remove 'curr' from list */
    836       freeobj(L, curr);  /* erase 'curr' */
    837     }
    838     else {  /* change mark to 'white' */
    839       curr->marked = cast_byte((marked & ~maskgcbits) | white);
    840       p = &curr->next;  /* go to next element */
    841     }
    842   }
    843   if (countout)
    844     *countout = i;  /* number of elements traversed */
    845   return (*p == NULL) ? NULL : p;
    846 }
    847 
    848 
    849 /*
    850 ** sweep a list until a live object (or end of list)
    851 */
    852 static GCObject **sweeptolive (lua_State *L, GCObject **p) {
    853   GCObject **old = p;
    854   do {
    855     p = sweeplist(L, p, 1, NULL);
    856   } while (p == old);
    857   return p;
    858 }
    859 
    860 /* }====================================================== */
    861 
    862 
    863 /*
    864 ** {======================================================
    865 ** Finalization
    866 ** =======================================================
    867 */
    868 
    869 /*
    870 ** If possible, shrink string table.
    871 */
    872 static void checkSizes (lua_State *L, global_State *g) {
    873   if (!g->gcemergency) {
    874     if (g->strt.nuse < g->strt.size / 4) {  /* string table too big? */
    875       l_mem olddebt = g->GCdebt;
    876       luaS_resize(L, g->strt.size / 2);
    877       g->GCestimate += g->GCdebt - olddebt;  /* correct estimate */
    878     }
    879   }
    880 }
    881 
    882 
    883 /*
    884 ** Get the next udata to be finalized from the 'tobefnz' list, and
    885 ** link it back into the 'allgc' list.
    886 */
    887 static GCObject *udata2finalize (global_State *g) {
    888   GCObject *o = g->tobefnz;  /* get first element */
    889   lua_assert(tofinalize(o));
    890   g->tobefnz = o->next;  /* remove it from 'tobefnz' list */
    891   o->next = g->allgc;  /* return it to 'allgc' list */
    892   g->allgc = o;
    893   resetbit(o->marked, FINALIZEDBIT);  /* object is "normal" again */
    894   if (issweepphase(g))
    895     makewhite(g, o);  /* "sweep" object */
    896   else if (getage(o) == G_OLD1)
    897     g->firstold1 = o;  /* it is the first OLD1 object in the list */
    898   return o;
    899 }
    900 
    901 
    902 static void dothecall (lua_State *L, void *ud) {
    903   UNUSED(ud);
    904   luaD_callnoyield(L, L->top.p - 2, 0);
    905 }
    906 
    907 
    908 static void GCTM (lua_State *L) {
    909   global_State *g = G(L);
    910   const TValue *tm;
    911   TValue v;
    912   lua_assert(!g->gcemergency);
    913   setgcovalue(L, &v, udata2finalize(g));
    914   tm = luaT_gettmbyobj(L, &v, TM_GC);
    915   if (!notm(tm)) {  /* is there a finalizer? */
    916     int status;
    917     lu_byte oldah = L->allowhook;
    918     int oldgcstp  = g->gcstp;
    919     g->gcstp |= GCSTPGC;  /* avoid GC steps */
    920     L->allowhook = 0;  /* stop debug hooks during GC metamethod */
    921     setobj2s(L, L->top.p++, tm);  /* push finalizer... */
    922     setobj2s(L, L->top.p++, &v);  /* ... and its argument */
    923     L->ci->callstatus |= CIST_FIN;  /* will run a finalizer */
    924     status = luaD_pcall(L, dothecall, NULL, savestack(L, L->top.p - 2), 0);
    925     L->ci->callstatus &= ~CIST_FIN;  /* not running a finalizer anymore */
    926     L->allowhook = oldah;  /* restore hooks */
    927     g->gcstp = oldgcstp;  /* restore state */
    928     if (l_unlikely(status != LUA_OK)) {  /* error while running __gc? */
    929       luaE_warnerror(L, "__gc");
    930       L->top.p--;  /* pops error object */
    931     }
    932   }
    933 }
    934 
    935 
    936 /*
    937 ** Call a few finalizers
    938 */
    939 static int runafewfinalizers (lua_State *L, int n) {
    940   global_State *g = G(L);
    941   int i;
    942   for (i = 0; i < n && g->tobefnz; i++)
    943     GCTM(L);  /* call one finalizer */
    944   return i;
    945 }
    946 
    947 
    948 /*
    949 ** call all pending finalizers
    950 */
    951 static void callallpendingfinalizers (lua_State *L) {
    952   global_State *g = G(L);
    953   while (g->tobefnz)
    954     GCTM(L);
    955 }
    956 
    957 
    958 /*
    959 ** find last 'next' field in list 'p' list (to add elements in its end)
    960 */
    961 static GCObject **findlast (GCObject **p) {
    962   while (*p != NULL)
    963     p = &(*p)->next;
    964   return p;
    965 }
    966 
    967 
    968 /*
    969 ** Move all unreachable objects (or 'all' objects) that need
    970 ** finalization from list 'finobj' to list 'tobefnz' (to be finalized).
    971 ** (Note that objects after 'finobjold1' cannot be white, so they
    972 ** don't need to be traversed. In incremental mode, 'finobjold1' is NULL,
    973 ** so the whole list is traversed.)
    974 */
    975 static void separatetobefnz (global_State *g, int all) {
    976   GCObject *curr;
    977   GCObject **p = &g->finobj;
    978   GCObject **lastnext = findlast(&g->tobefnz);
    979   while ((curr = *p) != g->finobjold1) {  /* traverse all finalizable objects */
    980     lua_assert(tofinalize(curr));
    981     if (!(iswhite(curr) || all))  /* not being collected? */
    982       p = &curr->next;  /* don't bother with it */
    983     else {
    984       if (curr == g->finobjsur)  /* removing 'finobjsur'? */
    985         g->finobjsur = curr->next;  /* correct it */
    986       *p = curr->next;  /* remove 'curr' from 'finobj' list */
    987       curr->next = *lastnext;  /* link at the end of 'tobefnz' list */
    988       *lastnext = curr;
    989       lastnext = &curr->next;
    990     }
    991   }
    992 }
    993 
    994 
    995 /*
    996 ** If pointer 'p' points to 'o', move it to the next element.
    997 */
    998 static void checkpointer (GCObject **p, GCObject *o) {
    999   if (o == *p)
   1000     *p = o->next;
   1001 }
   1002 
   1003 
   1004 /*
   1005 ** Correct pointers to objects inside 'allgc' list when
   1006 ** object 'o' is being removed from the list.
   1007 */
   1008 static void correctpointers (global_State *g, GCObject *o) {
   1009   checkpointer(&g->survival, o);
   1010   checkpointer(&g->old1, o);
   1011   checkpointer(&g->reallyold, o);
   1012   checkpointer(&g->firstold1, o);
   1013 }
   1014 
   1015 
   1016 /*
   1017 ** if object 'o' has a finalizer, remove it from 'allgc' list (must
   1018 ** search the list to find it) and link it in 'finobj' list.
   1019 */
   1020 void luaC_checkfinalizer (lua_State *L, GCObject *o, Table *mt) {
   1021   global_State *g = G(L);
   1022   if (tofinalize(o) ||                 /* obj. is already marked... */
   1023       gfasttm(g, mt, TM_GC) == NULL ||    /* or has no finalizer... */
   1024       (g->gcstp & GCSTPCLS))                   /* or closing state? */
   1025     return;  /* nothing to be done */
   1026   else {  /* move 'o' to 'finobj' list */
   1027     GCObject **p;
   1028     if (issweepphase(g)) {
   1029       makewhite(g, o);  /* "sweep" object 'o' */
   1030       if (g->sweepgc == &o->next)  /* should not remove 'sweepgc' object */
   1031         g->sweepgc = sweeptolive(L, g->sweepgc);  /* change 'sweepgc' */
   1032     }
   1033     else
   1034       correctpointers(g, o);
   1035     /* search for pointer pointing to 'o' */
   1036     for (p = &g->allgc; *p != o; p = &(*p)->next) { /* empty */ }
   1037     *p = o->next;  /* remove 'o' from 'allgc' list */
   1038     o->next = g->finobj;  /* link it in 'finobj' list */
   1039     g->finobj = o;
   1040     l_setbit(o->marked, FINALIZEDBIT);  /* mark it as such */
   1041   }
   1042 }
   1043 
   1044 /* }====================================================== */
   1045 
   1046 
   1047 /*
   1048 ** {======================================================
   1049 ** Generational Collector
   1050 ** =======================================================
   1051 */
   1052 
   1053 
   1054 /*
   1055 ** Set the "time" to wait before starting a new GC cycle; cycle will
   1056 ** start when memory use hits the threshold of ('estimate' * pause /
   1057 ** PAUSEADJ). (Division by 'estimate' should be OK: it cannot be zero,
   1058 ** because Lua cannot even start with less than PAUSEADJ bytes).
   1059 */
   1060 static void setpause (global_State *g) {
   1061   l_mem threshold, debt;
   1062   int pause = getgcparam(g->gcpause);
   1063   l_mem estimate = g->GCestimate / PAUSEADJ;  /* adjust 'estimate' */
   1064   lua_assert(estimate > 0);
   1065   threshold = (pause < MAX_LMEM / estimate)  /* overflow? */
   1066             ? estimate * pause  /* no overflow */
   1067             : MAX_LMEM;  /* overflow; truncate to maximum */
   1068   debt = gettotalbytes(g) - threshold;
   1069   if (debt > 0) debt = 0;
   1070   luaE_setdebt(g, debt);
   1071 }
   1072 
   1073 
   1074 /*
   1075 ** Sweep a list of objects to enter generational mode.  Deletes dead
   1076 ** objects and turns the non dead to old. All non-dead threads---which
   1077 ** are now old---must be in a gray list. Everything else is not in a
   1078 ** gray list. Open upvalues are also kept gray.
   1079 */
   1080 static void sweep2old (lua_State *L, GCObject **p) {
   1081   GCObject *curr;
   1082   global_State *g = G(L);
   1083   while ((curr = *p) != NULL) {
   1084     if (iswhite(curr)) {  /* is 'curr' dead? */
   1085       lua_assert(isdead(g, curr));
   1086       *p = curr->next;  /* remove 'curr' from list */
   1087       freeobj(L, curr);  /* erase 'curr' */
   1088     }
   1089     else {  /* all surviving objects become old */
   1090       setage(curr, G_OLD);
   1091       if (curr->tt == LUA_VTHREAD) {  /* threads must be watched */
   1092         lua_State *th = gco2th(curr);
   1093         linkgclist(th, g->grayagain);  /* insert into 'grayagain' list */
   1094       }
   1095       else if (curr->tt == LUA_VUPVAL && upisopen(gco2upv(curr)))
   1096         set2gray(curr);  /* open upvalues are always gray */
   1097       else  /* everything else is black */
   1098         nw2black(curr);
   1099       p = &curr->next;  /* go to next element */
   1100     }
   1101   }
   1102 }
   1103 
   1104 
   1105 /*
   1106 ** Sweep for generational mode. Delete dead objects. (Because the
   1107 ** collection is not incremental, there are no "new white" objects
   1108 ** during the sweep. So, any white object must be dead.) For
   1109 ** non-dead objects, advance their ages and clear the color of
   1110 ** new objects. (Old objects keep their colors.)
   1111 ** The ages of G_TOUCHED1 and G_TOUCHED2 objects cannot be advanced
   1112 ** here, because these old-generation objects are usually not swept
   1113 ** here.  They will all be advanced in 'correctgraylist'. That function
   1114 ** will also remove objects turned white here from any gray list.
   1115 */
   1116 static GCObject **sweepgen (lua_State *L, global_State *g, GCObject **p,
   1117                             GCObject *limit, GCObject **pfirstold1) {
   1118   static const lu_byte nextage[] = {
   1119     G_SURVIVAL,  /* from G_NEW */
   1120     G_OLD1,      /* from G_SURVIVAL */
   1121     G_OLD1,      /* from G_OLD0 */
   1122     G_OLD,       /* from G_OLD1 */
   1123     G_OLD,       /* from G_OLD (do not change) */
   1124     G_TOUCHED1,  /* from G_TOUCHED1 (do not change) */
   1125     G_TOUCHED2   /* from G_TOUCHED2 (do not change) */
   1126   };
   1127   int white = luaC_white(g);
   1128   GCObject *curr;
   1129   while ((curr = *p) != limit) {
   1130     if (iswhite(curr)) {  /* is 'curr' dead? */
   1131       lua_assert(!isold(curr) && isdead(g, curr));
   1132       *p = curr->next;  /* remove 'curr' from list */
   1133       freeobj(L, curr);  /* erase 'curr' */
   1134     }
   1135     else {  /* correct mark and age */
   1136       if (getage(curr) == G_NEW) {  /* new objects go back to white */
   1137         int marked = curr->marked & ~maskgcbits;  /* erase GC bits */
   1138         curr->marked = cast_byte(marked | G_SURVIVAL | white);
   1139       }
   1140       else {  /* all other objects will be old, and so keep their color */
   1141         setage(curr, nextage[getage(curr)]);
   1142         if (getage(curr) == G_OLD1 && *pfirstold1 == NULL)
   1143           *pfirstold1 = curr;  /* first OLD1 object in the list */
   1144       }
   1145       p = &curr->next;  /* go to next element */
   1146     }
   1147   }
   1148   return p;
   1149 }
   1150 
   1151 
   1152 /*
   1153 ** Traverse a list making all its elements white and clearing their
   1154 ** age. In incremental mode, all objects are 'new' all the time,
   1155 ** except for fixed strings (which are always old).
   1156 */
   1157 static void whitelist (global_State *g, GCObject *p) {
   1158   int white = luaC_white(g);
   1159   for (; p != NULL; p = p->next)
   1160     p->marked = cast_byte((p->marked & ~maskgcbits) | white);
   1161 }
   1162 
   1163 
   1164 /*
   1165 ** Correct a list of gray objects. Return pointer to where rest of the
   1166 ** list should be linked.
   1167 ** Because this correction is done after sweeping, young objects might
   1168 ** be turned white and still be in the list. They are only removed.
   1169 ** 'TOUCHED1' objects are advanced to 'TOUCHED2' and remain on the list;
   1170 ** Non-white threads also remain on the list; 'TOUCHED2' objects become
   1171 ** regular old; they and anything else are removed from the list.
   1172 */
   1173 static GCObject **correctgraylist (GCObject **p) {
   1174   GCObject *curr;
   1175   while ((curr = *p) != NULL) {
   1176     GCObject **next = getgclist(curr);
   1177     if (iswhite(curr))
   1178       goto remove;  /* remove all white objects */
   1179     else if (getage(curr) == G_TOUCHED1) {  /* touched in this cycle? */
   1180       lua_assert(isgray(curr));
   1181       nw2black(curr);  /* make it black, for next barrier */
   1182       changeage(curr, G_TOUCHED1, G_TOUCHED2);
   1183       goto remain;  /* keep it in the list and go to next element */
   1184     }
   1185     else if (curr->tt == LUA_VTHREAD) {
   1186       lua_assert(isgray(curr));
   1187       goto remain;  /* keep non-white threads on the list */
   1188     }
   1189     else {  /* everything else is removed */
   1190       lua_assert(isold(curr));  /* young objects should be white here */
   1191       if (getage(curr) == G_TOUCHED2)  /* advance from TOUCHED2... */
   1192         changeage(curr, G_TOUCHED2, G_OLD);  /* ... to OLD */
   1193       nw2black(curr);  /* make object black (to be removed) */
   1194       goto remove;
   1195     }
   1196     remove: *p = *next; continue;
   1197     remain: p = next; continue;
   1198   }
   1199   return p;
   1200 }
   1201 
   1202 
   1203 /*
   1204 ** Correct all gray lists, coalescing them into 'grayagain'.
   1205 */
   1206 static void correctgraylists (global_State *g) {
   1207   GCObject **list = correctgraylist(&g->grayagain);
   1208   *list = g->weak; g->weak = NULL;
   1209   list = correctgraylist(list);
   1210   *list = g->allweak; g->allweak = NULL;
   1211   list = correctgraylist(list);
   1212   *list = g->ephemeron; g->ephemeron = NULL;
   1213   correctgraylist(list);
   1214 }
   1215 
   1216 
   1217 /*
   1218 ** Mark black 'OLD1' objects when starting a new young collection.
   1219 ** Gray objects are already in some gray list, and so will be visited
   1220 ** in the atomic step.
   1221 */
   1222 static void markold (global_State *g, GCObject *from, GCObject *to) {
   1223   GCObject *p;
   1224   for (p = from; p != to; p = p->next) {
   1225     if (getage(p) == G_OLD1) {
   1226       lua_assert(!iswhite(p));
   1227       changeage(p, G_OLD1, G_OLD);  /* now they are old */
   1228       if (isblack(p))
   1229         reallymarkobject(g, p);
   1230     }
   1231   }
   1232 }
   1233 
   1234 
   1235 /*
   1236 ** Finish a young-generation collection.
   1237 */
   1238 static void finishgencycle (lua_State *L, global_State *g) {
   1239   correctgraylists(g);
   1240   checkSizes(L, g);
   1241   g->gcstate = GCSpropagate;  /* skip restart */
   1242   if (!g->gcemergency)
   1243     callallpendingfinalizers(L);
   1244 }
   1245 
   1246 
   1247 /*
   1248 ** Does a young collection. First, mark 'OLD1' objects. Then does the
   1249 ** atomic step. Then, sweep all lists and advance pointers. Finally,
   1250 ** finish the collection.
   1251 */
   1252 static void youngcollection (lua_State *L, global_State *g) {
   1253   GCObject **psurvival;  /* to point to first non-dead survival object */
   1254   GCObject *dummy;  /* dummy out parameter to 'sweepgen' */
   1255   lua_assert(g->gcstate == GCSpropagate);
   1256   if (g->firstold1) {  /* are there regular OLD1 objects? */
   1257     markold(g, g->firstold1, g->reallyold);  /* mark them */
   1258     g->firstold1 = NULL;  /* no more OLD1 objects (for now) */
   1259   }
   1260   markold(g, g->finobj, g->finobjrold);
   1261   markold(g, g->tobefnz, NULL);
   1262   atomic(L);
   1263 
   1264   /* sweep nursery and get a pointer to its last live element */
   1265   g->gcstate = GCSswpallgc;
   1266   psurvival = sweepgen(L, g, &g->allgc, g->survival, &g->firstold1);
   1267   /* sweep 'survival' */
   1268   sweepgen(L, g, psurvival, g->old1, &g->firstold1);
   1269   g->reallyold = g->old1;
   1270   g->old1 = *psurvival;  /* 'survival' survivals are old now */
   1271   g->survival = g->allgc;  /* all news are survivals */
   1272 
   1273   /* repeat for 'finobj' lists */
   1274   dummy = NULL;  /* no 'firstold1' optimization for 'finobj' lists */
   1275   psurvival = sweepgen(L, g, &g->finobj, g->finobjsur, &dummy);
   1276   /* sweep 'survival' */
   1277   sweepgen(L, g, psurvival, g->finobjold1, &dummy);
   1278   g->finobjrold = g->finobjold1;
   1279   g->finobjold1 = *psurvival;  /* 'survival' survivals are old now */
   1280   g->finobjsur = g->finobj;  /* all news are survivals */
   1281 
   1282   sweepgen(L, g, &g->tobefnz, NULL, &dummy);
   1283   finishgencycle(L, g);
   1284 }
   1285 
   1286 
   1287 /*
   1288 ** Clears all gray lists, sweeps objects, and prepare sublists to enter
   1289 ** generational mode. The sweeps remove dead objects and turn all
   1290 ** surviving objects to old. Threads go back to 'grayagain'; everything
   1291 ** else is turned black (not in any gray list).
   1292 */
   1293 static void atomic2gen (lua_State *L, global_State *g) {
   1294   cleargraylists(g);
   1295   /* sweep all elements making them old */
   1296   g->gcstate = GCSswpallgc;
   1297   sweep2old(L, &g->allgc);
   1298   /* everything alive now is old */
   1299   g->reallyold = g->old1 = g->survival = g->allgc;
   1300   g->firstold1 = NULL;  /* there are no OLD1 objects anywhere */
   1301 
   1302   /* repeat for 'finobj' lists */
   1303   sweep2old(L, &g->finobj);
   1304   g->finobjrold = g->finobjold1 = g->finobjsur = g->finobj;
   1305 
   1306   sweep2old(L, &g->tobefnz);
   1307 
   1308   g->gckind = KGC_GEN;
   1309   g->lastatomic = 0;
   1310   g->GCestimate = gettotalbytes(g);  /* base for memory control */
   1311   finishgencycle(L, g);
   1312 }
   1313 
   1314 
   1315 /*
   1316 ** Set debt for the next minor collection, which will happen when
   1317 ** memory grows 'genminormul'%.
   1318 */
   1319 static void setminordebt (global_State *g) {
   1320   luaE_setdebt(g, -(cast(l_mem, (gettotalbytes(g) / 100)) * g->genminormul));
   1321 }
   1322 
   1323 
   1324 /*
   1325 ** Enter generational mode. Must go until the end of an atomic cycle
   1326 ** to ensure that all objects are correctly marked and weak tables
   1327 ** are cleared. Then, turn all objects into old and finishes the
   1328 ** collection.
   1329 */
   1330 static lu_mem entergen (lua_State *L, global_State *g) {
   1331   lu_mem numobjs;
   1332   luaC_runtilstate(L, bitmask(GCSpause));  /* prepare to start a new cycle */
   1333   luaC_runtilstate(L, bitmask(GCSpropagate));  /* start new cycle */
   1334   numobjs = atomic(L);  /* propagates all and then do the atomic stuff */
   1335   atomic2gen(L, g);
   1336   setminordebt(g);  /* set debt assuming next cycle will be minor */
   1337   return numobjs;
   1338 }
   1339 
   1340 
   1341 /*
   1342 ** Enter incremental mode. Turn all objects white, make all
   1343 ** intermediate lists point to NULL (to avoid invalid pointers),
   1344 ** and go to the pause state.
   1345 */
   1346 static void enterinc (global_State *g) {
   1347   whitelist(g, g->allgc);
   1348   g->reallyold = g->old1 = g->survival = NULL;
   1349   whitelist(g, g->finobj);
   1350   whitelist(g, g->tobefnz);
   1351   g->finobjrold = g->finobjold1 = g->finobjsur = NULL;
   1352   g->gcstate = GCSpause;
   1353   g->gckind = KGC_INC;
   1354   g->lastatomic = 0;
   1355 }
   1356 
   1357 
   1358 /*
   1359 ** Change collector mode to 'newmode'.
   1360 */
   1361 void luaC_changemode (lua_State *L, int newmode) {
   1362   global_State *g = G(L);
   1363   if (newmode != g->gckind) {
   1364     if (newmode == KGC_GEN)  /* entering generational mode? */
   1365       entergen(L, g);
   1366     else
   1367       enterinc(g);  /* entering incremental mode */
   1368   }
   1369   g->lastatomic = 0;
   1370 }
   1371 
   1372 
   1373 /*
   1374 ** Does a full collection in generational mode.
   1375 */
   1376 static lu_mem fullgen (lua_State *L, global_State *g) {
   1377   enterinc(g);
   1378   return entergen(L, g);
   1379 }
   1380 
   1381 
   1382 /*
   1383 ** Does a major collection after last collection was a "bad collection".
   1384 **
   1385 ** When the program is building a big structure, it allocates lots of
   1386 ** memory but generates very little garbage. In those scenarios,
   1387 ** the generational mode just wastes time doing small collections, and
   1388 ** major collections are frequently what we call a "bad collection", a
   1389 ** collection that frees too few objects. To avoid the cost of switching
   1390 ** between generational mode and the incremental mode needed for full
   1391 ** (major) collections, the collector tries to stay in incremental mode
   1392 ** after a bad collection, and to switch back to generational mode only
   1393 ** after a "good" collection (one that traverses less than 9/8 objects
   1394 ** of the previous one).
   1395 ** The collector must choose whether to stay in incremental mode or to
   1396 ** switch back to generational mode before sweeping. At this point, it
   1397 ** does not know the real memory in use, so it cannot use memory to
   1398 ** decide whether to return to generational mode. Instead, it uses the
   1399 ** number of objects traversed (returned by 'atomic') as a proxy. The
   1400 ** field 'g->lastatomic' keeps this count from the last collection.
   1401 ** ('g->lastatomic != 0' also means that the last collection was bad.)
   1402 */
   1403 static void stepgenfull (lua_State *L, global_State *g) {
   1404   lu_mem newatomic;  /* count of traversed objects */
   1405   lu_mem lastatomic = g->lastatomic;  /* count from last collection */
   1406   if (g->gckind == KGC_GEN)  /* still in generational mode? */
   1407     enterinc(g);  /* enter incremental mode */
   1408   luaC_runtilstate(L, bitmask(GCSpropagate));  /* start new cycle */
   1409   newatomic = atomic(L);  /* mark everybody */
   1410   if (newatomic < lastatomic + (lastatomic >> 3)) {  /* good collection? */
   1411     atomic2gen(L, g);  /* return to generational mode */
   1412     setminordebt(g);
   1413   }
   1414   else {  /* another bad collection; stay in incremental mode */
   1415     g->GCestimate = gettotalbytes(g);  /* first estimate */;
   1416     entersweep(L);
   1417     luaC_runtilstate(L, bitmask(GCSpause));  /* finish collection */
   1418     setpause(g);
   1419     g->lastatomic = newatomic;
   1420   }
   1421 }
   1422 
   1423 
   1424 /*
   1425 ** Does a generational "step".
   1426 ** Usually, this means doing a minor collection and setting the debt to
   1427 ** make another collection when memory grows 'genminormul'% larger.
   1428 **
   1429 ** However, there are exceptions.  If memory grows 'genmajormul'%
   1430 ** larger than it was at the end of the last major collection (kept
   1431 ** in 'g->GCestimate'), the function does a major collection. At the
   1432 ** end, it checks whether the major collection was able to free a
   1433 ** decent amount of memory (at least half the growth in memory since
   1434 ** previous major collection). If so, the collector keeps its state,
   1435 ** and the next collection will probably be minor again. Otherwise,
   1436 ** we have what we call a "bad collection". In that case, set the field
   1437 ** 'g->lastatomic' to signal that fact, so that the next collection will
   1438 ** go to 'stepgenfull'.
   1439 **
   1440 ** 'GCdebt <= 0' means an explicit call to GC step with "size" zero;
   1441 ** in that case, do a minor collection.
   1442 */
   1443 static void genstep (lua_State *L, global_State *g) {
   1444   if (g->lastatomic != 0)  /* last collection was a bad one? */
   1445     stepgenfull(L, g);  /* do a full step */
   1446   else {
   1447     lu_mem majorbase = g->GCestimate;  /* memory after last major collection */
   1448     lu_mem majorinc = (majorbase / 100) * getgcparam(g->genmajormul);
   1449     if (g->GCdebt > 0 && gettotalbytes(g) > majorbase + majorinc) {
   1450       lu_mem numobjs = fullgen(L, g);  /* do a major collection */
   1451       if (gettotalbytes(g) < majorbase + (majorinc / 2)) {
   1452         /* collected at least half of memory growth since last major
   1453            collection; keep doing minor collections. */
   1454         lua_assert(g->lastatomic == 0);
   1455       }
   1456       else {  /* bad collection */
   1457         g->lastatomic = numobjs;  /* signal that last collection was bad */
   1458         setpause(g);  /* do a long wait for next (major) collection */
   1459       }
   1460     }
   1461     else {  /* regular case; do a minor collection */
   1462       youngcollection(L, g);
   1463       setminordebt(g);
   1464       g->GCestimate = majorbase;  /* preserve base value */
   1465     }
   1466   }
   1467   lua_assert(isdecGCmodegen(g));
   1468 }
   1469 
   1470 /* }====================================================== */
   1471 
   1472 
   1473 /*
   1474 ** {======================================================
   1475 ** GC control
   1476 ** =======================================================
   1477 */
   1478 
   1479 
   1480 /*
   1481 ** Enter first sweep phase.
   1482 ** The call to 'sweeptolive' makes the pointer point to an object
   1483 ** inside the list (instead of to the header), so that the real sweep do
   1484 ** not need to skip objects created between "now" and the start of the
   1485 ** real sweep.
   1486 */
   1487 static void entersweep (lua_State *L) {
   1488   global_State *g = G(L);
   1489   g->gcstate = GCSswpallgc;
   1490   lua_assert(g->sweepgc == NULL);
   1491   g->sweepgc = sweeptolive(L, &g->allgc);
   1492 }
   1493 
   1494 
   1495 /*
   1496 ** Delete all objects in list 'p' until (but not including) object
   1497 ** 'limit'.
   1498 */
   1499 static void deletelist (lua_State *L, GCObject *p, GCObject *limit) {
   1500   while (p != limit) {
   1501     GCObject *next = p->next;
   1502     freeobj(L, p);
   1503     p = next;
   1504   }
   1505 }
   1506 
   1507 
   1508 /*
   1509 ** Call all finalizers of the objects in the given Lua state, and
   1510 ** then free all objects, except for the main thread.
   1511 */
   1512 void luaC_freeallobjects (lua_State *L) {
   1513   global_State *g = G(L);
   1514   g->gcstp = GCSTPCLS;  /* no extra finalizers after here */
   1515   luaC_changemode(L, KGC_INC);
   1516   separatetobefnz(g, 1);  /* separate all objects with finalizers */
   1517   lua_assert(g->finobj == NULL);
   1518   callallpendingfinalizers(L);
   1519   deletelist(L, g->allgc, obj2gco(g->mainthread));
   1520   lua_assert(g->finobj == NULL);  /* no new finalizers */
   1521   deletelist(L, g->fixedgc, NULL);  /* collect fixed objects */
   1522   lua_assert(g->strt.nuse == 0);
   1523 }
   1524 
   1525 
   1526 static lu_mem atomic (lua_State *L) {
   1527   global_State *g = G(L);
   1528   lu_mem work = 0;
   1529   GCObject *origweak, *origall;
   1530   GCObject *grayagain = g->grayagain;  /* save original list */
   1531   g->grayagain = NULL;
   1532   lua_assert(g->ephemeron == NULL && g->weak == NULL);
   1533   lua_assert(!iswhite(g->mainthread));
   1534   g->gcstate = GCSatomic;
   1535   markobject(g, L);  /* mark running thread */
   1536   /* registry and global metatables may be changed by API */
   1537   markvalue(g, &g->l_registry);
   1538   markmt(g);  /* mark global metatables */
   1539   work += propagateall(g);  /* empties 'gray' list */
   1540   /* remark occasional upvalues of (maybe) dead threads */
   1541   work += remarkupvals(g);
   1542   work += propagateall(g);  /* propagate changes */
   1543   g->gray = grayagain;
   1544   work += propagateall(g);  /* traverse 'grayagain' list */
   1545   convergeephemerons(g);
   1546   /* at this point, all strongly accessible objects are marked. */
   1547   /* Clear values from weak tables, before checking finalizers */
   1548   clearbyvalues(g, g->weak, NULL);
   1549   clearbyvalues(g, g->allweak, NULL);
   1550   origweak = g->weak; origall = g->allweak;
   1551   separatetobefnz(g, 0);  /* separate objects to be finalized */
   1552   work += markbeingfnz(g);  /* mark objects that will be finalized */
   1553   work += propagateall(g);  /* remark, to propagate 'resurrection' */
   1554   convergeephemerons(g);
   1555   /* at this point, all resurrected objects are marked. */
   1556   /* remove dead objects from weak tables */
   1557   clearbykeys(g, g->ephemeron);  /* clear keys from all ephemeron tables */
   1558   clearbykeys(g, g->allweak);  /* clear keys from all 'allweak' tables */
   1559   /* clear values from resurrected weak tables */
   1560   clearbyvalues(g, g->weak, origweak);
   1561   clearbyvalues(g, g->allweak, origall);
   1562   luaS_clearcache(g);
   1563   g->currentwhite = cast_byte(otherwhite(g));  /* flip current white */
   1564   lua_assert(g->gray == NULL);
   1565   return work;  /* estimate of slots marked by 'atomic' */
   1566 }
   1567 
   1568 
   1569 static int sweepstep (lua_State *L, global_State *g,
   1570                       int nextstate, GCObject **nextlist) {
   1571   if (g->sweepgc) {
   1572     l_mem olddebt = g->GCdebt;
   1573     int count;
   1574     g->sweepgc = sweeplist(L, g->sweepgc, GCSWEEPMAX, &count);
   1575     g->GCestimate += g->GCdebt - olddebt;  /* update estimate */
   1576     return count;
   1577   }
   1578   else {  /* enter next state */
   1579     g->gcstate = nextstate;
   1580     g->sweepgc = nextlist;
   1581     return 0;  /* no work done */
   1582   }
   1583 }
   1584 
   1585 
   1586 static lu_mem singlestep (lua_State *L) {
   1587   global_State *g = G(L);
   1588   lu_mem work;
   1589   lua_assert(!g->gcstopem);  /* collector is not reentrant */
   1590   g->gcstopem = 1;  /* no emergency collections while collecting */
   1591   switch (g->gcstate) {
   1592     case GCSpause: {
   1593       restartcollection(g);
   1594       g->gcstate = GCSpropagate;
   1595       work = 1;
   1596       break;
   1597     }
   1598     case GCSpropagate: {
   1599       if (g->gray == NULL) {  /* no more gray objects? */
   1600         g->gcstate = GCSenteratomic;  /* finish propagate phase */
   1601         work = 0;
   1602       }
   1603       else
   1604         work = propagatemark(g);  /* traverse one gray object */
   1605       break;
   1606     }
   1607     case GCSenteratomic: {
   1608       work = atomic(L);  /* work is what was traversed by 'atomic' */
   1609       entersweep(L);
   1610       g->GCestimate = gettotalbytes(g);  /* first estimate */;
   1611       break;
   1612     }
   1613     case GCSswpallgc: {  /* sweep "regular" objects */
   1614       work = sweepstep(L, g, GCSswpfinobj, &g->finobj);
   1615       break;
   1616     }
   1617     case GCSswpfinobj: {  /* sweep objects with finalizers */
   1618       work = sweepstep(L, g, GCSswptobefnz, &g->tobefnz);
   1619       break;
   1620     }
   1621     case GCSswptobefnz: {  /* sweep objects to be finalized */
   1622       work = sweepstep(L, g, GCSswpend, NULL);
   1623       break;
   1624     }
   1625     case GCSswpend: {  /* finish sweeps */
   1626       checkSizes(L, g);
   1627       g->gcstate = GCScallfin;
   1628       work = 0;
   1629       break;
   1630     }
   1631     case GCScallfin: {  /* call remaining finalizers */
   1632       if (g->tobefnz && !g->gcemergency) {
   1633         g->gcstopem = 0;  /* ok collections during finalizers */
   1634         work = runafewfinalizers(L, GCFINMAX) * GCFINALIZECOST;
   1635       }
   1636       else {  /* emergency mode or no more finalizers */
   1637         g->gcstate = GCSpause;  /* finish collection */
   1638         work = 0;
   1639       }
   1640       break;
   1641     }
   1642     default: lua_assert(0); return 0;
   1643   }
   1644   g->gcstopem = 0;
   1645   return work;
   1646 }
   1647 
   1648 
   1649 /*
   1650 ** advances the garbage collector until it reaches a state allowed
   1651 ** by 'statemask'
   1652 */
   1653 void luaC_runtilstate (lua_State *L, int statesmask) {
   1654   global_State *g = G(L);
   1655   while (!testbit(statesmask, g->gcstate))
   1656     singlestep(L);
   1657 }
   1658 
   1659 
   1660 
   1661 /*
   1662 ** Performs a basic incremental step. The debt and step size are
   1663 ** converted from bytes to "units of work"; then the function loops
   1664 ** running single steps until adding that many units of work or
   1665 ** finishing a cycle (pause state). Finally, it sets the debt that
   1666 ** controls when next step will be performed.
   1667 */
   1668 static void incstep (lua_State *L, global_State *g) {
   1669   int stepmul = (getgcparam(g->gcstepmul) | 1);  /* avoid division by 0 */
   1670   l_mem debt = (g->GCdebt / WORK2MEM) * stepmul;
   1671   l_mem stepsize = (g->gcstepsize <= log2maxs(l_mem))
   1672                  ? ((cast(l_mem, 1) << g->gcstepsize) / WORK2MEM) * stepmul
   1673                  : MAX_LMEM;  /* overflow; keep maximum value */
   1674   do {  /* repeat until pause or enough "credit" (negative debt) */
   1675     lu_mem work = singlestep(L);  /* perform one single step */
   1676     debt -= work;
   1677   } while (debt > -stepsize && g->gcstate != GCSpause);
   1678   if (g->gcstate == GCSpause)
   1679     setpause(g);  /* pause until next cycle */
   1680   else {
   1681     debt = (debt / stepmul) * WORK2MEM;  /* convert 'work units' to bytes */
   1682     luaE_setdebt(g, debt);
   1683   }
   1684 }
   1685 
   1686 /*
   1687 ** Performs a basic GC step if collector is running. (If collector is
   1688 ** not running, set a reasonable debt to avoid it being called at
   1689 ** every single check.)
   1690 */
   1691 void luaC_step (lua_State *L) {
   1692   global_State *g = G(L);
   1693   if (!gcrunning(g))  /* not running? */
   1694     luaE_setdebt(g, -2000);
   1695   else {
   1696     if(isdecGCmodegen(g))
   1697       genstep(L, g);
   1698     else
   1699       incstep(L, g);
   1700   }
   1701 }
   1702 
   1703 
   1704 /*
   1705 ** Perform a full collection in incremental mode.
   1706 ** Before running the collection, check 'keepinvariant'; if it is true,
   1707 ** there may be some objects marked as black, so the collector has
   1708 ** to sweep all objects to turn them back to white (as white has not
   1709 ** changed, nothing will be collected).
   1710 */
   1711 static void fullinc (lua_State *L, global_State *g) {
   1712   if (keepinvariant(g))  /* black objects? */
   1713     entersweep(L); /* sweep everything to turn them back to white */
   1714   /* finish any pending sweep phase to start a new cycle */
   1715   luaC_runtilstate(L, bitmask(GCSpause));
   1716   luaC_runtilstate(L, bitmask(GCScallfin));  /* run up to finalizers */
   1717   /* estimate must be correct after a full GC cycle */
   1718   lua_assert(g->GCestimate == gettotalbytes(g));
   1719   luaC_runtilstate(L, bitmask(GCSpause));  /* finish collection */
   1720   setpause(g);
   1721 }
   1722 
   1723 
   1724 /*
   1725 ** Performs a full GC cycle; if 'isemergency', set a flag to avoid
   1726 ** some operations which could change the interpreter state in some
   1727 ** unexpected ways (running finalizers and shrinking some structures).
   1728 */
   1729 void luaC_fullgc (lua_State *L, int isemergency) {
   1730   global_State *g = G(L);
   1731   lua_assert(!g->gcemergency);
   1732   g->gcemergency = isemergency;  /* set flag */
   1733   if (g->gckind == KGC_INC)
   1734     fullinc(L, g);
   1735   else
   1736     fullgen(L, g);
   1737   g->gcemergency = 0;
   1738 }
   1739 
   1740 /* }====================================================== */
   1741 
   1742 
   1743