Allow returning something of type void in a function that returns void
[delight/core.git] / dmd2 / inline.c
blob261ebea43c0de5d1058f9c218497bb62299af770
2 // Copyright (c) 1999-2007 by Digital Mars
3 // All Rights Reserved
4 // written by Walter Bright
5 // http://www.digitalmars.com
6 // License for redistribution is by either the Artistic License
7 // in artistic.txt, or the GNU General Public License in gnu.txt.
8 // See the included readme.txt for details.
10 // Routines to perform function inlining
12 #define LOG 0
14 #include <stdio.h>
15 #include <stdlib.h>
16 #include <assert.h>
18 #include "id.h"
19 #include "init.h"
20 #include "declaration.h"
21 #include "aggregate.h"
22 #include "expression.h"
23 #include "statement.h"
24 #include "mtype.h"
26 /* ========== Compute cost of inlining =============== */
28 /* Walk trees to determine if inlining can be done, and if so,
29 * if it is too complex to be worth inlining or not.
32 struct InlineCostState
34 int nested;
35 int hasthis;
36 int hdrscan; // !=0 if inline scan for 'header' content
37 FuncDeclaration *fd;
40 const int COST_MAX = 250;
42 int Statement::inlineCost(InlineCostState *ics)
44 return COST_MAX; // default is we can't inline it
47 int ExpStatement::inlineCost(InlineCostState *ics)
49 return exp ? exp->inlineCost(ics) : 0;
52 int CompoundStatement::inlineCost(InlineCostState *ics)
53 { int cost = 0;
55 for (size_t i = 0; i < statements->dim; i++)
56 { Statement *s = (Statement *) statements->data[i];
57 if (s)
59 cost += s->inlineCost(ics);
60 if (cost >= COST_MAX)
61 break;
64 return cost;
67 int UnrolledLoopStatement::inlineCost(InlineCostState *ics)
68 { int cost = 0;
70 for (size_t i = 0; i < statements->dim; i++)
71 { Statement *s = (Statement *) statements->data[i];
72 if (s)
74 cost += s->inlineCost(ics);
75 if (cost >= COST_MAX)
76 break;
79 return cost;
82 int IfStatement::inlineCost(InlineCostState *ics)
84 int cost;
86 /* Can't declare variables inside ?: expressions, so
87 * we cannot inline if a variable is declared.
89 if (arg)
90 return COST_MAX;
92 cost = condition->inlineCost(ics);
94 /* Specifically allow:
95 * if (condition)
96 * return exp1;
97 * else
98 * return exp2;
99 * Otherwise, we can't handle return statements nested in if's.
102 if (elsebody && ifbody &&
103 ifbody->isReturnStatement() &&
104 elsebody->isReturnStatement())
106 cost += ifbody->inlineCost(ics);
107 cost += elsebody->inlineCost(ics);
108 //printf("cost = %d\n", cost);
110 else
112 ics->nested += 1;
113 if (ifbody)
114 cost += ifbody->inlineCost(ics);
115 if (elsebody)
116 cost += elsebody->inlineCost(ics);
117 ics->nested -= 1;
119 return cost;
122 int ReturnStatement::inlineCost(InlineCostState *ics)
124 // Can't handle return statements nested in if's
125 if (ics->nested)
126 return COST_MAX;
127 return exp ? exp->inlineCost(ics) : 0;
130 /* -------------------------- */
132 int arrayInlineCost(InlineCostState *ics, Array *arguments)
133 { int cost = 0;
135 if (arguments)
137 for (int i = 0; i < arguments->dim; i++)
138 { Expression *e = (Expression *)arguments->data[i];
140 if (e)
141 cost += e->inlineCost(ics);
144 return cost;
147 int Expression::inlineCost(InlineCostState *ics)
149 return 1;
152 int VarExp::inlineCost(InlineCostState *ics)
154 //printf("VarExp::inlineCost() %s\n", toChars());
155 return 1;
158 int ThisExp::inlineCost(InlineCostState *ics)
160 FuncDeclaration *fd = ics->fd;
161 if (!ics->hdrscan)
162 if (fd->isNested() || !ics->hasthis)
163 return COST_MAX;
164 return 1;
167 int SuperExp::inlineCost(InlineCostState *ics)
169 FuncDeclaration *fd = ics->fd;
170 if (!ics->hdrscan)
171 if (fd->isNested() || !ics->hasthis)
172 return COST_MAX;
173 return 1;
176 int TupleExp::inlineCost(InlineCostState *ics)
178 return 1 + arrayInlineCost(ics, exps);
181 int ArrayLiteralExp::inlineCost(InlineCostState *ics)
183 return 1 + arrayInlineCost(ics, elements);
186 int AssocArrayLiteralExp::inlineCost(InlineCostState *ics)
188 return 1 + arrayInlineCost(ics, keys) + arrayInlineCost(ics, values);
191 int StructLiteralExp::inlineCost(InlineCostState *ics)
193 return 1 + arrayInlineCost(ics, elements);
196 int FuncExp::inlineCost(InlineCostState *ics)
198 // Right now, this makes the function be output to the .obj file twice.
199 return COST_MAX;
202 int DelegateExp::inlineCost(InlineCostState *ics)
204 return COST_MAX;
207 int DeclarationExp::inlineCost(InlineCostState *ics)
208 { int cost = 0;
209 VarDeclaration *vd;
211 //printf("DeclarationExp::inlineCost()\n");
212 vd = declaration->isVarDeclaration();
213 if (vd)
215 TupleDeclaration *td = vd->toAlias()->isTupleDeclaration();
216 if (td)
218 #if 1
219 return COST_MAX; // finish DeclarationExp::doInline
220 #else
221 for (size_t i = 0; i < td->objects->dim; i++)
222 { Object *o = (Object *)td->objects->data[i];
223 if (o->dyncast() != DYNCAST_EXPRESSION)
224 return COST_MAX;
225 Expression *eo = (Expression *)o;
226 if (eo->op != TOKdsymbol)
227 return COST_MAX;
229 return td->objects->dim;
230 #endif
232 if (!ics->hdrscan && vd->isDataseg())
233 return COST_MAX;
234 cost += 1;
236 // Scan initializer (vd->init)
237 if (vd->init)
239 ExpInitializer *ie = vd->init->isExpInitializer();
241 if (ie)
243 cost += ie->exp->inlineCost(ics);
248 // These can contain functions, which when copied, get output twice.
249 if (declaration->isStructDeclaration() ||
250 declaration->isClassDeclaration() ||
251 declaration->isFuncDeclaration() ||
252 declaration->isTypedefDeclaration() ||
253 declaration->isTemplateMixin())
254 return COST_MAX;
256 //printf("DeclarationExp::inlineCost('%s')\n", toChars());
257 return cost;
260 int UnaExp::inlineCost(InlineCostState *ics)
262 return 1 + e1->inlineCost(ics);
265 int AssertExp::inlineCost(InlineCostState *ics)
267 return 1 + e1->inlineCost(ics) + (msg ? msg->inlineCost(ics) : 0);
270 int BinExp::inlineCost(InlineCostState *ics)
272 return 1 + e1->inlineCost(ics) + e2->inlineCost(ics);
275 int CallExp::inlineCost(InlineCostState *ics)
277 return 1 + e1->inlineCost(ics) + arrayInlineCost(ics, arguments);
280 int SliceExp::inlineCost(InlineCostState *ics)
281 { int cost;
283 cost = 1 + e1->inlineCost(ics);
284 if (lwr)
285 cost += lwr->inlineCost(ics);
286 if (upr)
287 cost += upr->inlineCost(ics);
288 return cost;
291 int ArrayExp::inlineCost(InlineCostState *ics)
293 return 1 + e1->inlineCost(ics) + arrayInlineCost(ics, arguments);
297 int CondExp::inlineCost(InlineCostState *ics)
299 return 1 +
300 e1->inlineCost(ics) +
301 e2->inlineCost(ics) +
302 econd->inlineCost(ics);
306 /* ======================== Perform the inlining ============================== */
308 /* Inlining is done by:
309 * o Converting to an Expression
310 * o Copying the trees of the function to be inlined
311 * o Renaming the variables
314 struct InlineDoState
316 VarDeclaration *vthis;
317 Array from; // old Dsymbols
318 Array to; // parallel array of new Dsymbols
319 Dsymbol *parent; // new parent
322 Expression *Statement::doInline(InlineDoState *ids)
324 assert(0);
325 return NULL; // default is we can't inline it
328 Expression *ExpStatement::doInline(InlineDoState *ids)
330 #if LOG
331 if (exp) printf("ExpStatement::doInline() '%s'\n", exp->toChars());
332 #endif
333 return exp ? exp->doInline(ids) : NULL;
336 Expression *CompoundStatement::doInline(InlineDoState *ids)
338 Expression *e = NULL;
340 //printf("CompoundStatement::doInline() %d\n", statements->dim);
341 for (size_t i = 0; i < statements->dim; i++)
342 { Statement *s = (Statement *) statements->data[i];
343 if (s)
345 Expression *e2 = s->doInline(ids);
346 e = Expression::combine(e, e2);
347 if (s->isReturnStatement())
348 break;
350 /* Check for:
351 * if (condition)
352 * return exp1;
353 * else
354 * return exp2;
356 IfStatement *ifs = s->isIfStatement();
357 if (ifs && ifs->elsebody && ifs->ifbody &&
358 ifs->ifbody->isReturnStatement() &&
359 ifs->elsebody->isReturnStatement()
361 break;
365 return e;
368 Expression *UnrolledLoopStatement::doInline(InlineDoState *ids)
370 Expression *e = NULL;
372 //printf("UnrolledLoopStatement::doInline() %d\n", statements->dim);
373 for (size_t i = 0; i < statements->dim; i++)
374 { Statement *s = (Statement *) statements->data[i];
375 if (s)
377 Expression *e2 = s->doInline(ids);
378 e = Expression::combine(e, e2);
379 if (s->isReturnStatement())
380 break;
383 return e;
386 Expression *IfStatement::doInline(InlineDoState *ids)
388 Expression *econd;
389 Expression *e1;
390 Expression *e2;
391 Expression *e;
393 assert(!arg);
394 econd = condition->doInline(ids);
395 assert(econd);
396 if (ifbody)
397 e1 = ifbody->doInline(ids);
398 else
399 e1 = NULL;
400 if (elsebody)
401 e2 = elsebody->doInline(ids);
402 else
403 e2 = NULL;
404 if (e1 && e2)
406 e = new CondExp(econd->loc, econd, e1, e2);
407 e->type = e1->type;
409 else if (e1)
411 e = new AndAndExp(econd->loc, econd, e1);
412 e->type = Type::tvoid;
414 else if (e2)
416 e = new OrOrExp(econd->loc, econd, e2);
417 e->type = Type::tvoid;
419 else
421 e = econd;
423 return e;
426 Expression *ReturnStatement::doInline(InlineDoState *ids)
428 //printf("ReturnStatement::doInline() '%s'\n", exp ? exp->toChars() : "");
429 return exp ? exp->doInline(ids) : 0;
432 /* --------------------------------------------------------------- */
434 /******************************
435 * Perform doInline() on an array of Expressions.
438 Expressions *arrayExpressiondoInline(Expressions *a, InlineDoState *ids)
439 { Expressions *newa = NULL;
441 if (a)
443 newa = new Expressions();
444 newa->setDim(a->dim);
446 for (int i = 0; i < a->dim; i++)
447 { Expression *e = (Expression *)a->data[i];
449 if (e)
451 e = e->doInline(ids);
452 newa->data[i] = (void *)e;
456 return newa;
459 Expression *Expression::doInline(InlineDoState *ids)
461 //printf("Expression::doInline(%s): %s\n", Token::toChars(op), toChars());
462 return copy();
465 Expression *SymOffExp::doInline(InlineDoState *ids)
467 int i;
469 //printf("SymOffExp::doInline(%s)\n", toChars());
470 for (i = 0; i < ids->from.dim; i++)
472 if (var == (Declaration *)ids->from.data[i])
474 SymOffExp *se = (SymOffExp *)copy();
476 se->var = (Declaration *)ids->to.data[i];
477 return se;
480 return this;
483 Expression *VarExp::doInline(InlineDoState *ids)
485 int i;
487 //printf("VarExp::doInline(%s)\n", toChars());
488 for (i = 0; i < ids->from.dim; i++)
490 if (var == (Declaration *)ids->from.data[i])
492 VarExp *ve = (VarExp *)copy();
494 ve->var = (Declaration *)ids->to.data[i];
495 return ve;
498 return this;
501 Expression *ThisExp::doInline(InlineDoState *ids)
503 //if (!ids->vthis)
504 //error("no 'this' when inlining %s", ids->parent->toChars());
505 if (!ids->vthis)
507 return this;
510 VarExp *ve = new VarExp(loc, ids->vthis);
511 ve->type = type;
512 return ve;
515 Expression *SuperExp::doInline(InlineDoState *ids)
517 assert(ids->vthis);
519 VarExp *ve = new VarExp(loc, ids->vthis);
520 ve->type = type;
521 return ve;
524 Expression *DeclarationExp::doInline(InlineDoState *ids)
525 { DeclarationExp *de = (DeclarationExp *)copy();
526 VarDeclaration *vd;
528 //printf("DeclarationExp::doInline(%s)\n", toChars());
529 vd = declaration->isVarDeclaration();
530 if (vd)
532 #if 0
533 // Need to figure this out before inlining can work for tuples
534 TupleDeclaration *td = vd->toAlias()->isTupleDeclaration();
535 if (td)
537 for (size_t i = 0; i < td->objects->dim; i++)
538 { DsymbolExp *se = (DsymbolExp *)td->objects->data[i];
539 assert(se->op == TOKdsymbol);
540 se->s;
542 return st->objects->dim;
544 #endif
545 if (vd->isStatic())
547 else
549 VarDeclaration *vto;
551 vto = new VarDeclaration(vd->loc, vd->type, vd->ident, vd->init);
552 *vto = *vd;
553 vto->parent = ids->parent;
554 vto->csym = NULL;
555 vto->isym = NULL;
557 ids->from.push(vd);
558 ids->to.push(vto);
560 if (vd->init)
562 if (vd->init->isVoidInitializer())
564 vto->init = new VoidInitializer(vd->init->loc);
566 else
568 ExpInitializer *ie = vd->init->isExpInitializer();
569 assert(ie);
570 vto->init = new ExpInitializer(ie->loc, ie->exp->doInline(ids));
573 de->declaration = (Dsymbol *) (void *)vto;
576 /* This needs work, like DeclarationExp::toElem(), if we are
577 * to handle TemplateMixin's. For now, we just don't inline them.
579 return de;
582 Expression *NewExp::doInline(InlineDoState *ids)
584 //printf("NewExp::doInline(): %s\n", toChars());
585 NewExp *ne = (NewExp *)copy();
587 if (thisexp)
588 ne->thisexp = thisexp->doInline(ids);
589 ne->newargs = arrayExpressiondoInline(ne->newargs, ids);
590 ne->arguments = arrayExpressiondoInline(ne->arguments, ids);
591 return ne;
594 Expression *UnaExp::doInline(InlineDoState *ids)
596 UnaExp *ue = (UnaExp *)copy();
598 ue->e1 = e1->doInline(ids);
599 return ue;
602 Expression *AssertExp::doInline(InlineDoState *ids)
604 AssertExp *ae = (AssertExp *)copy();
606 ae->e1 = e1->doInline(ids);
607 if (msg)
608 ae->msg = msg->doInline(ids);
609 return ae;
612 Expression *BinExp::doInline(InlineDoState *ids)
614 BinExp *be = (BinExp *)copy();
616 be->e1 = e1->doInline(ids);
617 be->e2 = e2->doInline(ids);
618 return be;
621 Expression *CallExp::doInline(InlineDoState *ids)
623 CallExp *ce;
625 ce = (CallExp *)copy();
626 ce->e1 = e1->doInline(ids);
627 ce->arguments = arrayExpressiondoInline(arguments, ids);
628 return ce;
632 Expression *IndexExp::doInline(InlineDoState *ids)
634 IndexExp *are = (IndexExp *)copy();
636 are->e1 = e1->doInline(ids);
638 if (lengthVar)
639 { //printf("lengthVar\n");
640 VarDeclaration *vd = lengthVar;
641 ExpInitializer *ie;
642 ExpInitializer *ieto;
643 VarDeclaration *vto;
645 vto = new VarDeclaration(vd->loc, vd->type, vd->ident, vd->init);
646 *vto = *vd;
647 vto->parent = ids->parent;
648 vto->csym = NULL;
649 vto->isym = NULL;
651 ids->from.push(vd);
652 ids->to.push(vto);
654 if (vd->init)
656 ie = vd->init->isExpInitializer();
657 assert(ie);
658 ieto = new ExpInitializer(ie->loc, ie->exp->doInline(ids));
659 vto->init = ieto;
662 are->lengthVar = (VarDeclaration *) (void *)vto;
664 are->e2 = e2->doInline(ids);
665 return are;
669 Expression *SliceExp::doInline(InlineDoState *ids)
671 SliceExp *are = (SliceExp *)copy();
673 are->e1 = e1->doInline(ids);
675 if (lengthVar)
676 { //printf("lengthVar\n");
677 VarDeclaration *vd = lengthVar;
678 ExpInitializer *ie;
679 ExpInitializer *ieto;
680 VarDeclaration *vto;
682 vto = new VarDeclaration(vd->loc, vd->type, vd->ident, vd->init);
683 *vto = *vd;
684 vto->parent = ids->parent;
685 vto->csym = NULL;
686 vto->isym = NULL;
688 ids->from.push(vd);
689 ids->to.push(vto);
691 if (vd->init)
693 ie = vd->init->isExpInitializer();
694 assert(ie);
695 ieto = new ExpInitializer(ie->loc, ie->exp->doInline(ids));
696 vto->init = ieto;
699 are->lengthVar = (VarDeclaration *) (void *)vto;
701 if (lwr)
702 are->lwr = lwr->doInline(ids);
703 if (upr)
704 are->upr = upr->doInline(ids);
705 return are;
709 Expression *TupleExp::doInline(InlineDoState *ids)
711 TupleExp *ce;
713 ce = (TupleExp *)copy();
714 ce->exps = arrayExpressiondoInline(exps, ids);
715 return ce;
719 Expression *ArrayLiteralExp::doInline(InlineDoState *ids)
721 ArrayLiteralExp *ce;
723 ce = (ArrayLiteralExp *)copy();
724 ce->elements = arrayExpressiondoInline(elements, ids);
725 return ce;
729 Expression *AssocArrayLiteralExp::doInline(InlineDoState *ids)
731 AssocArrayLiteralExp *ce;
733 ce = (AssocArrayLiteralExp *)copy();
734 ce->keys = arrayExpressiondoInline(keys, ids);
735 ce->values = arrayExpressiondoInline(values, ids);
736 return ce;
740 Expression *StructLiteralExp::doInline(InlineDoState *ids)
742 StructLiteralExp *ce;
744 ce = (StructLiteralExp *)copy();
745 ce->elements = arrayExpressiondoInline(elements, ids);
746 return ce;
750 Expression *ArrayExp::doInline(InlineDoState *ids)
752 ArrayExp *ce;
754 ce = (ArrayExp *)copy();
755 ce->e1 = e1->doInline(ids);
756 ce->arguments = arrayExpressiondoInline(arguments, ids);
757 return ce;
761 Expression *CondExp::doInline(InlineDoState *ids)
763 CondExp *ce = (CondExp *)copy();
765 ce->econd = econd->doInline(ids);
766 ce->e1 = e1->doInline(ids);
767 ce->e2 = e2->doInline(ids);
768 return ce;
772 /* ========== Walk the parse trees, and inline expand functions ============= */
774 /* Walk the trees, looking for functions to inline.
775 * Inline any that can be.
778 struct InlineScanState
780 FuncDeclaration *fd; // function being scanned
783 Statement *Statement::inlineScan(InlineScanState *iss)
785 return this;
788 Statement *ExpStatement::inlineScan(InlineScanState *iss)
790 #if LOG
791 printf("ExpStatement::inlineScan(%s)\n", toChars());
792 #endif
793 if (exp)
794 exp = exp->inlineScan(iss);
795 return this;
798 Statement *CompoundStatement::inlineScan(InlineScanState *iss)
800 for (size_t i = 0; i < statements->dim; i++)
801 { Statement *s = (Statement *) statements->data[i];
802 if (s)
803 statements->data[i] = (void *)s->inlineScan(iss);
805 return this;
808 Statement *UnrolledLoopStatement::inlineScan(InlineScanState *iss)
810 for (size_t i = 0; i < statements->dim; i++)
811 { Statement *s = (Statement *) statements->data[i];
812 if (s)
813 statements->data[i] = (void *)s->inlineScan(iss);
815 return this;
818 Statement *ScopeStatement::inlineScan(InlineScanState *iss)
820 if (statement)
821 statement = statement->inlineScan(iss);
822 return this;
825 Statement *WhileStatement::inlineScan(InlineScanState *iss)
827 condition = condition->inlineScan(iss);
828 body = body ? body->inlineScan(iss) : NULL;
829 return this;
833 Statement *DoStatement::inlineScan(InlineScanState *iss)
835 body = body ? body->inlineScan(iss) : NULL;
836 condition = condition->inlineScan(iss);
837 return this;
841 Statement *ForStatement::inlineScan(InlineScanState *iss)
843 if (init)
844 init = init->inlineScan(iss);
845 if (condition)
846 condition = condition->inlineScan(iss);
847 if (increment)
848 increment = increment->inlineScan(iss);
849 body = body->inlineScan(iss);
850 return this;
854 Statement *ForeachStatement::inlineScan(InlineScanState *iss)
856 aggr = aggr->inlineScan(iss);
857 if (body)
858 body = body->inlineScan(iss);
859 return this;
863 #if V2
864 Statement *ForeachRangeStatement::inlineScan(InlineScanState *iss)
866 lwr = lwr->inlineScan(iss);
867 upr = upr->inlineScan(iss);
868 if (body)
869 body = body->inlineScan(iss);
870 return this;
872 #endif
875 Statement *IfStatement::inlineScan(InlineScanState *iss)
877 condition = condition->inlineScan(iss);
878 if (ifbody)
879 ifbody = ifbody->inlineScan(iss);
880 if (elsebody)
881 elsebody = elsebody->inlineScan(iss);
882 return this;
886 Statement *SwitchStatement::inlineScan(InlineScanState *iss)
888 //printf("SwitchStatement::inlineScan()\n");
889 condition = condition->inlineScan(iss);
890 body = body ? body->inlineScan(iss) : NULL;
891 if (sdefault)
892 sdefault = (DefaultStatement *)sdefault->inlineScan(iss);
893 if (cases)
895 for (int i = 0; i < cases->dim; i++)
896 { Statement *s;
898 s = (Statement *) cases->data[i];
899 cases->data[i] = (void *)s->inlineScan(iss);
902 return this;
906 Statement *CaseStatement::inlineScan(InlineScanState *iss)
908 //printf("CaseStatement::inlineScan()\n");
909 exp = exp->inlineScan(iss);
910 if (statement)
911 statement = statement->inlineScan(iss);
912 return this;
916 Statement *DefaultStatement::inlineScan(InlineScanState *iss)
918 if (statement)
919 statement = statement->inlineScan(iss);
920 return this;
924 Statement *ReturnStatement::inlineScan(InlineScanState *iss)
926 if (exp)
927 exp = exp->inlineScan(iss);
928 return this;
932 Statement *SynchronizedStatement::inlineScan(InlineScanState *iss)
934 if (exp)
935 exp = exp->inlineScan(iss);
936 if (body)
937 body = body->inlineScan(iss);
938 return this;
942 Statement *WithStatement::inlineScan(InlineScanState *iss)
944 if (exp)
945 exp = exp->inlineScan(iss);
946 if (body)
947 body = body->inlineScan(iss);
948 return this;
952 Statement *TryCatchStatement::inlineScan(InlineScanState *iss)
954 if (body)
955 body = body->inlineScan(iss);
956 if (catches)
958 for (int i = 0; i < catches->dim; i++)
959 { Catch *c = (Catch *)catches->data[i];
961 if (c->handler)
962 c->handler = c->handler->inlineScan(iss);
965 return this;
969 Statement *TryFinallyStatement::inlineScan(InlineScanState *iss)
971 if (body)
972 body = body->inlineScan(iss);
973 if (finalbody)
974 finalbody = finalbody->inlineScan(iss);
975 return this;
979 Statement *ThrowStatement::inlineScan(InlineScanState *iss)
981 if (exp)
982 exp = exp->inlineScan(iss);
983 return this;
987 Statement *VolatileStatement::inlineScan(InlineScanState *iss)
989 if (statement)
990 statement = statement->inlineScan(iss);
991 return this;
995 Statement *LabelStatement::inlineScan(InlineScanState *iss)
997 if (statement)
998 statement = statement->inlineScan(iss);
999 return this;
1002 /* -------------------------- */
1004 void arrayInlineScan(InlineScanState *iss, Array *arguments)
1006 if (arguments)
1008 for (int i = 0; i < arguments->dim; i++)
1009 { Expression *e = (Expression *)arguments->data[i];
1011 if (e)
1013 e = e->inlineScan(iss);
1014 arguments->data[i] = (void *)e;
1020 Expression *Expression::inlineScan(InlineScanState *iss)
1022 return this;
1025 void scanVar(Dsymbol *s, InlineScanState *iss)
1027 VarDeclaration *vd = s->isVarDeclaration();
1028 if (vd)
1030 TupleDeclaration *td = vd->toAlias()->isTupleDeclaration();
1031 if (td)
1033 for (size_t i = 0; i < td->objects->dim; i++)
1034 { DsymbolExp *se = (DsymbolExp *)td->objects->data[i];
1035 assert(se->op == TOKdsymbol);
1036 scanVar(se->s, iss);
1039 else
1041 // Scan initializer (vd->init)
1042 if (vd->init)
1044 ExpInitializer *ie = vd->init->isExpInitializer();
1046 if (ie)
1048 ie->exp = ie->exp->inlineScan(iss);
1055 Expression *DeclarationExp::inlineScan(InlineScanState *iss)
1057 //printf("DeclarationExp::inlineScan()\n");
1058 scanVar(declaration, iss);
1059 return this;
1062 Expression *UnaExp::inlineScan(InlineScanState *iss)
1064 e1 = e1->inlineScan(iss);
1065 return this;
1068 Expression *AssertExp::inlineScan(InlineScanState *iss)
1070 e1 = e1->inlineScan(iss);
1071 if (msg)
1072 msg = msg->inlineScan(iss);
1073 return this;
1076 Expression *BinExp::inlineScan(InlineScanState *iss)
1078 e1 = e1->inlineScan(iss);
1079 e2 = e2->inlineScan(iss);
1080 return this;
1084 Expression *CallExp::inlineScan(InlineScanState *iss)
1085 { Expression *e = this;
1087 //printf("CallExp::inlineScan()\n");
1088 e1 = e1->inlineScan(iss);
1089 arrayInlineScan(iss, arguments);
1091 if (e1->op == TOKvar)
1093 VarExp *ve = (VarExp *)e1;
1094 FuncDeclaration *fd = ve->var->isFuncDeclaration();
1096 if (fd && fd != iss->fd && fd->canInline(0))
1098 e = fd->doInline(iss, NULL, arguments);
1101 else if (e1->op == TOKdotvar)
1103 DotVarExp *dve = (DotVarExp *)e1;
1104 FuncDeclaration *fd = dve->var->isFuncDeclaration();
1106 if (fd && fd != iss->fd && fd->canInline(1))
1108 if (dve->e1->op == TOKcall &&
1109 dve->e1->type->toBasetype()->ty == Tstruct)
1111 /* To create ethis, we'll need to take the address
1112 * of dve->e1, but this won't work if dve->e1 is
1113 * a function call.
1117 else
1118 e = fd->doInline(iss, dve->e1, arguments);
1122 return e;
1126 Expression *SliceExp::inlineScan(InlineScanState *iss)
1128 e1 = e1->inlineScan(iss);
1129 if (lwr)
1130 lwr = lwr->inlineScan(iss);
1131 if (upr)
1132 upr = upr->inlineScan(iss);
1133 return this;
1137 Expression *TupleExp::inlineScan(InlineScanState *iss)
1138 { Expression *e = this;
1140 //printf("TupleExp::inlineScan()\n");
1141 arrayInlineScan(iss, exps);
1143 return e;
1147 Expression *ArrayLiteralExp::inlineScan(InlineScanState *iss)
1148 { Expression *e = this;
1150 //printf("ArrayLiteralExp::inlineScan()\n");
1151 arrayInlineScan(iss, elements);
1153 return e;
1157 Expression *AssocArrayLiteralExp::inlineScan(InlineScanState *iss)
1158 { Expression *e = this;
1160 //printf("AssocArrayLiteralExp::inlineScan()\n");
1161 arrayInlineScan(iss, keys);
1162 arrayInlineScan(iss, values);
1164 return e;
1168 Expression *StructLiteralExp::inlineScan(InlineScanState *iss)
1169 { Expression *e = this;
1171 //printf("StructLiteralExp::inlineScan()\n");
1172 arrayInlineScan(iss, elements);
1174 return e;
1178 Expression *ArrayExp::inlineScan(InlineScanState *iss)
1179 { Expression *e = this;
1181 //printf("ArrayExp::inlineScan()\n");
1182 e1 = e1->inlineScan(iss);
1183 arrayInlineScan(iss, arguments);
1185 return e;
1189 Expression *CondExp::inlineScan(InlineScanState *iss)
1191 econd = econd->inlineScan(iss);
1192 e1 = e1->inlineScan(iss);
1193 e2 = e2->inlineScan(iss);
1194 return this;
1198 /* ========== =============== */
1200 void FuncDeclaration::inlineScan()
1202 InlineScanState iss;
1204 #if LOG
1205 printf("FuncDeclaration::inlineScan('%s')\n", toChars());
1206 #endif
1207 memset(&iss, 0, sizeof(iss));
1208 iss.fd = this;
1209 if (fbody)
1211 inlineNest++;
1212 fbody = fbody->inlineScan(&iss);
1213 inlineNest--;
1217 int FuncDeclaration::canInline(int hasthis, int hdrscan)
1219 InlineCostState ics;
1220 int cost;
1222 #define CANINLINE_LOG 0
1224 #if CANINLINE_LOG
1225 printf("FuncDeclaration::canInline(hasthis = %d, '%s')\n", hasthis, toChars());
1226 #endif
1228 if (needThis() && !hasthis)
1229 return 0;
1231 if (inlineNest || (!semanticRun && !hdrscan))
1233 #if CANINLINE_LOG
1234 printf("\t1: no, inlineNest = %d, semanticRun = %d\n", inlineNest, semanticRun);
1235 #endif
1236 return 0;
1239 switch (inlineStatus)
1241 case ILSyes:
1242 #if CANINLINE_LOG
1243 printf("\tyes\n");
1244 #endif
1245 return 1;
1247 case ILSno:
1248 #if CANINLINE_LOG
1249 printf("\t2: no\n");
1250 #endif
1251 return 0;
1253 case ILSuninitialized:
1254 break;
1256 default:
1257 assert(0);
1260 if (type)
1261 { assert(type->ty == Tfunction);
1262 TypeFunction *tf = (TypeFunction *)(type);
1263 if (tf->varargs == 1) // no variadic parameter lists
1264 goto Lno;
1266 /* Don't inline a function that returns non-void, but has
1267 * no return expression.
1269 if (tf->next && tf->next->ty != Tvoid &&
1270 !(hasReturnExp & 1) &&
1271 !hdrscan)
1272 goto Lno;
1274 else
1275 { CtorDeclaration *ctor = isCtorDeclaration();
1277 if (ctor && ctor->varargs == 1)
1278 goto Lno;
1281 if (
1282 !fbody ||
1283 !hdrscan &&
1285 #if 0
1286 isCtorDeclaration() || // cannot because need to convert:
1287 // return;
1288 // to:
1289 // return this;
1290 #endif
1291 isSynchronized() ||
1292 isImportedSymbol() ||
1293 #if V2
1294 closureVars.dim || // no nested references to this frame
1295 #else
1296 nestedFrameRef || // no nested references to this frame
1297 #endif
1298 (isVirtual() && !isFinal())
1301 goto Lno;
1304 /* If any parameters are Tsarray's (which are passed by reference)
1305 * or out parameters (also passed by reference), don't do inlining.
1307 if (parameters)
1309 for (int i = 0; i < parameters->dim; i++)
1311 VarDeclaration *v = (VarDeclaration *)parameters->data[i];
1312 if (v->isOut() || v->isRef() || v->type->toBasetype()->ty == Tsarray)
1313 goto Lno;
1317 memset(&ics, 0, sizeof(ics));
1318 ics.hasthis = hasthis;
1319 ics.fd = this;
1320 ics.hdrscan = hdrscan;
1321 cost = fbody->inlineCost(&ics);
1322 #if CANINLINE_LOG
1323 printf("cost = %d\n", cost);
1324 #endif
1325 if (cost >= COST_MAX)
1326 goto Lno;
1328 if (!hdrscan) // Don't scan recursively for header content scan
1329 inlineScan();
1331 Lyes:
1332 if (!hdrscan) // Don't modify inlineStatus for header content scan
1333 inlineStatus = ILSyes;
1334 #if CANINLINE_LOG
1335 printf("\tyes\n");
1336 #endif
1337 return 1;
1339 Lno:
1340 if (!hdrscan) // Don't modify inlineStatus for header content scan
1341 inlineStatus = ILSno;
1342 #if CANINLINE_LOG
1343 printf("\tno\n");
1344 #endif
1345 return 0;
1348 Expression *FuncDeclaration::doInline(InlineScanState *iss, Expression *ethis, Array *arguments)
1350 InlineDoState ids;
1351 DeclarationExp *de;
1352 Expression *e = NULL;
1354 #if LOG
1355 printf("FuncDeclaration::doInline('%s')\n", toChars());
1356 #endif
1358 memset(&ids, 0, sizeof(ids));
1359 ids.parent = iss->fd;
1361 // Set up vthis
1362 if (ethis)
1364 VarDeclaration *vthis;
1365 ExpInitializer *ei;
1366 VarExp *ve;
1368 if (ethis->type->ty != Tclass && ethis->type->ty != Tpointer)
1370 ethis = ethis->addressOf(NULL);
1373 ei = new ExpInitializer(ethis->loc, ethis);
1375 vthis = new VarDeclaration(ethis->loc, ethis->type, Id::This, ei);
1376 vthis->storage_class = STCin;
1377 vthis->linkage = LINKd;
1378 vthis->parent = iss->fd;
1380 ve = new VarExp(vthis->loc, vthis);
1381 ve->type = vthis->type;
1383 ei->exp = new AssignExp(vthis->loc, ve, ethis);
1384 ei->exp->type = ve->type;
1386 ids.vthis = vthis;
1389 // Set up parameters
1390 if (ethis)
1392 e = new DeclarationExp(0, ids.vthis);
1393 e->type = Type::tvoid;
1396 if (arguments && arguments->dim)
1398 assert(parameters->dim == arguments->dim);
1400 for (int i = 0; i < arguments->dim; i++)
1402 VarDeclaration *vfrom = (VarDeclaration *)parameters->data[i];
1403 VarDeclaration *vto;
1404 Expression *arg = (Expression *)arguments->data[i];
1405 ExpInitializer *ei;
1406 VarExp *ve;
1408 ei = new ExpInitializer(arg->loc, arg);
1410 vto = new VarDeclaration(vfrom->loc, vfrom->type, vfrom->ident, ei);
1411 vto->storage_class |= vfrom->storage_class & (STCin | STCout | STClazy | STCref);
1412 vto->linkage = vfrom->linkage;
1413 vto->parent = iss->fd;
1414 //printf("vto = '%s', vto->storage_class = x%x\n", vto->toChars(), vto->storage_class);
1415 //printf("vto->parent = '%s'\n", iss->fd->toChars());
1417 ve = new VarExp(vto->loc, vto);
1418 //ve->type = vto->type;
1419 ve->type = arg->type;
1421 ei->exp = new AssignExp(vto->loc, ve, arg);
1422 ei->exp->type = ve->type;
1423 //ve->type->print();
1424 //arg->type->print();
1425 //ei->exp->print();
1427 ids.from.push(vfrom);
1428 ids.to.push(vto);
1430 de = new DeclarationExp(0, vto);
1431 de->type = Type::tvoid;
1433 e = Expression::combine(e, de);
1437 inlineNest++;
1438 Expression *eb = fbody->doInline(&ids);
1439 inlineNest--;
1440 //eb->type->print();
1441 //eb->print();
1442 //eb->dump(0);
1443 return Expression::combine(e, eb);