gcc/
[official-gcc/alias-decl.git] / gcc / cfgexpand.c
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1 /* A pass for lowering trees to RTL.
2 Copyright (C) 2004, 2005, 2006, 2007, 2008, 2009
3 Free Software Foundation, Inc.
5 This file is part of GCC.
7 GCC is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3, or (at your option)
10 any later version.
12 GCC is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
17 You should have received a copy of the GNU General Public License
18 along with GCC; see the file COPYING3. If not see
19 <http://www.gnu.org/licenses/>. */
21 #include "config.h"
22 #include "system.h"
23 #include "coretypes.h"
24 #include "tm.h"
25 #include "tree.h"
26 #include "rtl.h"
27 #include "tm_p.h"
28 #include "basic-block.h"
29 #include "function.h"
30 #include "expr.h"
31 #include "langhooks.h"
32 #include "tree-flow.h"
33 #include "timevar.h"
34 #include "tree-dump.h"
35 #include "tree-pass.h"
36 #include "except.h"
37 #include "flags.h"
38 #include "diagnostic.h"
39 #include "toplev.h"
40 #include "debug.h"
41 #include "params.h"
42 #include "tree-inline.h"
43 #include "value-prof.h"
44 #include "target.h"
45 #include "ssaexpand.h"
48 /* This variable holds information helping the rewriting of SSA trees
49 into RTL. */
50 struct ssaexpand SA;
52 /* Return an expression tree corresponding to the RHS of GIMPLE
53 statement STMT. */
55 tree
56 gimple_assign_rhs_to_tree (gimple stmt)
58 tree t;
59 enum gimple_rhs_class grhs_class;
61 grhs_class = get_gimple_rhs_class (gimple_expr_code (stmt));
63 if (grhs_class == GIMPLE_BINARY_RHS)
64 t = build2 (gimple_assign_rhs_code (stmt),
65 TREE_TYPE (gimple_assign_lhs (stmt)),
66 gimple_assign_rhs1 (stmt),
67 gimple_assign_rhs2 (stmt));
68 else if (grhs_class == GIMPLE_UNARY_RHS)
69 t = build1 (gimple_assign_rhs_code (stmt),
70 TREE_TYPE (gimple_assign_lhs (stmt)),
71 gimple_assign_rhs1 (stmt));
72 else if (grhs_class == GIMPLE_SINGLE_RHS)
73 t = gimple_assign_rhs1 (stmt);
74 else
75 gcc_unreachable ();
77 return t;
80 /* Return an expression tree corresponding to the PREDICATE of GIMPLE_COND
81 statement STMT. */
83 static tree
84 gimple_cond_pred_to_tree (gimple stmt)
86 /* We're sometimes presented with such code:
87 D.123_1 = x < y;
88 if (D.123_1 != 0)
89 ...
90 This would expand to two comparisons which then later might
91 be cleaned up by combine. But some pattern matchers like if-conversion
92 work better when there's only one compare, so make up for this
93 here as special exception if TER would have made the same change. */
94 tree lhs = gimple_cond_lhs (stmt);
95 if (SA.values
96 && TREE_CODE (lhs) == SSA_NAME
97 && bitmap_bit_p (SA.values, SSA_NAME_VERSION (lhs)))
98 lhs = gimple_assign_rhs_to_tree (SSA_NAME_DEF_STMT (lhs));
100 return build2 (gimple_cond_code (stmt), boolean_type_node,
101 lhs, gimple_cond_rhs (stmt));
104 /* Helper for gimple_to_tree. Set EXPR_LOCATION for every expression
105 inside *TP. DATA is the location to set. */
107 static tree
108 set_expr_location_r (tree *tp, int *ws ATTRIBUTE_UNUSED, void *data)
110 location_t *loc = (location_t *) data;
111 if (EXPR_P (*tp))
112 SET_EXPR_LOCATION (*tp, *loc);
114 return NULL_TREE;
118 /* RTL expansion has traditionally been done on trees, so the
119 transition to doing it on GIMPLE tuples is very invasive to the RTL
120 expander. To facilitate the transition, this function takes a
121 GIMPLE tuple STMT and returns the same statement in the form of a
122 tree. */
124 static tree
125 gimple_to_tree (gimple stmt)
127 tree t;
128 int rn;
129 tree_ann_common_t ann;
130 location_t loc;
132 switch (gimple_code (stmt))
134 case GIMPLE_ASSIGN:
136 tree lhs = gimple_assign_lhs (stmt);
138 t = gimple_assign_rhs_to_tree (stmt);
139 t = build2 (MODIFY_EXPR, TREE_TYPE (lhs), lhs, t);
140 if (gimple_assign_nontemporal_move_p (stmt))
141 MOVE_NONTEMPORAL (t) = true;
143 break;
145 case GIMPLE_COND:
146 t = gimple_cond_pred_to_tree (stmt);
147 t = build3 (COND_EXPR, void_type_node, t, NULL_TREE, NULL_TREE);
148 break;
150 case GIMPLE_GOTO:
151 t = build1 (GOTO_EXPR, void_type_node, gimple_goto_dest (stmt));
152 break;
154 case GIMPLE_LABEL:
155 t = build1 (LABEL_EXPR, void_type_node, gimple_label_label (stmt));
156 break;
158 case GIMPLE_RETURN:
160 tree retval = gimple_return_retval (stmt);
162 if (retval && retval != error_mark_node)
164 tree result = DECL_RESULT (current_function_decl);
166 /* If we are not returning the current function's RESULT_DECL,
167 build an assignment to it. */
168 if (retval != result)
170 /* I believe that a function's RESULT_DECL is unique. */
171 gcc_assert (TREE_CODE (retval) != RESULT_DECL);
173 retval = build2 (MODIFY_EXPR, TREE_TYPE (result),
174 result, retval);
177 t = build1 (RETURN_EXPR, void_type_node, retval);
179 break;
181 case GIMPLE_ASM:
183 size_t i, n;
184 tree out, in, cl;
185 const char *s;
187 out = NULL_TREE;
188 n = gimple_asm_noutputs (stmt);
189 if (n > 0)
191 t = out = gimple_asm_output_op (stmt, 0);
192 for (i = 1; i < n; i++)
194 TREE_CHAIN (t) = gimple_asm_output_op (stmt, i);
195 t = gimple_asm_output_op (stmt, i);
199 in = NULL_TREE;
200 n = gimple_asm_ninputs (stmt);
201 if (n > 0)
203 t = in = gimple_asm_input_op (stmt, 0);
204 for (i = 1; i < n; i++)
206 TREE_CHAIN (t) = gimple_asm_input_op (stmt, i);
207 t = gimple_asm_input_op (stmt, i);
211 cl = NULL_TREE;
212 n = gimple_asm_nclobbers (stmt);
213 if (n > 0)
215 t = cl = gimple_asm_clobber_op (stmt, 0);
216 for (i = 1; i < n; i++)
218 TREE_CHAIN (t) = gimple_asm_clobber_op (stmt, i);
219 t = gimple_asm_clobber_op (stmt, i);
223 s = gimple_asm_string (stmt);
224 t = build4 (ASM_EXPR, void_type_node, build_string (strlen (s), s),
225 out, in, cl);
226 ASM_VOLATILE_P (t) = gimple_asm_volatile_p (stmt);
227 ASM_INPUT_P (t) = gimple_asm_input_p (stmt);
229 break;
231 case GIMPLE_CALL:
233 size_t i;
234 tree fn;
235 tree_ann_common_t ann;
237 t = build_vl_exp (CALL_EXPR, gimple_call_num_args (stmt) + 3);
239 CALL_EXPR_FN (t) = gimple_call_fn (stmt);
240 TREE_TYPE (t) = gimple_call_return_type (stmt);
241 CALL_EXPR_STATIC_CHAIN (t) = gimple_call_chain (stmt);
243 for (i = 0; i < gimple_call_num_args (stmt); i++)
244 CALL_EXPR_ARG (t, i) = gimple_call_arg (stmt, i);
246 if (!(gimple_call_flags (stmt) & (ECF_CONST | ECF_PURE)))
247 TREE_SIDE_EFFECTS (t) = 1;
249 if (gimple_call_flags (stmt) & ECF_NOTHROW)
250 TREE_NOTHROW (t) = 1;
252 CALL_EXPR_TAILCALL (t) = gimple_call_tail_p (stmt);
253 CALL_EXPR_RETURN_SLOT_OPT (t) = gimple_call_return_slot_opt_p (stmt);
254 CALL_FROM_THUNK_P (t) = gimple_call_from_thunk_p (stmt);
255 CALL_CANNOT_INLINE_P (t) = gimple_call_cannot_inline_p (stmt);
256 CALL_EXPR_VA_ARG_PACK (t) = gimple_call_va_arg_pack_p (stmt);
258 /* If the call has a LHS then create a MODIFY_EXPR to hold it. */
260 tree lhs = gimple_call_lhs (stmt);
262 if (lhs)
263 t = build2 (MODIFY_EXPR, TREE_TYPE (lhs), lhs, t);
266 /* Record the original call statement, as it may be used
267 to retrieve profile information during expansion. */
269 if ((fn = gimple_call_fndecl (stmt)) != NULL_TREE
270 && DECL_BUILT_IN (fn))
272 ann = get_tree_common_ann (t);
273 ann->stmt = stmt;
276 break;
278 case GIMPLE_SWITCH:
280 tree label_vec;
281 size_t i;
282 tree elt = gimple_switch_label (stmt, 0);
284 label_vec = make_tree_vec (gimple_switch_num_labels (stmt));
286 if (!CASE_LOW (elt) && !CASE_HIGH (elt))
288 for (i = 1; i < gimple_switch_num_labels (stmt); i++)
289 TREE_VEC_ELT (label_vec, i - 1) = gimple_switch_label (stmt, i);
291 /* The default case in a SWITCH_EXPR must be at the end of
292 the label vector. */
293 TREE_VEC_ELT (label_vec, i - 1) = gimple_switch_label (stmt, 0);
295 else
297 for (i = 0; i < gimple_switch_num_labels (stmt); i++)
298 TREE_VEC_ELT (label_vec, i) = gimple_switch_label (stmt, i);
301 t = build3 (SWITCH_EXPR, void_type_node, gimple_switch_index (stmt),
302 NULL, label_vec);
304 break;
306 case GIMPLE_NOP:
307 case GIMPLE_PREDICT:
308 t = build1 (NOP_EXPR, void_type_node, size_zero_node);
309 break;
311 case GIMPLE_RESX:
312 t = build_resx (gimple_resx_region (stmt));
313 break;
315 default:
316 if (errorcount == 0)
318 error ("Unrecognized GIMPLE statement during RTL expansion");
319 print_gimple_stmt (stderr, stmt, 4, 0);
320 gcc_unreachable ();
322 else
324 /* Ignore any bad gimple codes if we're going to die anyhow,
325 so we can at least set TREE_ASM_WRITTEN and have the rest
326 of compilation advance without sudden ICE death. */
327 t = build1 (NOP_EXPR, void_type_node, size_zero_node);
328 break;
332 /* If STMT is inside an exception region, record it in the generated
333 expression. */
334 rn = lookup_stmt_eh_region (stmt);
335 if (rn >= 0)
337 tree call = get_call_expr_in (t);
339 ann = get_tree_common_ann (t);
340 ann->rn = rn;
342 /* For a CALL_EXPR on the RHS of an assignment, calls.c looks up
343 the CALL_EXPR not the assignment statment for EH region number. */
344 if (call && call != t)
346 ann = get_tree_common_ann (call);
347 ann->rn = rn;
351 /* Set EXPR_LOCATION in all the embedded expressions. */
352 loc = gimple_location (stmt);
353 walk_tree (&t, set_expr_location_r, (void *) &loc, NULL);
355 TREE_BLOCK (t) = gimple_block (stmt);
357 return t;
361 /* Release back to GC memory allocated by gimple_to_tree. */
363 static void
364 release_stmt_tree (gimple stmt, tree stmt_tree)
366 tree_ann_common_t ann;
368 switch (gimple_code (stmt))
370 case GIMPLE_ASSIGN:
371 if (get_gimple_rhs_class (gimple_expr_code (stmt)) != GIMPLE_SINGLE_RHS)
372 ggc_free (TREE_OPERAND (stmt_tree, 1));
373 break;
374 case GIMPLE_COND:
375 ggc_free (COND_EXPR_COND (stmt_tree));
376 break;
377 case GIMPLE_RETURN:
378 if (TREE_OPERAND (stmt_tree, 0)
379 && TREE_CODE (TREE_OPERAND (stmt_tree, 0)) == MODIFY_EXPR)
380 ggc_free (TREE_OPERAND (stmt_tree, 0));
381 break;
382 case GIMPLE_CALL:
383 if (gimple_call_lhs (stmt))
385 ann = tree_common_ann (TREE_OPERAND (stmt_tree, 1));
386 if (ann)
387 ggc_free (ann);
388 ggc_free (TREE_OPERAND (stmt_tree, 1));
390 break;
391 default:
392 break;
394 ann = tree_common_ann (stmt_tree);
395 if (ann)
396 ggc_free (ann);
397 ggc_free (stmt_tree);
401 /* Verify that there is exactly single jump instruction since last and attach
402 REG_BR_PROB note specifying probability.
403 ??? We really ought to pass the probability down to RTL expanders and let it
404 re-distribute it when the conditional expands into multiple conditionals.
405 This is however difficult to do. */
406 void
407 add_reg_br_prob_note (rtx last, int probability)
409 if (profile_status == PROFILE_ABSENT)
410 return;
411 for (last = NEXT_INSN (last); last && NEXT_INSN (last); last = NEXT_INSN (last))
412 if (JUMP_P (last))
414 /* It is common to emit condjump-around-jump sequence when we don't know
415 how to reverse the conditional. Special case this. */
416 if (!any_condjump_p (last)
417 || !JUMP_P (NEXT_INSN (last))
418 || !simplejump_p (NEXT_INSN (last))
419 || !NEXT_INSN (NEXT_INSN (last))
420 || !BARRIER_P (NEXT_INSN (NEXT_INSN (last)))
421 || !NEXT_INSN (NEXT_INSN (NEXT_INSN (last)))
422 || !LABEL_P (NEXT_INSN (NEXT_INSN (NEXT_INSN (last))))
423 || NEXT_INSN (NEXT_INSN (NEXT_INSN (NEXT_INSN (last)))))
424 goto failed;
425 gcc_assert (!find_reg_note (last, REG_BR_PROB, 0));
426 add_reg_note (last, REG_BR_PROB,
427 GEN_INT (REG_BR_PROB_BASE - probability));
428 return;
430 if (!last || !JUMP_P (last) || !any_condjump_p (last))
431 goto failed;
432 gcc_assert (!find_reg_note (last, REG_BR_PROB, 0));
433 add_reg_note (last, REG_BR_PROB, GEN_INT (probability));
434 return;
435 failed:
436 if (dump_file)
437 fprintf (dump_file, "Failed to add probability note\n");
441 #ifndef STACK_ALIGNMENT_NEEDED
442 #define STACK_ALIGNMENT_NEEDED 1
443 #endif
445 #define SSAVAR(x) (TREE_CODE (x) == SSA_NAME ? SSA_NAME_VAR (x) : x)
447 /* Associate declaration T with storage space X. If T is no
448 SSA name this is exactly SET_DECL_RTL, otherwise make the
449 partition of T associated with X. */
450 static inline void
451 set_rtl (tree t, rtx x)
453 if (TREE_CODE (t) == SSA_NAME)
455 SA.partition_to_pseudo[var_to_partition (SA.map, t)] = x;
456 if (x && !MEM_P (x))
457 set_reg_attrs_for_decl_rtl (SSA_NAME_VAR (t), x);
459 else
460 SET_DECL_RTL (t, x);
463 /* This structure holds data relevant to one variable that will be
464 placed in a stack slot. */
465 struct stack_var
467 /* The Variable. */
468 tree decl;
470 /* The offset of the variable. During partitioning, this is the
471 offset relative to the partition. After partitioning, this
472 is relative to the stack frame. */
473 HOST_WIDE_INT offset;
475 /* Initially, the size of the variable. Later, the size of the partition,
476 if this variable becomes it's partition's representative. */
477 HOST_WIDE_INT size;
479 /* The *byte* alignment required for this variable. Or as, with the
480 size, the alignment for this partition. */
481 unsigned int alignb;
483 /* The partition representative. */
484 size_t representative;
486 /* The next stack variable in the partition, or EOC. */
487 size_t next;
490 #define EOC ((size_t)-1)
492 /* We have an array of such objects while deciding allocation. */
493 static struct stack_var *stack_vars;
494 static size_t stack_vars_alloc;
495 static size_t stack_vars_num;
497 /* An array of indices such that stack_vars[stack_vars_sorted[i]].size
498 is non-decreasing. */
499 static size_t *stack_vars_sorted;
501 /* We have an interference graph between such objects. This graph
502 is lower triangular. */
503 static bool *stack_vars_conflict;
504 static size_t stack_vars_conflict_alloc;
506 /* The phase of the stack frame. This is the known misalignment of
507 virtual_stack_vars_rtx from PREFERRED_STACK_BOUNDARY. That is,
508 (frame_offset+frame_phase) % PREFERRED_STACK_BOUNDARY == 0. */
509 static int frame_phase;
511 /* Used during expand_used_vars to remember if we saw any decls for
512 which we'd like to enable stack smashing protection. */
513 static bool has_protected_decls;
515 /* Used during expand_used_vars. Remember if we say a character buffer
516 smaller than our cutoff threshold. Used for -Wstack-protector. */
517 static bool has_short_buffer;
519 /* Discover the byte alignment to use for DECL. Ignore alignment
520 we can't do with expected alignment of the stack boundary. */
522 static unsigned int
523 get_decl_align_unit (tree decl)
525 unsigned int align;
527 align = LOCAL_DECL_ALIGNMENT (decl);
529 if (align > MAX_SUPPORTED_STACK_ALIGNMENT)
530 align = MAX_SUPPORTED_STACK_ALIGNMENT;
532 if (SUPPORTS_STACK_ALIGNMENT)
534 if (crtl->stack_alignment_estimated < align)
536 gcc_assert(!crtl->stack_realign_processed);
537 crtl->stack_alignment_estimated = align;
541 /* stack_alignment_needed > PREFERRED_STACK_BOUNDARY is permitted.
542 So here we only make sure stack_alignment_needed >= align. */
543 if (crtl->stack_alignment_needed < align)
544 crtl->stack_alignment_needed = align;
545 if (crtl->max_used_stack_slot_alignment < crtl->stack_alignment_needed)
546 crtl->max_used_stack_slot_alignment = crtl->stack_alignment_needed;
548 return align / BITS_PER_UNIT;
551 /* Allocate SIZE bytes at byte alignment ALIGN from the stack frame.
552 Return the frame offset. */
554 static HOST_WIDE_INT
555 alloc_stack_frame_space (HOST_WIDE_INT size, HOST_WIDE_INT align)
557 HOST_WIDE_INT offset, new_frame_offset;
559 new_frame_offset = frame_offset;
560 if (FRAME_GROWS_DOWNWARD)
562 new_frame_offset -= size + frame_phase;
563 new_frame_offset &= -align;
564 new_frame_offset += frame_phase;
565 offset = new_frame_offset;
567 else
569 new_frame_offset -= frame_phase;
570 new_frame_offset += align - 1;
571 new_frame_offset &= -align;
572 new_frame_offset += frame_phase;
573 offset = new_frame_offset;
574 new_frame_offset += size;
576 frame_offset = new_frame_offset;
578 if (frame_offset_overflow (frame_offset, cfun->decl))
579 frame_offset = offset = 0;
581 return offset;
584 /* Accumulate DECL into STACK_VARS. */
586 static void
587 add_stack_var (tree decl)
589 if (stack_vars_num >= stack_vars_alloc)
591 if (stack_vars_alloc)
592 stack_vars_alloc = stack_vars_alloc * 3 / 2;
593 else
594 stack_vars_alloc = 32;
595 stack_vars
596 = XRESIZEVEC (struct stack_var, stack_vars, stack_vars_alloc);
598 stack_vars[stack_vars_num].decl = decl;
599 stack_vars[stack_vars_num].offset = 0;
600 stack_vars[stack_vars_num].size = tree_low_cst (DECL_SIZE_UNIT (SSAVAR (decl)), 1);
601 stack_vars[stack_vars_num].alignb = get_decl_align_unit (SSAVAR (decl));
603 /* All variables are initially in their own partition. */
604 stack_vars[stack_vars_num].representative = stack_vars_num;
605 stack_vars[stack_vars_num].next = EOC;
607 /* Ensure that this decl doesn't get put onto the list twice. */
608 set_rtl (decl, pc_rtx);
610 stack_vars_num++;
613 /* Compute the linear index of a lower-triangular coordinate (I, J). */
615 static size_t
616 triangular_index (size_t i, size_t j)
618 if (i < j)
620 size_t t;
621 t = i, i = j, j = t;
623 return (i * (i + 1)) / 2 + j;
626 /* Ensure that STACK_VARS_CONFLICT is large enough for N objects. */
628 static void
629 resize_stack_vars_conflict (size_t n)
631 size_t size = triangular_index (n-1, n-1) + 1;
633 if (size <= stack_vars_conflict_alloc)
634 return;
636 stack_vars_conflict = XRESIZEVEC (bool, stack_vars_conflict, size);
637 memset (stack_vars_conflict + stack_vars_conflict_alloc, 0,
638 (size - stack_vars_conflict_alloc) * sizeof (bool));
639 stack_vars_conflict_alloc = size;
642 /* Make the decls associated with luid's X and Y conflict. */
644 static void
645 add_stack_var_conflict (size_t x, size_t y)
647 size_t index = triangular_index (x, y);
648 gcc_assert (index < stack_vars_conflict_alloc);
649 stack_vars_conflict[index] = true;
652 /* Check whether the decls associated with luid's X and Y conflict. */
654 static bool
655 stack_var_conflict_p (size_t x, size_t y)
657 size_t index = triangular_index (x, y);
658 gcc_assert (index < stack_vars_conflict_alloc);
659 return stack_vars_conflict[index];
662 /* Returns true if TYPE is or contains a union type. */
664 static bool
665 aggregate_contains_union_type (tree type)
667 tree field;
669 if (TREE_CODE (type) == UNION_TYPE
670 || TREE_CODE (type) == QUAL_UNION_TYPE)
671 return true;
672 if (TREE_CODE (type) == ARRAY_TYPE)
673 return aggregate_contains_union_type (TREE_TYPE (type));
674 if (TREE_CODE (type) != RECORD_TYPE)
675 return false;
677 for (field = TYPE_FIELDS (type); field; field = TREE_CHAIN (field))
678 if (TREE_CODE (field) == FIELD_DECL)
679 if (aggregate_contains_union_type (TREE_TYPE (field)))
680 return true;
682 return false;
685 /* A subroutine of expand_used_vars. If two variables X and Y have alias
686 sets that do not conflict, then do add a conflict for these variables
687 in the interference graph. We also need to make sure to add conflicts
688 for union containing structures. Else RTL alias analysis comes along
689 and due to type based aliasing rules decides that for two overlapping
690 union temporaries { short s; int i; } accesses to the same mem through
691 different types may not alias and happily reorders stores across
692 life-time boundaries of the temporaries (See PR25654).
693 We also have to mind MEM_IN_STRUCT_P and MEM_SCALAR_P. */
695 static void
696 add_alias_set_conflicts (void)
698 size_t i, j, n = stack_vars_num;
700 for (i = 0; i < n; ++i)
702 tree type_i = TREE_TYPE (stack_vars[i].decl);
703 bool aggr_i = AGGREGATE_TYPE_P (type_i);
704 bool contains_union;
706 contains_union = aggregate_contains_union_type (type_i);
707 for (j = 0; j < i; ++j)
709 tree type_j = TREE_TYPE (stack_vars[j].decl);
710 bool aggr_j = AGGREGATE_TYPE_P (type_j);
711 if (aggr_i != aggr_j
712 /* Either the objects conflict by means of type based
713 aliasing rules, or we need to add a conflict. */
714 || !objects_must_conflict_p (type_i, type_j)
715 /* In case the types do not conflict ensure that access
716 to elements will conflict. In case of unions we have
717 to be careful as type based aliasing rules may say
718 access to the same memory does not conflict. So play
719 safe and add a conflict in this case. */
720 || contains_union)
721 add_stack_var_conflict (i, j);
726 /* A subroutine of partition_stack_vars. A comparison function for qsort,
727 sorting an array of indices by the size and type of the object. */
729 static int
730 stack_var_size_cmp (const void *a, const void *b)
732 HOST_WIDE_INT sa = stack_vars[*(const size_t *)a].size;
733 HOST_WIDE_INT sb = stack_vars[*(const size_t *)b].size;
734 tree decla, declb;
735 unsigned int uida, uidb;
737 if (sa < sb)
738 return -1;
739 if (sa > sb)
740 return 1;
741 decla = stack_vars[*(const size_t *)a].decl;
742 declb = stack_vars[*(const size_t *)b].decl;
743 /* For stack variables of the same size use and id of the decls
744 to make the sort stable. Two SSA names are compared by their
745 version, SSA names come before non-SSA names, and two normal
746 decls are compared by their DECL_UID. */
747 if (TREE_CODE (decla) == SSA_NAME)
749 if (TREE_CODE (declb) == SSA_NAME)
750 uida = SSA_NAME_VERSION (decla), uidb = SSA_NAME_VERSION (declb);
751 else
752 return -1;
754 else if (TREE_CODE (declb) == SSA_NAME)
755 return 1;
756 else
757 uida = DECL_UID (decla), uidb = DECL_UID (declb);
758 if (uida < uidb)
759 return -1;
760 if (uida > uidb)
761 return 1;
762 return 0;
765 /* A subroutine of partition_stack_vars. The UNION portion of a UNION/FIND
766 partitioning algorithm. Partitions A and B are known to be non-conflicting.
767 Merge them into a single partition A.
769 At the same time, add OFFSET to all variables in partition B. At the end
770 of the partitioning process we've have a nice block easy to lay out within
771 the stack frame. */
773 static void
774 union_stack_vars (size_t a, size_t b, HOST_WIDE_INT offset)
776 size_t i, last;
778 /* Update each element of partition B with the given offset,
779 and merge them into partition A. */
780 for (last = i = b; i != EOC; last = i, i = stack_vars[i].next)
782 stack_vars[i].offset += offset;
783 stack_vars[i].representative = a;
785 stack_vars[last].next = stack_vars[a].next;
786 stack_vars[a].next = b;
788 /* Update the required alignment of partition A to account for B. */
789 if (stack_vars[a].alignb < stack_vars[b].alignb)
790 stack_vars[a].alignb = stack_vars[b].alignb;
792 /* Update the interference graph and merge the conflicts. */
793 for (last = stack_vars_num, i = 0; i < last; ++i)
794 if (stack_var_conflict_p (b, i))
795 add_stack_var_conflict (a, i);
798 /* A subroutine of expand_used_vars. Binpack the variables into
799 partitions constrained by the interference graph. The overall
800 algorithm used is as follows:
802 Sort the objects by size.
803 For each object A {
804 S = size(A)
805 O = 0
806 loop {
807 Look for the largest non-conflicting object B with size <= S.
808 UNION (A, B)
809 offset(B) = O
810 O += size(B)
811 S -= size(B)
816 static void
817 partition_stack_vars (void)
819 size_t si, sj, n = stack_vars_num;
821 stack_vars_sorted = XNEWVEC (size_t, stack_vars_num);
822 for (si = 0; si < n; ++si)
823 stack_vars_sorted[si] = si;
825 if (n == 1)
826 return;
828 qsort (stack_vars_sorted, n, sizeof (size_t), stack_var_size_cmp);
830 /* Special case: detect when all variables conflict, and thus we can't
831 do anything during the partitioning loop. It isn't uncommon (with
832 C code at least) to declare all variables at the top of the function,
833 and if we're not inlining, then all variables will be in the same scope.
834 Take advantage of very fast libc routines for this scan. */
835 gcc_assert (sizeof(bool) == sizeof(char));
836 if (memchr (stack_vars_conflict, false, stack_vars_conflict_alloc) == NULL)
837 return;
839 for (si = 0; si < n; ++si)
841 size_t i = stack_vars_sorted[si];
842 HOST_WIDE_INT isize = stack_vars[i].size;
843 HOST_WIDE_INT offset = 0;
845 for (sj = si; sj-- > 0; )
847 size_t j = stack_vars_sorted[sj];
848 HOST_WIDE_INT jsize = stack_vars[j].size;
849 unsigned int jalign = stack_vars[j].alignb;
851 /* Ignore objects that aren't partition representatives. */
852 if (stack_vars[j].representative != j)
853 continue;
855 /* Ignore objects too large for the remaining space. */
856 if (isize < jsize)
857 continue;
859 /* Ignore conflicting objects. */
860 if (stack_var_conflict_p (i, j))
861 continue;
863 /* Refine the remaining space check to include alignment. */
864 if (offset & (jalign - 1))
866 HOST_WIDE_INT toff = offset;
867 toff += jalign - 1;
868 toff &= -(HOST_WIDE_INT)jalign;
869 if (isize - (toff - offset) < jsize)
870 continue;
872 isize -= toff - offset;
873 offset = toff;
876 /* UNION the objects, placing J at OFFSET. */
877 union_stack_vars (i, j, offset);
879 isize -= jsize;
880 if (isize == 0)
881 break;
886 /* A debugging aid for expand_used_vars. Dump the generated partitions. */
888 static void
889 dump_stack_var_partition (void)
891 size_t si, i, j, n = stack_vars_num;
893 for (si = 0; si < n; ++si)
895 i = stack_vars_sorted[si];
897 /* Skip variables that aren't partition representatives, for now. */
898 if (stack_vars[i].representative != i)
899 continue;
901 fprintf (dump_file, "Partition %lu: size " HOST_WIDE_INT_PRINT_DEC
902 " align %u\n", (unsigned long) i, stack_vars[i].size,
903 stack_vars[i].alignb);
905 for (j = i; j != EOC; j = stack_vars[j].next)
907 fputc ('\t', dump_file);
908 print_generic_expr (dump_file, stack_vars[j].decl, dump_flags);
909 fprintf (dump_file, ", offset " HOST_WIDE_INT_PRINT_DEC "\n",
910 stack_vars[j].offset);
915 /* Assign rtl to DECL at frame offset OFFSET. */
917 static void
918 expand_one_stack_var_at (tree decl, HOST_WIDE_INT offset)
920 /* Alignment is unsigned. */
921 unsigned HOST_WIDE_INT align;
922 rtx x;
924 /* If this fails, we've overflowed the stack frame. Error nicely? */
925 gcc_assert (offset == trunc_int_for_mode (offset, Pmode));
927 x = plus_constant (virtual_stack_vars_rtx, offset);
928 x = gen_rtx_MEM (DECL_MODE (SSAVAR (decl)), x);
930 if (TREE_CODE (decl) != SSA_NAME)
932 /* Set alignment we actually gave this decl if it isn't an SSA name.
933 If it is we generate stack slots only accidentally so it isn't as
934 important, we'll simply use the alignment that is already set. */
935 offset -= frame_phase;
936 align = offset & -offset;
937 align *= BITS_PER_UNIT;
938 if (align == 0)
939 align = STACK_BOUNDARY;
940 else if (align > MAX_SUPPORTED_STACK_ALIGNMENT)
941 align = MAX_SUPPORTED_STACK_ALIGNMENT;
943 DECL_ALIGN (decl) = align;
944 DECL_USER_ALIGN (decl) = 0;
947 set_mem_attributes (x, SSAVAR (decl), true);
948 set_rtl (decl, x);
951 /* A subroutine of expand_used_vars. Give each partition representative
952 a unique location within the stack frame. Update each partition member
953 with that location. */
955 static void
956 expand_stack_vars (bool (*pred) (tree))
958 size_t si, i, j, n = stack_vars_num;
960 for (si = 0; si < n; ++si)
962 HOST_WIDE_INT offset;
964 i = stack_vars_sorted[si];
966 /* Skip variables that aren't partition representatives, for now. */
967 if (stack_vars[i].representative != i)
968 continue;
970 /* Skip variables that have already had rtl assigned. See also
971 add_stack_var where we perpetrate this pc_rtx hack. */
972 if ((TREE_CODE (stack_vars[i].decl) == SSA_NAME
973 ? SA.partition_to_pseudo[var_to_partition (SA.map, stack_vars[i].decl)]
974 : DECL_RTL (stack_vars[i].decl)) != pc_rtx)
975 continue;
977 /* Check the predicate to see whether this variable should be
978 allocated in this pass. */
979 if (pred && !pred (stack_vars[i].decl))
980 continue;
982 offset = alloc_stack_frame_space (stack_vars[i].size,
983 stack_vars[i].alignb);
985 /* Create rtl for each variable based on their location within the
986 partition. */
987 for (j = i; j != EOC; j = stack_vars[j].next)
989 gcc_assert (stack_vars[j].offset <= stack_vars[i].size);
990 expand_one_stack_var_at (stack_vars[j].decl,
991 stack_vars[j].offset + offset);
996 /* Take into account all sizes of partitions and reset DECL_RTLs. */
997 static HOST_WIDE_INT
998 account_stack_vars (void)
1000 size_t si, j, i, n = stack_vars_num;
1001 HOST_WIDE_INT size = 0;
1003 for (si = 0; si < n; ++si)
1005 i = stack_vars_sorted[si];
1007 /* Skip variables that aren't partition representatives, for now. */
1008 if (stack_vars[i].representative != i)
1009 continue;
1011 size += stack_vars[i].size;
1012 for (j = i; j != EOC; j = stack_vars[j].next)
1013 set_rtl (stack_vars[j].decl, NULL);
1015 return size;
1018 /* A subroutine of expand_one_var. Called to immediately assign rtl
1019 to a variable to be allocated in the stack frame. */
1021 static void
1022 expand_one_stack_var (tree var)
1024 HOST_WIDE_INT size, offset, align;
1026 size = tree_low_cst (DECL_SIZE_UNIT (SSAVAR (var)), 1);
1027 align = get_decl_align_unit (SSAVAR (var));
1028 offset = alloc_stack_frame_space (size, align);
1030 expand_one_stack_var_at (var, offset);
1033 /* A subroutine of expand_one_var. Called to assign rtl to a VAR_DECL
1034 that will reside in a hard register. */
1036 static void
1037 expand_one_hard_reg_var (tree var)
1039 rest_of_decl_compilation (var, 0, 0);
1042 /* A subroutine of expand_one_var. Called to assign rtl to a VAR_DECL
1043 that will reside in a pseudo register. */
1045 static void
1046 expand_one_register_var (tree var)
1048 tree decl = SSAVAR (var);
1049 tree type = TREE_TYPE (decl);
1050 int unsignedp = TYPE_UNSIGNED (type);
1051 enum machine_mode reg_mode
1052 = promote_mode (type, DECL_MODE (decl), &unsignedp, 0);
1053 rtx x = gen_reg_rtx (reg_mode);
1055 set_rtl (var, x);
1057 /* Note if the object is a user variable. */
1058 if (!DECL_ARTIFICIAL (decl))
1059 mark_user_reg (x);
1061 if (POINTER_TYPE_P (type))
1062 mark_reg_pointer (x, TYPE_ALIGN (TREE_TYPE (type)));
1065 /* A subroutine of expand_one_var. Called to assign rtl to a VAR_DECL that
1066 has some associated error, e.g. its type is error-mark. We just need
1067 to pick something that won't crash the rest of the compiler. */
1069 static void
1070 expand_one_error_var (tree var)
1072 enum machine_mode mode = DECL_MODE (var);
1073 rtx x;
1075 if (mode == BLKmode)
1076 x = gen_rtx_MEM (BLKmode, const0_rtx);
1077 else if (mode == VOIDmode)
1078 x = const0_rtx;
1079 else
1080 x = gen_reg_rtx (mode);
1082 SET_DECL_RTL (var, x);
1085 /* A subroutine of expand_one_var. VAR is a variable that will be
1086 allocated to the local stack frame. Return true if we wish to
1087 add VAR to STACK_VARS so that it will be coalesced with other
1088 variables. Return false to allocate VAR immediately.
1090 This function is used to reduce the number of variables considered
1091 for coalescing, which reduces the size of the quadratic problem. */
1093 static bool
1094 defer_stack_allocation (tree var, bool toplevel)
1096 /* If stack protection is enabled, *all* stack variables must be deferred,
1097 so that we can re-order the strings to the top of the frame. */
1098 if (flag_stack_protect)
1099 return true;
1101 /* Variables in the outermost scope automatically conflict with
1102 every other variable. The only reason to want to defer them
1103 at all is that, after sorting, we can more efficiently pack
1104 small variables in the stack frame. Continue to defer at -O2. */
1105 if (toplevel && optimize < 2)
1106 return false;
1108 /* Without optimization, *most* variables are allocated from the
1109 stack, which makes the quadratic problem large exactly when we
1110 want compilation to proceed as quickly as possible. On the
1111 other hand, we don't want the function's stack frame size to
1112 get completely out of hand. So we avoid adding scalars and
1113 "small" aggregates to the list at all. */
1114 if (optimize == 0 && tree_low_cst (DECL_SIZE_UNIT (var), 1) < 32)
1115 return false;
1117 return true;
1120 /* A subroutine of expand_used_vars. Expand one variable according to
1121 its flavor. Variables to be placed on the stack are not actually
1122 expanded yet, merely recorded.
1123 When REALLY_EXPAND is false, only add stack values to be allocated.
1124 Return stack usage this variable is supposed to take.
1127 static HOST_WIDE_INT
1128 expand_one_var (tree var, bool toplevel, bool really_expand)
1130 tree origvar = var;
1131 var = SSAVAR (var);
1133 if (SUPPORTS_STACK_ALIGNMENT
1134 && TREE_TYPE (var) != error_mark_node
1135 && TREE_CODE (var) == VAR_DECL)
1137 unsigned int align;
1139 /* Because we don't know if VAR will be in register or on stack,
1140 we conservatively assume it will be on stack even if VAR is
1141 eventually put into register after RA pass. For non-automatic
1142 variables, which won't be on stack, we collect alignment of
1143 type and ignore user specified alignment. */
1144 if (TREE_STATIC (var) || DECL_EXTERNAL (var))
1145 align = TYPE_ALIGN (TREE_TYPE (var));
1146 else
1147 align = DECL_ALIGN (var);
1149 if (crtl->stack_alignment_estimated < align)
1151 /* stack_alignment_estimated shouldn't change after stack
1152 realign decision made */
1153 gcc_assert(!crtl->stack_realign_processed);
1154 crtl->stack_alignment_estimated = align;
1158 if (TREE_CODE (origvar) == SSA_NAME)
1160 gcc_assert (TREE_CODE (var) != VAR_DECL
1161 || (!DECL_EXTERNAL (var)
1162 && !DECL_HAS_VALUE_EXPR_P (var)
1163 && !TREE_STATIC (var)
1164 && !DECL_RTL_SET_P (var)
1165 && TREE_TYPE (var) != error_mark_node
1166 && !DECL_HARD_REGISTER (var)
1167 && really_expand));
1169 if (TREE_CODE (var) != VAR_DECL && TREE_CODE (origvar) != SSA_NAME)
1171 else if (DECL_EXTERNAL (var))
1173 else if (DECL_HAS_VALUE_EXPR_P (var))
1175 else if (TREE_STATIC (var))
1177 else if (DECL_RTL_SET_P (var))
1179 else if (TREE_TYPE (var) == error_mark_node)
1181 if (really_expand)
1182 expand_one_error_var (var);
1184 else if (TREE_CODE (var) == VAR_DECL && DECL_HARD_REGISTER (var))
1186 if (really_expand)
1187 expand_one_hard_reg_var (var);
1189 else if (use_register_for_decl (var))
1191 if (really_expand)
1192 expand_one_register_var (origvar);
1194 else if (defer_stack_allocation (var, toplevel))
1195 add_stack_var (origvar);
1196 else
1198 if (really_expand)
1199 expand_one_stack_var (origvar);
1200 return tree_low_cst (DECL_SIZE_UNIT (var), 1);
1202 return 0;
1205 /* A subroutine of expand_used_vars. Walk down through the BLOCK tree
1206 expanding variables. Those variables that can be put into registers
1207 are allocated pseudos; those that can't are put on the stack.
1209 TOPLEVEL is true if this is the outermost BLOCK. */
1211 static void
1212 expand_used_vars_for_block (tree block, bool toplevel)
1214 size_t i, j, old_sv_num, this_sv_num, new_sv_num;
1215 tree t;
1217 old_sv_num = toplevel ? 0 : stack_vars_num;
1219 /* Expand all variables at this level. */
1220 for (t = BLOCK_VARS (block); t ; t = TREE_CHAIN (t))
1221 if (TREE_USED (t))
1222 expand_one_var (t, toplevel, true);
1224 this_sv_num = stack_vars_num;
1226 /* Expand all variables at containing levels. */
1227 for (t = BLOCK_SUBBLOCKS (block); t ; t = BLOCK_CHAIN (t))
1228 expand_used_vars_for_block (t, false);
1230 /* Since we do not track exact variable lifetimes (which is not even
1231 possible for variables whose address escapes), we mirror the block
1232 tree in the interference graph. Here we cause all variables at this
1233 level, and all sublevels, to conflict. Do make certain that a
1234 variable conflicts with itself. */
1235 if (old_sv_num < this_sv_num)
1237 new_sv_num = stack_vars_num;
1238 resize_stack_vars_conflict (new_sv_num);
1240 for (i = old_sv_num; i < new_sv_num; ++i)
1241 for (j = i < this_sv_num ? i+1 : this_sv_num; j-- > old_sv_num ;)
1242 add_stack_var_conflict (i, j);
1246 /* A subroutine of expand_used_vars. Walk down through the BLOCK tree
1247 and clear TREE_USED on all local variables. */
1249 static void
1250 clear_tree_used (tree block)
1252 tree t;
1254 for (t = BLOCK_VARS (block); t ; t = TREE_CHAIN (t))
1255 /* if (!TREE_STATIC (t) && !DECL_EXTERNAL (t)) */
1256 TREE_USED (t) = 0;
1258 for (t = BLOCK_SUBBLOCKS (block); t ; t = BLOCK_CHAIN (t))
1259 clear_tree_used (t);
1262 /* Examine TYPE and determine a bit mask of the following features. */
1264 #define SPCT_HAS_LARGE_CHAR_ARRAY 1
1265 #define SPCT_HAS_SMALL_CHAR_ARRAY 2
1266 #define SPCT_HAS_ARRAY 4
1267 #define SPCT_HAS_AGGREGATE 8
1269 static unsigned int
1270 stack_protect_classify_type (tree type)
1272 unsigned int ret = 0;
1273 tree t;
1275 switch (TREE_CODE (type))
1277 case ARRAY_TYPE:
1278 t = TYPE_MAIN_VARIANT (TREE_TYPE (type));
1279 if (t == char_type_node
1280 || t == signed_char_type_node
1281 || t == unsigned_char_type_node)
1283 unsigned HOST_WIDE_INT max = PARAM_VALUE (PARAM_SSP_BUFFER_SIZE);
1284 unsigned HOST_WIDE_INT len;
1286 if (!TYPE_SIZE_UNIT (type)
1287 || !host_integerp (TYPE_SIZE_UNIT (type), 1))
1288 len = max;
1289 else
1290 len = tree_low_cst (TYPE_SIZE_UNIT (type), 1);
1292 if (len < max)
1293 ret = SPCT_HAS_SMALL_CHAR_ARRAY | SPCT_HAS_ARRAY;
1294 else
1295 ret = SPCT_HAS_LARGE_CHAR_ARRAY | SPCT_HAS_ARRAY;
1297 else
1298 ret = SPCT_HAS_ARRAY;
1299 break;
1301 case UNION_TYPE:
1302 case QUAL_UNION_TYPE:
1303 case RECORD_TYPE:
1304 ret = SPCT_HAS_AGGREGATE;
1305 for (t = TYPE_FIELDS (type); t ; t = TREE_CHAIN (t))
1306 if (TREE_CODE (t) == FIELD_DECL)
1307 ret |= stack_protect_classify_type (TREE_TYPE (t));
1308 break;
1310 default:
1311 break;
1314 return ret;
1317 /* Return nonzero if DECL should be segregated into the "vulnerable" upper
1318 part of the local stack frame. Remember if we ever return nonzero for
1319 any variable in this function. The return value is the phase number in
1320 which the variable should be allocated. */
1322 static int
1323 stack_protect_decl_phase (tree decl)
1325 unsigned int bits = stack_protect_classify_type (TREE_TYPE (decl));
1326 int ret = 0;
1328 if (bits & SPCT_HAS_SMALL_CHAR_ARRAY)
1329 has_short_buffer = true;
1331 if (flag_stack_protect == 2)
1333 if ((bits & (SPCT_HAS_SMALL_CHAR_ARRAY | SPCT_HAS_LARGE_CHAR_ARRAY))
1334 && !(bits & SPCT_HAS_AGGREGATE))
1335 ret = 1;
1336 else if (bits & SPCT_HAS_ARRAY)
1337 ret = 2;
1339 else
1340 ret = (bits & SPCT_HAS_LARGE_CHAR_ARRAY) != 0;
1342 if (ret)
1343 has_protected_decls = true;
1345 return ret;
1348 /* Two helper routines that check for phase 1 and phase 2. These are used
1349 as callbacks for expand_stack_vars. */
1351 static bool
1352 stack_protect_decl_phase_1 (tree decl)
1354 return stack_protect_decl_phase (decl) == 1;
1357 static bool
1358 stack_protect_decl_phase_2 (tree decl)
1360 return stack_protect_decl_phase (decl) == 2;
1363 /* Ensure that variables in different stack protection phases conflict
1364 so that they are not merged and share the same stack slot. */
1366 static void
1367 add_stack_protection_conflicts (void)
1369 size_t i, j, n = stack_vars_num;
1370 unsigned char *phase;
1372 phase = XNEWVEC (unsigned char, n);
1373 for (i = 0; i < n; ++i)
1374 phase[i] = stack_protect_decl_phase (stack_vars[i].decl);
1376 for (i = 0; i < n; ++i)
1378 unsigned char ph_i = phase[i];
1379 for (j = 0; j < i; ++j)
1380 if (ph_i != phase[j])
1381 add_stack_var_conflict (i, j);
1384 XDELETEVEC (phase);
1387 /* Create a decl for the guard at the top of the stack frame. */
1389 static void
1390 create_stack_guard (void)
1392 tree guard = build_decl (VAR_DECL, NULL, ptr_type_node);
1393 TREE_THIS_VOLATILE (guard) = 1;
1394 TREE_USED (guard) = 1;
1395 expand_one_stack_var (guard);
1396 crtl->stack_protect_guard = guard;
1399 /* A subroutine of expand_used_vars. Walk down through the BLOCK tree
1400 expanding variables. Those variables that can be put into registers
1401 are allocated pseudos; those that can't are put on the stack.
1403 TOPLEVEL is true if this is the outermost BLOCK. */
1405 static HOST_WIDE_INT
1406 account_used_vars_for_block (tree block, bool toplevel)
1408 size_t i, j, old_sv_num, this_sv_num, new_sv_num;
1409 tree t;
1410 HOST_WIDE_INT size = 0;
1412 old_sv_num = toplevel ? 0 : stack_vars_num;
1414 /* Expand all variables at this level. */
1415 for (t = BLOCK_VARS (block); t ; t = TREE_CHAIN (t))
1416 if (TREE_USED (t))
1417 size += expand_one_var (t, toplevel, false);
1419 this_sv_num = stack_vars_num;
1421 /* Expand all variables at containing levels. */
1422 for (t = BLOCK_SUBBLOCKS (block); t ; t = BLOCK_CHAIN (t))
1423 size += account_used_vars_for_block (t, false);
1425 /* Since we do not track exact variable lifetimes (which is not even
1426 possible for variables whose address escapes), we mirror the block
1427 tree in the interference graph. Here we cause all variables at this
1428 level, and all sublevels, to conflict. Do make certain that a
1429 variable conflicts with itself. */
1430 if (old_sv_num < this_sv_num)
1432 new_sv_num = stack_vars_num;
1433 resize_stack_vars_conflict (new_sv_num);
1435 for (i = old_sv_num; i < new_sv_num; ++i)
1436 for (j = i < this_sv_num ? i+1 : this_sv_num; j-- > old_sv_num ;)
1437 add_stack_var_conflict (i, j);
1439 return size;
1442 /* Prepare for expanding variables. */
1443 static void
1444 init_vars_expansion (void)
1446 tree t;
1447 /* Set TREE_USED on all variables in the local_decls. */
1448 for (t = cfun->local_decls; t; t = TREE_CHAIN (t))
1449 TREE_USED (TREE_VALUE (t)) = 1;
1451 /* Clear TREE_USED on all variables associated with a block scope. */
1452 clear_tree_used (DECL_INITIAL (current_function_decl));
1454 /* Initialize local stack smashing state. */
1455 has_protected_decls = false;
1456 has_short_buffer = false;
1459 /* Free up stack variable graph data. */
1460 static void
1461 fini_vars_expansion (void)
1463 XDELETEVEC (stack_vars);
1464 XDELETEVEC (stack_vars_sorted);
1465 XDELETEVEC (stack_vars_conflict);
1466 stack_vars = NULL;
1467 stack_vars_alloc = stack_vars_num = 0;
1468 stack_vars_conflict = NULL;
1469 stack_vars_conflict_alloc = 0;
1472 /* Make a fair guess for the size of the stack frame of the current
1473 function. This doesn't have to be exact, the result is only used
1474 in the inline heuristics. So we don't want to run the full stack
1475 var packing algorithm (which is quadratic in the number of stack
1476 vars). Instead, we calculate the total size of all stack vars.
1477 This turns out to be a pretty fair estimate -- packing of stack
1478 vars doesn't happen very often. */
1480 HOST_WIDE_INT
1481 estimated_stack_frame_size (void)
1483 HOST_WIDE_INT size = 0;
1484 size_t i;
1485 tree t, outer_block = DECL_INITIAL (current_function_decl);
1487 init_vars_expansion ();
1489 for (t = cfun->local_decls; t; t = TREE_CHAIN (t))
1491 tree var = TREE_VALUE (t);
1493 if (TREE_USED (var))
1494 size += expand_one_var (var, true, false);
1495 TREE_USED (var) = 1;
1497 size += account_used_vars_for_block (outer_block, true);
1499 if (stack_vars_num > 0)
1501 /* Fake sorting the stack vars for account_stack_vars (). */
1502 stack_vars_sorted = XNEWVEC (size_t, stack_vars_num);
1503 for (i = 0; i < stack_vars_num; ++i)
1504 stack_vars_sorted[i] = i;
1505 size += account_stack_vars ();
1506 fini_vars_expansion ();
1509 return size;
1512 /* Expand all variables used in the function. */
1514 static void
1515 expand_used_vars (void)
1517 tree t, next, outer_block = DECL_INITIAL (current_function_decl);
1518 unsigned i;
1520 /* Compute the phase of the stack frame for this function. */
1522 int align = PREFERRED_STACK_BOUNDARY / BITS_PER_UNIT;
1523 int off = STARTING_FRAME_OFFSET % align;
1524 frame_phase = off ? align - off : 0;
1527 init_vars_expansion ();
1529 for (i = 0; i < SA.map->num_partitions; i++)
1531 tree var = partition_to_var (SA.map, i);
1533 gcc_assert (is_gimple_reg (var));
1534 if (TREE_CODE (SSA_NAME_VAR (var)) == VAR_DECL)
1535 expand_one_var (var, true, true);
1536 else
1538 /* This is a PARM_DECL or RESULT_DECL. For those partitions that
1539 contain the default def (representing the parm or result itself)
1540 we don't do anything here. But those which don't contain the
1541 default def (representing a temporary based on the parm/result)
1542 we need to allocate space just like for normal VAR_DECLs. */
1543 if (!bitmap_bit_p (SA.partition_has_default_def, i))
1545 expand_one_var (var, true, true);
1546 gcc_assert (SA.partition_to_pseudo[i]);
1551 /* At this point all variables on the local_decls with TREE_USED
1552 set are not associated with any block scope. Lay them out. */
1553 t = cfun->local_decls;
1554 cfun->local_decls = NULL_TREE;
1555 for (; t; t = next)
1557 tree var = TREE_VALUE (t);
1558 bool expand_now = false;
1560 next = TREE_CHAIN (t);
1562 /* Expanded above already. */
1563 if (is_gimple_reg (var))
1565 /* We didn't set a block for static or extern because it's hard
1566 to tell the difference between a global variable (re)declared
1567 in a local scope, and one that's really declared there to
1568 begin with. And it doesn't really matter much, since we're
1569 not giving them stack space. Expand them now. */
1570 else if (TREE_STATIC (var) || DECL_EXTERNAL (var))
1571 expand_now = true;
1573 /* If the variable is not associated with any block, then it
1574 was created by the optimizers, and could be live anywhere
1575 in the function. */
1576 else if (TREE_USED (var))
1577 expand_now = true;
1579 /* Finally, mark all variables on the list as used. We'll use
1580 this in a moment when we expand those associated with scopes. */
1581 TREE_USED (var) = 1;
1583 if (expand_now)
1585 expand_one_var (var, true, true);
1586 if (DECL_ARTIFICIAL (var) && !DECL_IGNORED_P (var))
1588 rtx rtl = DECL_RTL_IF_SET (var);
1590 /* Keep artificial non-ignored vars in cfun->local_decls
1591 chain until instantiate_decls. */
1592 if (rtl && (MEM_P (rtl) || GET_CODE (rtl) == CONCAT))
1594 TREE_CHAIN (t) = cfun->local_decls;
1595 cfun->local_decls = t;
1596 continue;
1601 ggc_free (t);
1604 /* At this point, all variables within the block tree with TREE_USED
1605 set are actually used by the optimized function. Lay them out. */
1606 expand_used_vars_for_block (outer_block, true);
1608 if (stack_vars_num > 0)
1610 /* Due to the way alias sets work, no variables with non-conflicting
1611 alias sets may be assigned the same address. Add conflicts to
1612 reflect this. */
1613 add_alias_set_conflicts ();
1615 /* If stack protection is enabled, we don't share space between
1616 vulnerable data and non-vulnerable data. */
1617 if (flag_stack_protect)
1618 add_stack_protection_conflicts ();
1620 /* Now that we have collected all stack variables, and have computed a
1621 minimal interference graph, attempt to save some stack space. */
1622 partition_stack_vars ();
1623 if (dump_file)
1624 dump_stack_var_partition ();
1627 /* There are several conditions under which we should create a
1628 stack guard: protect-all, alloca used, protected decls present. */
1629 if (flag_stack_protect == 2
1630 || (flag_stack_protect
1631 && (cfun->calls_alloca || has_protected_decls)))
1632 create_stack_guard ();
1634 /* Assign rtl to each variable based on these partitions. */
1635 if (stack_vars_num > 0)
1637 /* Reorder decls to be protected by iterating over the variables
1638 array multiple times, and allocating out of each phase in turn. */
1639 /* ??? We could probably integrate this into the qsort we did
1640 earlier, such that we naturally see these variables first,
1641 and thus naturally allocate things in the right order. */
1642 if (has_protected_decls)
1644 /* Phase 1 contains only character arrays. */
1645 expand_stack_vars (stack_protect_decl_phase_1);
1647 /* Phase 2 contains other kinds of arrays. */
1648 if (flag_stack_protect == 2)
1649 expand_stack_vars (stack_protect_decl_phase_2);
1652 expand_stack_vars (NULL);
1654 fini_vars_expansion ();
1657 /* If the target requires that FRAME_OFFSET be aligned, do it. */
1658 if (STACK_ALIGNMENT_NEEDED)
1660 HOST_WIDE_INT align = PREFERRED_STACK_BOUNDARY / BITS_PER_UNIT;
1661 if (!FRAME_GROWS_DOWNWARD)
1662 frame_offset += align - 1;
1663 frame_offset &= -align;
1668 /* If we need to produce a detailed dump, print the tree representation
1669 for STMT to the dump file. SINCE is the last RTX after which the RTL
1670 generated for STMT should have been appended. */
1672 static void
1673 maybe_dump_rtl_for_gimple_stmt (gimple stmt, rtx since)
1675 if (dump_file && (dump_flags & TDF_DETAILS))
1677 fprintf (dump_file, "\n;; ");
1678 print_gimple_stmt (dump_file, stmt, 0, TDF_SLIM);
1679 fprintf (dump_file, "\n");
1681 print_rtl (dump_file, since ? NEXT_INSN (since) : since);
1685 /* Maps the blocks that do not contain tree labels to rtx labels. */
1687 static struct pointer_map_t *lab_rtx_for_bb;
1689 /* Returns the label_rtx expression for a label starting basic block BB. */
1691 static rtx
1692 label_rtx_for_bb (basic_block bb ATTRIBUTE_UNUSED)
1694 gimple_stmt_iterator gsi;
1695 tree lab;
1696 gimple lab_stmt;
1697 void **elt;
1699 if (bb->flags & BB_RTL)
1700 return block_label (bb);
1702 elt = pointer_map_contains (lab_rtx_for_bb, bb);
1703 if (elt)
1704 return (rtx) *elt;
1706 /* Find the tree label if it is present. */
1708 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
1710 lab_stmt = gsi_stmt (gsi);
1711 if (gimple_code (lab_stmt) != GIMPLE_LABEL)
1712 break;
1714 lab = gimple_label_label (lab_stmt);
1715 if (DECL_NONLOCAL (lab))
1716 break;
1718 return label_rtx (lab);
1721 elt = pointer_map_insert (lab_rtx_for_bb, bb);
1722 *elt = gen_label_rtx ();
1723 return (rtx) *elt;
1727 /* A subroutine of expand_gimple_basic_block. Expand one GIMPLE_COND.
1728 Returns a new basic block if we've terminated the current basic
1729 block and created a new one. */
1731 static basic_block
1732 expand_gimple_cond (basic_block bb, gimple stmt)
1734 basic_block new_bb, dest;
1735 edge new_edge;
1736 edge true_edge;
1737 edge false_edge;
1738 tree pred = gimple_cond_pred_to_tree (stmt);
1739 rtx last2, last;
1741 last2 = last = get_last_insn ();
1743 extract_true_false_edges_from_block (bb, &true_edge, &false_edge);
1744 if (gimple_has_location (stmt))
1746 set_curr_insn_source_location (gimple_location (stmt));
1747 set_curr_insn_block (gimple_block (stmt));
1750 /* These flags have no purpose in RTL land. */
1751 true_edge->flags &= ~EDGE_TRUE_VALUE;
1752 false_edge->flags &= ~EDGE_FALSE_VALUE;
1754 /* We can either have a pure conditional jump with one fallthru edge or
1755 two-way jump that needs to be decomposed into two basic blocks. */
1756 if (false_edge->dest == bb->next_bb)
1758 jumpif (pred, label_rtx_for_bb (true_edge->dest));
1759 add_reg_br_prob_note (last, true_edge->probability);
1760 maybe_dump_rtl_for_gimple_stmt (stmt, last);
1761 if (true_edge->goto_locus)
1763 set_curr_insn_source_location (true_edge->goto_locus);
1764 set_curr_insn_block (true_edge->goto_block);
1765 true_edge->goto_locus = curr_insn_locator ();
1767 true_edge->goto_block = NULL;
1768 false_edge->flags |= EDGE_FALLTHRU;
1769 ggc_free (pred);
1770 /* Special case: when jumpif decides that the condition is
1771 trivial it emits an unconditional jump (and the necessary
1772 barrier). But we still have two edges, the fallthru one is
1773 wrong. purge_dead_edges would clean this up later. Unfortunately
1774 we have to insert insns (and split edges) before
1775 find_many_sub_basic_blocks and hence before purge_dead_edges.
1776 But splitting edges might create new blocks which depend on the
1777 fact that if there are two edges there's no barrier. So the
1778 barrier would get lost and verify_flow_info would ICE. Instead
1779 of auditing all edge splitters to care for the barrier (which
1780 normally isn't there in a cleaned CFG), fix it here. */
1781 if (BARRIER_P (get_last_insn ()))
1782 remove_edge (false_edge);
1783 return NULL;
1785 if (true_edge->dest == bb->next_bb)
1787 jumpifnot (pred, label_rtx_for_bb (false_edge->dest));
1788 add_reg_br_prob_note (last, false_edge->probability);
1789 maybe_dump_rtl_for_gimple_stmt (stmt, last);
1790 if (false_edge->goto_locus)
1792 set_curr_insn_source_location (false_edge->goto_locus);
1793 set_curr_insn_block (false_edge->goto_block);
1794 false_edge->goto_locus = curr_insn_locator ();
1796 false_edge->goto_block = NULL;
1797 true_edge->flags |= EDGE_FALLTHRU;
1798 ggc_free (pred);
1799 if (BARRIER_P (get_last_insn ()))
1800 remove_edge (true_edge);
1801 return NULL;
1804 jumpif (pred, label_rtx_for_bb (true_edge->dest));
1805 add_reg_br_prob_note (last, true_edge->probability);
1806 last = get_last_insn ();
1807 if (false_edge->goto_locus)
1809 set_curr_insn_source_location (false_edge->goto_locus);
1810 set_curr_insn_block (false_edge->goto_block);
1811 false_edge->goto_locus = curr_insn_locator ();
1813 false_edge->goto_block = NULL;
1814 emit_jump (label_rtx_for_bb (false_edge->dest));
1816 BB_END (bb) = last;
1817 if (BARRIER_P (BB_END (bb)))
1818 BB_END (bb) = PREV_INSN (BB_END (bb));
1819 update_bb_for_insn (bb);
1821 new_bb = create_basic_block (NEXT_INSN (last), get_last_insn (), bb);
1822 dest = false_edge->dest;
1823 redirect_edge_succ (false_edge, new_bb);
1824 false_edge->flags |= EDGE_FALLTHRU;
1825 new_bb->count = false_edge->count;
1826 new_bb->frequency = EDGE_FREQUENCY (false_edge);
1827 new_edge = make_edge (new_bb, dest, 0);
1828 new_edge->probability = REG_BR_PROB_BASE;
1829 new_edge->count = new_bb->count;
1830 if (BARRIER_P (BB_END (new_bb)))
1831 BB_END (new_bb) = PREV_INSN (BB_END (new_bb));
1832 update_bb_for_insn (new_bb);
1834 maybe_dump_rtl_for_gimple_stmt (stmt, last2);
1836 if (true_edge->goto_locus)
1838 set_curr_insn_source_location (true_edge->goto_locus);
1839 set_curr_insn_block (true_edge->goto_block);
1840 true_edge->goto_locus = curr_insn_locator ();
1842 true_edge->goto_block = NULL;
1844 ggc_free (pred);
1845 return new_bb;
1848 /* A subroutine of expand_gimple_basic_block. Expand one GIMPLE_CALL
1849 that has CALL_EXPR_TAILCALL set. Returns non-null if we actually
1850 generated a tail call (something that might be denied by the ABI
1851 rules governing the call; see calls.c).
1853 Sets CAN_FALLTHRU if we generated a *conditional* tail call, and
1854 can still reach the rest of BB. The case here is __builtin_sqrt,
1855 where the NaN result goes through the external function (with a
1856 tailcall) and the normal result happens via a sqrt instruction. */
1858 static basic_block
1859 expand_gimple_tailcall (basic_block bb, gimple stmt, bool *can_fallthru)
1861 rtx last2, last;
1862 edge e;
1863 edge_iterator ei;
1864 int probability;
1865 gcov_type count;
1866 tree stmt_tree = gimple_to_tree (stmt);
1868 last2 = last = get_last_insn ();
1870 expand_expr_stmt (stmt_tree);
1872 release_stmt_tree (stmt, stmt_tree);
1874 for (last = NEXT_INSN (last); last; last = NEXT_INSN (last))
1875 if (CALL_P (last) && SIBLING_CALL_P (last))
1876 goto found;
1878 maybe_dump_rtl_for_gimple_stmt (stmt, last2);
1880 *can_fallthru = true;
1881 return NULL;
1883 found:
1884 /* ??? Wouldn't it be better to just reset any pending stack adjust?
1885 Any instructions emitted here are about to be deleted. */
1886 do_pending_stack_adjust ();
1888 /* Remove any non-eh, non-abnormal edges that don't go to exit. */
1889 /* ??? I.e. the fallthrough edge. HOWEVER! If there were to be
1890 EH or abnormal edges, we shouldn't have created a tail call in
1891 the first place. So it seems to me we should just be removing
1892 all edges here, or redirecting the existing fallthru edge to
1893 the exit block. */
1895 probability = 0;
1896 count = 0;
1898 for (ei = ei_start (bb->succs); (e = ei_safe_edge (ei)); )
1900 if (!(e->flags & (EDGE_ABNORMAL | EDGE_EH)))
1902 if (e->dest != EXIT_BLOCK_PTR)
1904 e->dest->count -= e->count;
1905 e->dest->frequency -= EDGE_FREQUENCY (e);
1906 if (e->dest->count < 0)
1907 e->dest->count = 0;
1908 if (e->dest->frequency < 0)
1909 e->dest->frequency = 0;
1911 count += e->count;
1912 probability += e->probability;
1913 remove_edge (e);
1915 else
1916 ei_next (&ei);
1919 /* This is somewhat ugly: the call_expr expander often emits instructions
1920 after the sibcall (to perform the function return). These confuse the
1921 find_many_sub_basic_blocks code, so we need to get rid of these. */
1922 last = NEXT_INSN (last);
1923 gcc_assert (BARRIER_P (last));
1925 *can_fallthru = false;
1926 while (NEXT_INSN (last))
1928 /* For instance an sqrt builtin expander expands if with
1929 sibcall in the then and label for `else`. */
1930 if (LABEL_P (NEXT_INSN (last)))
1932 *can_fallthru = true;
1933 break;
1935 delete_insn (NEXT_INSN (last));
1938 e = make_edge (bb, EXIT_BLOCK_PTR, EDGE_ABNORMAL | EDGE_SIBCALL);
1939 e->probability += probability;
1940 e->count += count;
1941 BB_END (bb) = last;
1942 update_bb_for_insn (bb);
1944 if (NEXT_INSN (last))
1946 bb = create_basic_block (NEXT_INSN (last), get_last_insn (), bb);
1948 last = BB_END (bb);
1949 if (BARRIER_P (last))
1950 BB_END (bb) = PREV_INSN (last);
1953 maybe_dump_rtl_for_gimple_stmt (stmt, last2);
1955 return bb;
1958 /* Expand basic block BB from GIMPLE trees to RTL. */
1960 static basic_block
1961 expand_gimple_basic_block (basic_block bb)
1963 gimple_stmt_iterator gsi;
1964 gimple_seq stmts;
1965 gimple stmt = NULL;
1966 rtx note, last;
1967 edge e;
1968 edge_iterator ei;
1969 void **elt;
1971 if (dump_file)
1972 fprintf (dump_file, "\n;; Generating RTL for gimple basic block %d\n",
1973 bb->index);
1975 /* Note that since we are now transitioning from GIMPLE to RTL, we
1976 cannot use the gsi_*_bb() routines because they expect the basic
1977 block to be in GIMPLE, instead of RTL. Therefore, we need to
1978 access the BB sequence directly. */
1979 stmts = bb_seq (bb);
1980 bb->il.gimple = NULL;
1981 rtl_profile_for_bb (bb);
1982 init_rtl_bb_info (bb);
1983 bb->flags |= BB_RTL;
1985 /* Remove the RETURN_EXPR if we may fall though to the exit
1986 instead. */
1987 gsi = gsi_last (stmts);
1988 if (!gsi_end_p (gsi)
1989 && gimple_code (gsi_stmt (gsi)) == GIMPLE_RETURN)
1991 gimple ret_stmt = gsi_stmt (gsi);
1993 gcc_assert (single_succ_p (bb));
1994 gcc_assert (single_succ (bb) == EXIT_BLOCK_PTR);
1996 if (bb->next_bb == EXIT_BLOCK_PTR
1997 && !gimple_return_retval (ret_stmt))
1999 gsi_remove (&gsi, false);
2000 single_succ_edge (bb)->flags |= EDGE_FALLTHRU;
2004 gsi = gsi_start (stmts);
2005 if (!gsi_end_p (gsi))
2007 stmt = gsi_stmt (gsi);
2008 if (gimple_code (stmt) != GIMPLE_LABEL)
2009 stmt = NULL;
2012 elt = pointer_map_contains (lab_rtx_for_bb, bb);
2014 if (stmt || elt)
2016 last = get_last_insn ();
2018 if (stmt)
2020 tree stmt_tree = gimple_to_tree (stmt);
2021 expand_expr_stmt (stmt_tree);
2022 release_stmt_tree (stmt, stmt_tree);
2023 gsi_next (&gsi);
2026 if (elt)
2027 emit_label ((rtx) *elt);
2029 /* Java emits line number notes in the top of labels.
2030 ??? Make this go away once line number notes are obsoleted. */
2031 BB_HEAD (bb) = NEXT_INSN (last);
2032 if (NOTE_P (BB_HEAD (bb)))
2033 BB_HEAD (bb) = NEXT_INSN (BB_HEAD (bb));
2034 note = emit_note_after (NOTE_INSN_BASIC_BLOCK, BB_HEAD (bb));
2036 maybe_dump_rtl_for_gimple_stmt (stmt, last);
2038 else
2039 note = BB_HEAD (bb) = emit_note (NOTE_INSN_BASIC_BLOCK);
2041 NOTE_BASIC_BLOCK (note) = bb;
2043 for (; !gsi_end_p (gsi); gsi_next (&gsi))
2045 gimple stmt = gsi_stmt (gsi);
2046 basic_block new_bb;
2048 /* Expand this statement, then evaluate the resulting RTL and
2049 fixup the CFG accordingly. */
2050 if (gimple_code (stmt) == GIMPLE_COND)
2052 new_bb = expand_gimple_cond (bb, stmt);
2053 if (new_bb)
2054 return new_bb;
2056 else
2058 if (is_gimple_call (stmt) && gimple_call_tail_p (stmt))
2060 bool can_fallthru;
2061 new_bb = expand_gimple_tailcall (bb, stmt, &can_fallthru);
2062 if (new_bb)
2064 if (can_fallthru)
2065 bb = new_bb;
2066 else
2067 return new_bb;
2070 else if (gimple_code (stmt) != GIMPLE_CHANGE_DYNAMIC_TYPE)
2072 def_operand_p def_p;
2073 tree stmt_tree;
2074 def_p = SINGLE_SSA_DEF_OPERAND (stmt, SSA_OP_DEF);
2076 if (def_p != NULL)
2078 /* Ignore this stmt if it is in the list of
2079 replaceable expressions. */
2080 if (SA.values
2081 && bitmap_bit_p (SA.values,
2082 SSA_NAME_VERSION (DEF_FROM_PTR (def_p))))
2083 continue;
2085 stmt_tree = gimple_to_tree (stmt);
2086 last = get_last_insn ();
2087 expand_expr_stmt (stmt_tree);
2088 maybe_dump_rtl_for_gimple_stmt (stmt, last);
2089 release_stmt_tree (stmt, stmt_tree);
2094 /* Expand implicit goto and convert goto_locus. */
2095 FOR_EACH_EDGE (e, ei, bb->succs)
2097 if (e->goto_locus && e->goto_block)
2099 set_curr_insn_source_location (e->goto_locus);
2100 set_curr_insn_block (e->goto_block);
2101 e->goto_locus = curr_insn_locator ();
2103 e->goto_block = NULL;
2104 if ((e->flags & EDGE_FALLTHRU) && e->dest != bb->next_bb)
2106 emit_jump (label_rtx_for_bb (e->dest));
2107 e->flags &= ~EDGE_FALLTHRU;
2111 do_pending_stack_adjust ();
2113 /* Find the block tail. The last insn in the block is the insn
2114 before a barrier and/or table jump insn. */
2115 last = get_last_insn ();
2116 if (BARRIER_P (last))
2117 last = PREV_INSN (last);
2118 if (JUMP_TABLE_DATA_P (last))
2119 last = PREV_INSN (PREV_INSN (last));
2120 BB_END (bb) = last;
2122 update_bb_for_insn (bb);
2124 return bb;
2128 /* Create a basic block for initialization code. */
2130 static basic_block
2131 construct_init_block (void)
2133 basic_block init_block, first_block;
2134 edge e = NULL;
2135 int flags;
2137 /* Multiple entry points not supported yet. */
2138 gcc_assert (EDGE_COUNT (ENTRY_BLOCK_PTR->succs) == 1);
2139 init_rtl_bb_info (ENTRY_BLOCK_PTR);
2140 init_rtl_bb_info (EXIT_BLOCK_PTR);
2141 ENTRY_BLOCK_PTR->flags |= BB_RTL;
2142 EXIT_BLOCK_PTR->flags |= BB_RTL;
2144 e = EDGE_SUCC (ENTRY_BLOCK_PTR, 0);
2146 /* When entry edge points to first basic block, we don't need jump,
2147 otherwise we have to jump into proper target. */
2148 if (e && e->dest != ENTRY_BLOCK_PTR->next_bb)
2150 tree label = gimple_block_label (e->dest);
2152 emit_jump (label_rtx (label));
2153 flags = 0;
2155 else
2156 flags = EDGE_FALLTHRU;
2158 init_block = create_basic_block (NEXT_INSN (get_insns ()),
2159 get_last_insn (),
2160 ENTRY_BLOCK_PTR);
2161 init_block->frequency = ENTRY_BLOCK_PTR->frequency;
2162 init_block->count = ENTRY_BLOCK_PTR->count;
2163 if (e)
2165 first_block = e->dest;
2166 redirect_edge_succ (e, init_block);
2167 e = make_edge (init_block, first_block, flags);
2169 else
2170 e = make_edge (init_block, EXIT_BLOCK_PTR, EDGE_FALLTHRU);
2171 e->probability = REG_BR_PROB_BASE;
2172 e->count = ENTRY_BLOCK_PTR->count;
2174 update_bb_for_insn (init_block);
2175 return init_block;
2178 /* For each lexical block, set BLOCK_NUMBER to the depth at which it is
2179 found in the block tree. */
2181 static void
2182 set_block_levels (tree block, int level)
2184 while (block)
2186 BLOCK_NUMBER (block) = level;
2187 set_block_levels (BLOCK_SUBBLOCKS (block), level + 1);
2188 block = BLOCK_CHAIN (block);
2192 /* Create a block containing landing pads and similar stuff. */
2194 static void
2195 construct_exit_block (void)
2197 rtx head = get_last_insn ();
2198 rtx end;
2199 basic_block exit_block;
2200 edge e, e2;
2201 unsigned ix;
2202 edge_iterator ei;
2203 rtx orig_end = BB_END (EXIT_BLOCK_PTR->prev_bb);
2205 rtl_profile_for_bb (EXIT_BLOCK_PTR);
2207 /* Make sure the locus is set to the end of the function, so that
2208 epilogue line numbers and warnings are set properly. */
2209 if (cfun->function_end_locus != UNKNOWN_LOCATION)
2210 input_location = cfun->function_end_locus;
2212 /* The following insns belong to the top scope. */
2213 set_curr_insn_block (DECL_INITIAL (current_function_decl));
2215 /* Generate rtl for function exit. */
2216 expand_function_end ();
2218 end = get_last_insn ();
2219 if (head == end)
2220 return;
2221 /* While emitting the function end we could move end of the last basic block.
2223 BB_END (EXIT_BLOCK_PTR->prev_bb) = orig_end;
2224 while (NEXT_INSN (head) && NOTE_P (NEXT_INSN (head)))
2225 head = NEXT_INSN (head);
2226 exit_block = create_basic_block (NEXT_INSN (head), end,
2227 EXIT_BLOCK_PTR->prev_bb);
2228 exit_block->frequency = EXIT_BLOCK_PTR->frequency;
2229 exit_block->count = EXIT_BLOCK_PTR->count;
2231 ix = 0;
2232 while (ix < EDGE_COUNT (EXIT_BLOCK_PTR->preds))
2234 e = EDGE_PRED (EXIT_BLOCK_PTR, ix);
2235 if (!(e->flags & EDGE_ABNORMAL))
2236 redirect_edge_succ (e, exit_block);
2237 else
2238 ix++;
2241 e = make_edge (exit_block, EXIT_BLOCK_PTR, EDGE_FALLTHRU);
2242 e->probability = REG_BR_PROB_BASE;
2243 e->count = EXIT_BLOCK_PTR->count;
2244 FOR_EACH_EDGE (e2, ei, EXIT_BLOCK_PTR->preds)
2245 if (e2 != e)
2247 e->count -= e2->count;
2248 exit_block->count -= e2->count;
2249 exit_block->frequency -= EDGE_FREQUENCY (e2);
2251 if (e->count < 0)
2252 e->count = 0;
2253 if (exit_block->count < 0)
2254 exit_block->count = 0;
2255 if (exit_block->frequency < 0)
2256 exit_block->frequency = 0;
2257 update_bb_for_insn (exit_block);
2260 /* Helper function for discover_nonconstant_array_refs.
2261 Look for ARRAY_REF nodes with non-constant indexes and mark them
2262 addressable. */
2264 static tree
2265 discover_nonconstant_array_refs_r (tree * tp, int *walk_subtrees,
2266 void *data ATTRIBUTE_UNUSED)
2268 tree t = *tp;
2270 if (IS_TYPE_OR_DECL_P (t))
2271 *walk_subtrees = 0;
2272 else if (TREE_CODE (t) == ARRAY_REF || TREE_CODE (t) == ARRAY_RANGE_REF)
2274 while (((TREE_CODE (t) == ARRAY_REF || TREE_CODE (t) == ARRAY_RANGE_REF)
2275 && is_gimple_min_invariant (TREE_OPERAND (t, 1))
2276 && (!TREE_OPERAND (t, 2)
2277 || is_gimple_min_invariant (TREE_OPERAND (t, 2))))
2278 || (TREE_CODE (t) == COMPONENT_REF
2279 && (!TREE_OPERAND (t,2)
2280 || is_gimple_min_invariant (TREE_OPERAND (t, 2))))
2281 || TREE_CODE (t) == BIT_FIELD_REF
2282 || TREE_CODE (t) == REALPART_EXPR
2283 || TREE_CODE (t) == IMAGPART_EXPR
2284 || TREE_CODE (t) == VIEW_CONVERT_EXPR
2285 || CONVERT_EXPR_P (t))
2286 t = TREE_OPERAND (t, 0);
2288 if (TREE_CODE (t) == ARRAY_REF || TREE_CODE (t) == ARRAY_RANGE_REF)
2290 t = get_base_address (t);
2291 if (t && DECL_P (t))
2292 TREE_ADDRESSABLE (t) = 1;
2295 *walk_subtrees = 0;
2298 return NULL_TREE;
2301 /* RTL expansion is not able to compile array references with variable
2302 offsets for arrays stored in single register. Discover such
2303 expressions and mark variables as addressable to avoid this
2304 scenario. */
2306 static void
2307 discover_nonconstant_array_refs (void)
2309 basic_block bb;
2310 gimple_stmt_iterator gsi;
2312 FOR_EACH_BB (bb)
2313 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
2315 gimple stmt = gsi_stmt (gsi);
2316 walk_gimple_op (stmt, discover_nonconstant_array_refs_r, NULL);
2320 /* This function sets crtl->args.internal_arg_pointer to a virtual
2321 register if DRAP is needed. Local register allocator will replace
2322 virtual_incoming_args_rtx with the virtual register. */
2324 static void
2325 expand_stack_alignment (void)
2327 rtx drap_rtx;
2328 unsigned int preferred_stack_boundary;
2330 if (! SUPPORTS_STACK_ALIGNMENT)
2331 return;
2333 if (cfun->calls_alloca
2334 || cfun->has_nonlocal_label
2335 || crtl->has_nonlocal_goto)
2336 crtl->need_drap = true;
2338 gcc_assert (crtl->stack_alignment_needed
2339 <= crtl->stack_alignment_estimated);
2341 /* Update crtl->stack_alignment_estimated and use it later to align
2342 stack. We check PREFERRED_STACK_BOUNDARY if there may be non-call
2343 exceptions since callgraph doesn't collect incoming stack alignment
2344 in this case. */
2345 if (flag_non_call_exceptions
2346 && PREFERRED_STACK_BOUNDARY > crtl->preferred_stack_boundary)
2347 preferred_stack_boundary = PREFERRED_STACK_BOUNDARY;
2348 else
2349 preferred_stack_boundary = crtl->preferred_stack_boundary;
2350 if (preferred_stack_boundary > crtl->stack_alignment_estimated)
2351 crtl->stack_alignment_estimated = preferred_stack_boundary;
2352 if (preferred_stack_boundary > crtl->stack_alignment_needed)
2353 crtl->stack_alignment_needed = preferred_stack_boundary;
2355 crtl->stack_realign_needed
2356 = INCOMING_STACK_BOUNDARY < crtl->stack_alignment_estimated;
2357 crtl->stack_realign_tried = crtl->stack_realign_needed;
2359 crtl->stack_realign_processed = true;
2361 /* Target has to redefine TARGET_GET_DRAP_RTX to support stack
2362 alignment. */
2363 gcc_assert (targetm.calls.get_drap_rtx != NULL);
2364 drap_rtx = targetm.calls.get_drap_rtx ();
2366 /* stack_realign_drap and drap_rtx must match. */
2367 gcc_assert ((stack_realign_drap != 0) == (drap_rtx != NULL));
2369 /* Do nothing if NULL is returned, which means DRAP is not needed. */
2370 if (NULL != drap_rtx)
2372 crtl->args.internal_arg_pointer = drap_rtx;
2374 /* Call fixup_tail_calls to clean up REG_EQUIV note if DRAP is
2375 needed. */
2376 fixup_tail_calls ();
2380 /* Translate the intermediate representation contained in the CFG
2381 from GIMPLE trees to RTL.
2383 We do conversion per basic block and preserve/update the tree CFG.
2384 This implies we have to do some magic as the CFG can simultaneously
2385 consist of basic blocks containing RTL and GIMPLE trees. This can
2386 confuse the CFG hooks, so be careful to not manipulate CFG during
2387 the expansion. */
2389 static unsigned int
2390 gimple_expand_cfg (void)
2392 basic_block bb, init_block;
2393 sbitmap blocks;
2394 edge_iterator ei;
2395 edge e;
2396 unsigned i;
2398 rewrite_out_of_ssa (&SA);
2399 SA.partition_to_pseudo = (rtx *)xcalloc (SA.map->num_partitions,
2400 sizeof (rtx));
2402 /* Some backends want to know that we are expanding to RTL. */
2403 currently_expanding_to_rtl = 1;
2405 rtl_profile_for_bb (ENTRY_BLOCK_PTR);
2407 insn_locators_alloc ();
2408 if (!DECL_BUILT_IN (current_function_decl))
2410 /* Eventually, all FEs should explicitly set function_start_locus. */
2411 if (cfun->function_start_locus == UNKNOWN_LOCATION)
2412 set_curr_insn_source_location
2413 (DECL_SOURCE_LOCATION (current_function_decl));
2414 else
2415 set_curr_insn_source_location (cfun->function_start_locus);
2417 set_curr_insn_block (DECL_INITIAL (current_function_decl));
2418 prologue_locator = curr_insn_locator ();
2420 /* Make sure first insn is a note even if we don't want linenums.
2421 This makes sure the first insn will never be deleted.
2422 Also, final expects a note to appear there. */
2423 emit_note (NOTE_INSN_DELETED);
2425 /* Mark arrays indexed with non-constant indices with TREE_ADDRESSABLE. */
2426 discover_nonconstant_array_refs ();
2428 targetm.expand_to_rtl_hook ();
2429 crtl->stack_alignment_needed = STACK_BOUNDARY;
2430 crtl->max_used_stack_slot_alignment = STACK_BOUNDARY;
2431 crtl->stack_alignment_estimated = STACK_BOUNDARY;
2432 crtl->preferred_stack_boundary = STACK_BOUNDARY;
2433 cfun->cfg->max_jumptable_ents = 0;
2436 /* Expand the variables recorded during gimple lowering. */
2437 expand_used_vars ();
2439 /* Honor stack protection warnings. */
2440 if (warn_stack_protect)
2442 if (cfun->calls_alloca)
2443 warning (OPT_Wstack_protector,
2444 "not protecting local variables: variable length buffer");
2445 if (has_short_buffer && !crtl->stack_protect_guard)
2446 warning (OPT_Wstack_protector,
2447 "not protecting function: no buffer at least %d bytes long",
2448 (int) PARAM_VALUE (PARAM_SSP_BUFFER_SIZE));
2451 /* Set up parameters and prepare for return, for the function. */
2452 expand_function_start (current_function_decl);
2454 /* Now that we also have the parameter RTXs, copy them over to our
2455 partitions. */
2456 for (i = 0; i < SA.map->num_partitions; i++)
2458 tree var = SSA_NAME_VAR (partition_to_var (SA.map, i));
2460 if (TREE_CODE (var) != VAR_DECL
2461 && !SA.partition_to_pseudo[i])
2462 SA.partition_to_pseudo[i] = DECL_RTL_IF_SET (var);
2463 gcc_assert (SA.partition_to_pseudo[i]);
2464 /* Some RTL parts really want to look at DECL_RTL(x) when x
2465 was a decl marked in REG_ATTR or MEM_ATTR. We could use
2466 SET_DECL_RTL here making this available, but that would mean
2467 to select one of the potentially many RTLs for one DECL. Instead
2468 of doing that we simply reset the MEM_EXPR of the RTL in question,
2469 then nobody can get at it and hence nobody can call DECL_RTL on it. */
2470 if (!DECL_RTL_SET_P (var))
2472 if (MEM_P (SA.partition_to_pseudo[i]))
2473 set_mem_expr (SA.partition_to_pseudo[i], NULL);
2477 /* If this function is `main', emit a call to `__main'
2478 to run global initializers, etc. */
2479 if (DECL_NAME (current_function_decl)
2480 && MAIN_NAME_P (DECL_NAME (current_function_decl))
2481 && DECL_FILE_SCOPE_P (current_function_decl))
2482 expand_main_function ();
2484 /* Initialize the stack_protect_guard field. This must happen after the
2485 call to __main (if any) so that the external decl is initialized. */
2486 if (crtl->stack_protect_guard)
2487 stack_protect_prologue ();
2489 /* Update stack boundary if needed. */
2490 if (SUPPORTS_STACK_ALIGNMENT)
2492 /* Call update_stack_boundary here to update incoming stack
2493 boundary before TARGET_FUNCTION_OK_FOR_SIBCALL is called.
2494 TARGET_FUNCTION_OK_FOR_SIBCALL needs to know the accurate
2495 incoming stack alignment to check if it is OK to perform
2496 sibcall optimization since sibcall optimization will only
2497 align the outgoing stack to incoming stack boundary. */
2498 if (targetm.calls.update_stack_boundary)
2499 targetm.calls.update_stack_boundary ();
2501 /* The incoming stack frame has to be aligned at least at
2502 parm_stack_boundary. */
2503 gcc_assert (crtl->parm_stack_boundary <= INCOMING_STACK_BOUNDARY);
2506 expand_phi_nodes (&SA);
2508 /* Register rtl specific functions for cfg. */
2509 rtl_register_cfg_hooks ();
2511 init_block = construct_init_block ();
2513 /* Clear EDGE_EXECUTABLE on the entry edge(s). It is cleaned from the
2514 remaining edges later. */
2515 FOR_EACH_EDGE (e, ei, ENTRY_BLOCK_PTR->succs)
2516 e->flags &= ~EDGE_EXECUTABLE;
2518 lab_rtx_for_bb = pointer_map_create ();
2519 FOR_BB_BETWEEN (bb, init_block->next_bb, EXIT_BLOCK_PTR, next_bb)
2520 bb = expand_gimple_basic_block (bb);
2522 execute_free_datastructures ();
2523 finish_out_of_ssa (&SA);
2525 /* Expansion is used by optimization passes too, set maybe_hot_insn_p
2526 conservatively to true until they are all profile aware. */
2527 pointer_map_destroy (lab_rtx_for_bb);
2528 free_histograms ();
2530 construct_exit_block ();
2531 set_curr_insn_block (DECL_INITIAL (current_function_decl));
2532 insn_locators_finalize ();
2534 /* Convert tree EH labels to RTL EH labels and zap the tree EH table. */
2535 convert_from_eh_region_ranges ();
2536 set_eh_throw_stmt_table (cfun, NULL);
2538 rebuild_jump_labels (get_insns ());
2539 find_exception_handler_labels ();
2541 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR, EXIT_BLOCK_PTR, next_bb)
2543 edge e;
2544 edge_iterator ei;
2545 for (ei = ei_start (bb->succs); (e = ei_safe_edge (ei)); )
2547 if (e->insns.r)
2548 commit_one_edge_insertion (e);
2549 else
2550 ei_next (&ei);
2554 /* We're done expanding trees to RTL. */
2555 currently_expanding_to_rtl = 0;
2557 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR->next_bb, EXIT_BLOCK_PTR, next_bb)
2559 edge e;
2560 edge_iterator ei;
2561 for (ei = ei_start (bb->succs); (e = ei_safe_edge (ei)); )
2563 /* Clear EDGE_EXECUTABLE. This flag is never used in the backend. */
2564 e->flags &= ~EDGE_EXECUTABLE;
2566 /* At the moment not all abnormal edges match the RTL
2567 representation. It is safe to remove them here as
2568 find_many_sub_basic_blocks will rediscover them.
2569 In the future we should get this fixed properly. */
2570 if ((e->flags & EDGE_ABNORMAL)
2571 && !(e->flags & EDGE_SIBCALL))
2572 remove_edge (e);
2573 else
2574 ei_next (&ei);
2578 blocks = sbitmap_alloc (last_basic_block);
2579 sbitmap_ones (blocks);
2580 find_many_sub_basic_blocks (blocks);
2581 sbitmap_free (blocks);
2582 purge_all_dead_edges ();
2584 compact_blocks ();
2586 expand_stack_alignment ();
2588 #ifdef ENABLE_CHECKING
2589 verify_flow_info ();
2590 #endif
2592 /* There's no need to defer outputting this function any more; we
2593 know we want to output it. */
2594 DECL_DEFER_OUTPUT (current_function_decl) = 0;
2596 /* Now that we're done expanding trees to RTL, we shouldn't have any
2597 more CONCATs anywhere. */
2598 generating_concat_p = 0;
2600 if (dump_file)
2602 fprintf (dump_file,
2603 "\n\n;;\n;; Full RTL generated for this function:\n;;\n");
2604 /* And the pass manager will dump RTL for us. */
2607 /* If we're emitting a nested function, make sure its parent gets
2608 emitted as well. Doing otherwise confuses debug info. */
2610 tree parent;
2611 for (parent = DECL_CONTEXT (current_function_decl);
2612 parent != NULL_TREE;
2613 parent = get_containing_scope (parent))
2614 if (TREE_CODE (parent) == FUNCTION_DECL)
2615 TREE_SYMBOL_REFERENCED (DECL_ASSEMBLER_NAME (parent)) = 1;
2618 /* We are now committed to emitting code for this function. Do any
2619 preparation, such as emitting abstract debug info for the inline
2620 before it gets mangled by optimization. */
2621 if (cgraph_function_possibly_inlined_p (current_function_decl))
2622 (*debug_hooks->outlining_inline_function) (current_function_decl);
2624 TREE_ASM_WRITTEN (current_function_decl) = 1;
2626 /* After expanding, the return labels are no longer needed. */
2627 return_label = NULL;
2628 naked_return_label = NULL;
2629 /* Tag the blocks with a depth number so that change_scope can find
2630 the common parent easily. */
2631 set_block_levels (DECL_INITIAL (cfun->decl), 0);
2632 default_rtl_profile ();
2633 return 0;
2636 struct rtl_opt_pass pass_expand =
2639 RTL_PASS,
2640 "expand", /* name */
2641 NULL, /* gate */
2642 gimple_expand_cfg, /* execute */
2643 NULL, /* sub */
2644 NULL, /* next */
2645 0, /* static_pass_number */
2646 TV_EXPAND, /* tv_id */
2647 PROP_ssa | PROP_gimple_leh | PROP_cfg,/* properties_required */
2648 PROP_rtl, /* properties_provided */
2649 PROP_ssa | PROP_trees, /* properties_destroyed */
2650 TODO_verify_ssa | TODO_verify_flow
2651 | TODO_verify_stmts, /* todo_flags_start */
2652 TODO_dump_func
2653 | TODO_ggc_collect /* todo_flags_finish */