8sa1-gcc/gcc/tree-ssa-sink.c
Diego Novillo 38635499e9 [multiple changes]
2006-12-11  Diego Novillo  <dnovillo@redhat.com>

	* doc/tree-ssa.texi: Update documentation for virtual operands
	and the use of push_stmt_changes/pop_stmt_changes.
	* doc/invoke.texi: Remove documentation for params
	global-var-threshold.
	Update documentation on max-aliased-vops.

	* tree-into-ssa.c: Cleanup comments, variables and
	spacing in various functions.
	(regs_to_rename): Declare.
	(mem_syms_to_rename): Declare.
	(dump_update_ssa): Declare.
	(debug_update_ssa): Declare.
	(dump_names_replaced_by): Declare.
	(debug_names_replaced_by): Declare.
	(dump_def_blocks): Declare.
	(debug_def_blocks): Declare.
	(dump_defs_stack): Declare.
	(debug_defs_stack): Declare.
	(dump_currdefs): Declare.
	(debug_currdefs): Declare.
	(mark_def_sites): Do not handle virtual operands.
	(compute_idf): Rename from find_idf.  Update users.
	(register_new_def): Make local.  Convert second argument
	to 'tree'.
	Use BLOCK_DEFS_STACK directly.
	If pushing a non-register, also push the underlying
	symbol.
	(rewrite_stmt): Do not handle virtual operands.
	(dump_tree_ssa): Call dump_def_blocks, dump_defs_stack,
	dump_currdefs and dump_tree_ssa_stats.
	(dump_tree_ssa_stats): Also dump REPL_TBL.
	(replace_use): Remove.  Update all users to call SET_USE
	instead.
	(rewrite_blocks): Move code to free memory to
	fini_ssa_renamer.
	(mark_def_site_blocks): Move initialization code to
	init_ssa_renamer.
	(init_ssa_renamer): New.
	(fini_ssa_renamer): New.
	(rewrite_into_ssa): Call them.
	(prepare_block_for_update): Process SSA_OP_ALL_USES first
	and SSA_OP_ALL_DEFS later.  Do not process virtual
	operands separately.
	(dump_update_ssa): Call dump_decl_set.
	(init_update_ssa): Initialize regs_to_rename and
	mem_syms_to_rename.
	Call init_ssa_renamer.
	(delete_update_ssa): Call fini_ssa_renamer.
	Free blocks_with_phis_to_rewrite.
	(mark_sym_for_renaming): If the variable has
	sub-variables, also mark them.
	If the variable belongs to a partition, also mark it.
	(mark_set_for_renaming): Call mark_sym_for_renaming on
	every symbol in the set.
	(switch_virtuals_to_full_rewrite): Call
	mark_set_for_renaming.
	(update_ssa): Separate syms_to_rename into regs_to_rename
	and mem_syms_to_rename.

	* tree-dump.c (dump_options): Add TDF_MEMSYMS.
	* tree-pretty-print.c (debug_generic_expr): Add TDF_MEMSYMS.
	(debug_generic_stmt): Likewise.
	(debug_tree_chain): Likewise.
	(dump_symbols): New.
	(dump_generic_node): Check for TDF_MEMSYMS.
	Handle MEMORY_PARTITION_TAG.
	If the statement references memory and TDF_MEMSYMS is
	given, call dump_symbols.
	Indicate default names with (D).
	(dump_vops): Update for new virtual operator format.

	* tree.c (init_ttree): Add MEMORY_PARTITION_TAG to
	tree_contains_struct.
	(tree_code_size): Handle MEMORY_PARTITION_TAG.
	(tree_node_structure): Likewise.
	(needs_to_live_in_memory): Handle SSA names.
	* tree.h (MTAG_P): Likewise.
	(struct tree_memory_partition_tag): Declare.
	(MPT_SYMBOLS): Define.
	(union tree_node): Add field 'mpt'.
	* treestruct.def (TS_MEMORY_PARTITION_TAG): Define.
	* tree.def (MEMORY_PARTITION_TAG): Define.

	* tree-pass.h (TDF_MEMSYMS): Define.

	* params.h (GLOBAL_VAR_THRESHOLD): Remove.

	* tree-ssa-alias.c: Include pointer-set.h
	(struct alias_map_d): Remove fields total_alias_vops,
	grouped_p and may_aliases.  Update all users.
	(struct mp_info_def): Declare.
	(mp_info_t): New type.
	(get_smt_for): Rename from get_tmt_for.  Update all
	users.
	(add_may_alias): Add argument ALREADY_ADDED.  If given,
	use it to avoid adding duplicate entries to alias sets.
	(replace_may_alias): Remove.  Update all users.
	(total_alias_vops_cmp): Remove.  Update all users.
	(group_aliases_into): Remove.  Update all users.
	(tree_pointer_compare): Remove.  Update all users.
	(compact_name_tags): Remove.  Update all users.
	(group_aliases): Remove.  Update all users.
	(mark_non_addressable): Move from tree-flow-inline.h.
	Remove the symbol from the partition holding it, if
	needed.
	(dump_mp_info): New.
	(debug_mp_info): New.
	(sort_mp_info): New.
	(create_partition_for): New.
	(rewrite_alias_set_for): New.
	(compute_memory_partitions): New.
	(compute_may_aliases): Call it.
	(init_alias_info): If computing aliases for the first
	time, mark every memory symbol for renaming.
	(have_common_aliases_p): New.
	(compute_flow_insensitive_aliasing): Call it.
	(setup_pointers_and_addressables): Do not cache
	num_referenced_vars.
	For register promoted symbols, mark their former
	partition for renaming.
	(maybe_create_global_var): Only create .GLOBAL_VAR if
	there are no call-clobbered variables and a mix of pure
	and non-pure functions were found.
	(may_alias_p): Tidy comments.
	(create_tag_raw): Remove unused variable new_type.
	(dump_alias_info): call dump_memory_partitions.
	(dump_points_to_info_for): Call dump_decl_set.
	(may_be_aliased): Tidy comments and formatting.

	* timevar.def (TV_MEMORY_PARTITIONING): Define.
	* tree-vectorizer.c (vect_memsyms_to_rename): Rename from
	vect_vnames_to_rename.  Set DECL_UIDs instead of SSA name
	versions in it.
	(slpeel_update_phi_nodes_for_guard1): Ignore memory PHIs.
	* tree-vect-transform.c (vect_transform_loop): Call
	mark_set_for_renaming with vect_memsyms_to_rename.
	* tree-flow-inline.h (zero_imm_uses_p): New.
	(memory_partition): New.
	(set_memory_partition): New.
	(factoring_name_p): New.
	(symbol_mem_tag): New.  Update every function that used
	to access the annotation directly.
	(set_symbol_mem_tag): Likewise.

	* tree-ssa-copy.c (may_propagate_copy): Allow copies
	between a partition and a symbol as long as the symbol
	belongs to the partition.
	(merge_alias_info): Ignore merge requests when memory
	partitions are involved.

	* tree-ssa.c (verify_ssa_name): Check that default
	definitions have empty defining statements.
	(verify_use): Remove argument IS_VIRTUAL.
	Don't call verify_ssa_name.
	(verify_phi_args): Call verify_ssa_name.
	(verify_flow_insensitive_alias_info): Handle MPTs.
	(verify_flow_sensitive_alias_info): Likewise.
	(verify_name_tags): Likewise.
	(verify_call_clobbering): Likewise.
	(verify_ssa): Check for VOPs only after aliasing
	information is available.
	Check virtuals and real operands separately.
	Call verify_ssa_name on every operand.
	(stmt_references_memory_p): Move to tree-ssa-operands.c.
	(walk_use_def_chains_1): Guard against NULL PHI
	arguments.

	* tree-ssa-operands.c (stmt_references_memory_p): Move from
	tree-ssa.c.
	(get_mpt_for): New.
	(dump_memory_partitions): New.
	(debug_memory_partitions): New.

	* tree-flow.h (struct var_ann_d): Add field mpt.
	(struct stmt_ann_d): Add bitfield references_memory.
	* Makefile.in (tree-ssa-structalias.o): Include
	pointer-set.h
	(tree-ssa-alias.o): Likewise.
	* tree-ssa-structalias.c: (update_alias_info): Use
	STORED_SYMS to determine which variables are being
	written to by the store operation.
	* tree-ssa-structalias.h (struct alias_info)
	<total_alias_vops>: Remove.  Update all users.
	<written_vars>: Change to a pointer set.  Update all
	users.
	<dereferenced_ptrs_store>: Likewise.
	<dereferenced_ptrs_load>: Likewise.
	(NUM_REFERENCES): Remove.  Update all users.
	(NUM_REFERENCES_CLEAR): Remove.  Update all users.
	(NUM_REFERENCES_INC): Remove.  Update all users.
	(NUM_REFERENCES_SET): Remove.  Update all users.

	* params.def (PARAM_GLOBAL_VAR_THRESHOLD): Remove.
	Update all users.
	(PARAM_MAX_ALIASED_VOPS): Set to 10.
	* tree-ssanames.c (make_ssa_name): Initialize
	SSA_NAME_IS_DEFAULT_DEF to 0.

2006-12-11  Aldy Hernandez  <aldyh@redhat.com>

	* tree-ssa-dse.c (aggregate_vardecl_d): New.
	(dse_global_data): Add aggregate_vardecl field.
	(dse_possible_dead_store_p): New.
	Add prev_defvar variable.
	Allow immediate uses and previous immediate uses to differ
	if they are setting different parts of the whole.
	(get_aggregate_vardecl): New.
	(dse_record_partial_aggregate_store): New.
	(dse_whole_aggregate_clobbered_p): New.
	(dse_partial_kill_p): New.
	(dse_optimize_stmt): Abstract code checking a possible dead store
	into new function dse_possible_dead_store_p().
	Call dse_maybe_record_aggregate_store().
	When checking whether a STMT and its USE_STMT refer to the
	same memory address, check also for partial kills that clobber
	the whole.
	Move some variable definitions to the block where they are used.
	(aggregate_vardecl_hash): New.
	(aggregate_vardecl_eq): New.
	(aggregate_vardecl_free): New.
	(aggregate_whole_store_p): New.
	(tree_ssa_dse): Initialize and free aggregate_vardecl.
	Mark which aggregate stores we care about.

2006-12-11  Andrew Macleod  <amacleod@redhat.com>

	* tree-ssa-operands.h (struct vuse_element_d): Declare.
	(vuse_element_t): Declare.
	(struct vuse_vec_d): Declare.
	(vuse_vec_p): Declare.
	(VUSE_VECT_NUM_ELEM): Define.
	(VUSE_VECT_ELEMENT_NC): Define.
	(VUSE_ELEMENT_PTR_NC): Define.
	(VUSE_ELEMENT_VAR_NC): Define.
	(VUSE_VECT_ELEMENT): Define.
	(VUSE_ELEMENT_PTR): Define.
	(VUSE_ELEMENT_VAR): Define.
	(struct maydef_optype_d) <use_var>: Remove.
	<use_ptr>: Remove.
	<usev>: Add.
	(struct vuse_optype_d) <kill_var>: Remove.
	<use_ptr>: Remove.
	<usev>: Add.
	(struct mustdef_optype_d) <kill_var>: Remove.
	<use_ptr>: Remove.
	<usev>: Add.
	(VUSE_OP_PTR): Add argument.  Use VUSE_ELEMENT_PTR.
	(VUSE_OP): Add argument.  Use VUSE_ELEMENT_PTR.
	(VUSE_NUM): Define.
	(VUSE_VECT): Define.
	(MAYDEF_OP_PTR): Add argument.  Use VUSE_OP_PTR.
	(MAYDEF_OP): Add argument.  Use VUSE_OP.
	(MAYDEF_NUM): Define.
	(MAYDEF_VECT): Define.
	(MUSTDEF_KILL_PTR): Use VUSE_OP_PTR.
	(MUSTDEF_KILL): Use VUSE_OP.
	(MUSTDEF_NUM): Define.
	(MUSTDEF_VECT): Define.
	(realloc_maydef): Declare.
	(realloc_vuse): Declare.
	(struct ssa_operand_iterator_d) <vuse_index>: Add.
	<mayuse_index>: Add.
	(LOADED_SYMS): Define.
	(STORED_SYMS): Define.
	(FOR_EACH_SSA_MUSTDEF_OPERAND): Call op_iter_next_mustdef.
	* tree-into-ssa.c: Adapt for multi-operand V_MAY_DEF and VUSE
	operators.
	* tree-pretty-print.c: Likewise.
	* tree-ssa-dse.c: Likewise.
	* tree-flow-inline.h: Likewise.
	(op_iter_next_mustdef): New.
	* tree-ssa-operands.c: Likewise.
	(ALLOC_OPTYPE): Remove.
	Update all users.
	(alloc_def): New.
	(alloc_use): New.
	(alloc_maydef): New.
	(alloc_vuse): New.
	(alloc_mustdef): New.
	(realloc_maydef): New.
	(realloc_vuse): New.

2006-12-11  Aldy Hernandez  <aldyh@redhat.com>

	* tree-ssa-operands.c: Remove build_v_must_defs.
	(init_ssa_operands): Delete build_v_must_defs.
	(finalize_ssa_v_must_def_ops): Remove.
	(finalize_ssa_v_must_defs): Remove.
	(finalize_ssa_stmt_operands): Do not call
	finalize_ssa_v_must_defs.
	(start_ssa_stmt_operands): Do not check build_v_must_defs.
	(append_v_must_def): Delete.
	(copy_virtual_operands): Do not copy V_MUST_DEFs.
	(get_modify_expr_operands): Remove reference to V_MUST_DEF from
	comment.  Remove opf_kill_def.
	(build_ssa_operands): Remove references to v_must_defs.
	(copy_virtual_operands): Same.
	(copy_virtual_operands): Same.
	(fini_ssa_operands): Same.
	(free_ssa_operands): Same.
	(add_mustdef_op): Remove.
	Remove mustdef_optype_p.
	(alloc_mustdef): Remove.
	Remove references to V_MUST_DEFs in comment at top of file.
	(get_expr_operands): Remove opf_kill_def.
	(opf_kill_def): Remove.
	(add_virtual_operand): Remove opf_kill_def.
	(get_indirect_ref_operands): Same.
	(get_tmr_operands): Same.

	* tree-vectorizer.c (rename_variables_in_bb): Remove
	SSA_OP_ALL_KILLS.

	* tree-ssa-loop-manip.c (find_uses_to_rename_stmt): Remove
	SSA_OP_ALL_KILLS.
	(check_loop_closed_ssa_stmt): Same.

	* tree-ssa.c (verify_def): Remove V_MUST_DEF from comment.
	(verify_use): Same.
	(verify_ssa): Remove V_MUST_DEFs traces.
	(verify_ssa): Remove SSA_OP_ALL_KILLS.

	* tree-into-ssa.c (mark_def_sites): Change SSA_OP_VMUSTDEF to
	SSA_OP_VMAYDEF.
	(rewrite_update_stmt): Remove SSA_OP_VIRTUAL_KILLS.
	(rewrite_stmt): Remove SSA_OP_ALL_KILLS.

	* tree-ssa-operands.h (struct stmt_operands_d): Remove V_MUST_DEF
	references.
	(MUSTDEF_OPS): Remove.
	(SSA_OP_VMUSTDEF): Remove.
	(FOR_EACH_SSA_MUSTDEF_OPERAND): Remove.
	(struct mustdef_optype_d): Remove.
	Remove mustdef_optype_p.
	(struct stmt_operands_d): Remove mustdef_ops.
	(ssa_operand_iterator_d): Remove mustdefs and mustkills.
	(SSA_OP_VIRTUAL_DEFS): Remove SSA_OP_VMUSTDEF.
	(MUSTDEF_RESULT_PTR): Remove.
	(MUSTDEF_RESULT): Remove.
	(MUSTDEF_KILL_PTR): Remove.
	(MUSTDEF_KILL): Remove.
	(MUSTDEF_NUM): Remove.
	(MUSTDEF_VECT): Remove.
	(SSA_OP_VIRTUAL_KILLS): Remove.
	(SSA_OP_ALL_VIRTUALS): Remove SSA_OP_VIRTUAL_KILLS.
	(SSA_OP_VMUSTKILL): Remove.
	(SSA_OP_ALL_KILLS): Remove.
	(SSA_OP_ALL_OPERANDS): Remove SSA_OP_ALL_KILLS.

	* tree-flow-inline.h (op_iter_init_def): Remove
	SSA_OP_VIRTUAL_KILLS.
	(delink_stmt_imm_use): Remove SSA_OP_ALL_KILLS.

	* tree-ssa-pre.c (compute_rvuse_and_antic_safe): Remove
	SSA_OP_VIRTUAL_KILLS.

	* tree-ssa-loop-im.c (determine_max_movement): Remove
	SSA_OP_VIRTUAL_KILLS.
	(gather_mem_refs_stmt): Same.
	(gather_mem_refs_stmt): Same.

	* tree-ssa-dce.c (mark_really_necessary_kill_operand_phis): Delete.
	(perform_tree_ssa_dce): Remove call to
	mark_really_necessary_kill_operand_phis.

	* tree-flow-inline.h (op_iter_init): Remove setting of mustdefs
	and mustkills.
	(op_iter_next_use): Do not check mustkills.
	(op_iter_next_def): Do not check mustdefs.
	(op_iter_next_tree): Do not check mustkills or mustdefs.
	(clear_and_done_ssa_iter): Do not set mustdefs or mustkills.
	(op_iter_next_maymustdef): Do not check mustkills.
	(op_iter_init_must_and_may_def): Remove SSA_OP_VMUSTKILL.
	(op_iter_init_mustdef): Remove.

	* tree-ssa-live.c (create_ssa_var_map): Change SSA_OP_VMUSTDEF to
	SSA_OP_VMAYDEF.

	* tree-ssa-dse.c (dse_optimize_stmt): Remove SSA_OP_VMUSTDEF.

	* tree-ssa-ccp.c: Remove V_MUST_DEF traces from comments.
	(visit_assignment): Same.

	* tree-ssa-copy.c (copy_prop_visit_assignment): Same.

	* tree-sra.c (mark_all_v_defs_1): Remove V_MUST_DEF from comment.

	* tree-outof-ssa.c (check_replaceable): Remove SSA_OP_VMUSTDEF.

	* tree-pretty-print.c (dump_vops): Remove printing of V_MUST_DEF.
	Remove kill_p variable.

	* tree-dfa.c (struct dfa_stats_d): Remove num_v_must_defs.
	(dump_dfa_stats): Remove code related to V_MUST_DEFs.
	(collect_dfa_stats_r): Do not set num_v_must_defs.
	(mark_new_vars_to_rename): Remove v_must_defs_{before,after}
	code.

	* tree-into-ssa.c (mark_def_sites): Change SSA_OP_VMUSTKILL to
	SSA_OP_VMAYUSE.

	* tree-ssa-pre.c (compute_rvuse_and_antic_safe): Remove
	SSA_OP_VMUSTDEF and SSA_OP_VMUSTKILL.

	* tree-ssa-propagate.c (stmt_makes_single_store): Remove
	SSA_OP_VMUSTDEF.

From-SVN: r119760
2006-12-11 20:48:51 -05:00

574 lines
15 KiB
C

/* Code sinking for trees
Copyright (C) 2001, 2002, 2003, 2004 Free Software Foundation, Inc.
Contributed by Daniel Berlin <dan@dberlin.org>
This file is part of GCC.
GCC is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2, or (at your option)
any later version.
GCC is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with GCC; see the file COPYING. If not, write to
the Free Software Foundation, 51 Franklin Street, Fifth Floor,
Boston, MA 02110-1301, USA. */
#include "config.h"
#include "system.h"
#include "coretypes.h"
#include "tm.h"
#include "ggc.h"
#include "tree.h"
#include "basic-block.h"
#include "diagnostic.h"
#include "tree-inline.h"
#include "tree-flow.h"
#include "tree-gimple.h"
#include "tree-dump.h"
#include "timevar.h"
#include "fibheap.h"
#include "hashtab.h"
#include "tree-iterator.h"
#include "real.h"
#include "alloc-pool.h"
#include "tree-pass.h"
#include "flags.h"
#include "bitmap.h"
#include "langhooks.h"
#include "cfgloop.h"
/* TODO:
1. Sinking store only using scalar promotion (IE without moving the RHS):
*q = p;
p = p + 1;
if (something)
*q = <not p>;
else
y = *q;
should become
sinktemp = p;
p = p + 1;
if (something)
*q = <not p>;
else
{
*q = sinktemp;
y = *q
}
Store copy propagation will take care of the store elimination above.
2. Sinking using Partial Dead Code Elimination. */
static struct
{
/* The number of statements sunk down the flowgraph by code sinking. */
int sunk;
} sink_stats;
/* Given a PHI, and one of its arguments (DEF), find the edge for
that argument and return it. If the argument occurs twice in the PHI node,
we return NULL. */
static basic_block
find_bb_for_arg (tree phi, tree def)
{
int i;
bool foundone = false;
basic_block result = NULL;
for (i = 0; i < PHI_NUM_ARGS (phi); i++)
if (PHI_ARG_DEF (phi, i) == def)
{
if (foundone)
return NULL;
foundone = true;
result = PHI_ARG_EDGE (phi, i)->src;
}
return result;
}
/* When the first immediate use is in a statement, then return true if all
immediate uses in IMM are in the same statement.
We could also do the case where the first immediate use is in a phi node,
and all the other uses are in phis in the same basic block, but this
requires some expensive checking later (you have to make sure no def/vdef
in the statement occurs for multiple edges in the various phi nodes it's
used in, so that you only have one place you can sink it to. */
static bool
all_immediate_uses_same_place (tree stmt)
{
tree firstuse = NULL_TREE;
ssa_op_iter op_iter;
imm_use_iterator imm_iter;
use_operand_p use_p;
tree var;
FOR_EACH_SSA_TREE_OPERAND (var, stmt, op_iter, SSA_OP_ALL_DEFS)
{
FOR_EACH_IMM_USE_FAST (use_p, imm_iter, var)
{
if (firstuse == NULL_TREE)
firstuse = USE_STMT (use_p);
else
if (firstuse != USE_STMT (use_p))
return false;
}
}
return true;
}
/* Some global stores don't necessarily have VDEF's of global variables,
but we still must avoid moving them around. */
bool
is_hidden_global_store (tree stmt)
{
/* Check virtual definitions. If we get here, the only virtual
definitions we should see are those generated by assignment
statements. */
if (!ZERO_SSA_OPERANDS (stmt, SSA_OP_VIRTUAL_DEFS))
{
tree lhs;
gcc_assert (TREE_CODE (stmt) == GIMPLE_MODIFY_STMT);
/* Note that we must not check the individual virtual operands
here. In particular, if this is an aliased store, we could
end up with something like the following (SSA notation
redacted for brevity):
foo (int *p, int i)
{
int x;
p_1 = (i_2 > 3) ? &x : p;
# x_4 = VDEF <x_3>
*p_1 = 5;
return 2;
}
Notice that the store to '*p_1' should be preserved, if we
were to check the virtual definitions in that store, we would
not mark it needed. This is because 'x' is not a global
variable.
Therefore, we check the base address of the LHS. If the
address is a pointer, we check if its name tag or symbol tag is
a global variable. Otherwise, we check if the base variable
is a global. */
lhs = GIMPLE_STMT_OPERAND (stmt, 0);
if (REFERENCE_CLASS_P (lhs))
lhs = get_base_address (lhs);
if (lhs == NULL_TREE)
{
/* If LHS is NULL, it means that we couldn't get the base
address of the reference. In which case, we should not
move this store. */
return true;
}
else if (DECL_P (lhs))
{
/* If the store is to a global symbol, we need to keep it. */
if (is_global_var (lhs))
return true;
}
else if (INDIRECT_REF_P (lhs))
{
tree ptr = TREE_OPERAND (lhs, 0);
struct ptr_info_def *pi = SSA_NAME_PTR_INFO (ptr);
tree nmt = (pi) ? pi->name_mem_tag : NULL_TREE;
tree smt = symbol_mem_tag (SSA_NAME_VAR (ptr));
/* If either the name tag or the symbol tag for PTR is a
global variable, then the store is necessary. */
if ((nmt && is_global_var (nmt))
|| (smt && is_global_var (smt)))
{
return true;
}
}
else
gcc_unreachable ();
}
return false;
}
/* Find the nearest common dominator of all of the immediate uses in IMM. */
static basic_block
nearest_common_dominator_of_uses (tree stmt)
{
bitmap blocks = BITMAP_ALLOC (NULL);
basic_block commondom;
unsigned int j;
bitmap_iterator bi;
ssa_op_iter op_iter;
imm_use_iterator imm_iter;
use_operand_p use_p;
tree var;
bitmap_clear (blocks);
FOR_EACH_SSA_TREE_OPERAND (var, stmt, op_iter, SSA_OP_ALL_DEFS)
{
FOR_EACH_IMM_USE_FAST (use_p, imm_iter, var)
{
tree usestmt = USE_STMT (use_p);
basic_block useblock;
if (TREE_CODE (usestmt) == PHI_NODE)
{
int idx = PHI_ARG_INDEX_FROM_USE (use_p);
useblock = PHI_ARG_EDGE (usestmt, idx)->src;
}
else
{
useblock = bb_for_stmt (usestmt);
}
/* Short circuit. Nothing dominates the entry block. */
if (useblock == ENTRY_BLOCK_PTR)
{
BITMAP_FREE (blocks);
return NULL;
}
bitmap_set_bit (blocks, useblock->index);
}
}
commondom = BASIC_BLOCK (bitmap_first_set_bit (blocks));
EXECUTE_IF_SET_IN_BITMAP (blocks, 0, j, bi)
commondom = nearest_common_dominator (CDI_DOMINATORS, commondom,
BASIC_BLOCK (j));
BITMAP_FREE (blocks);
return commondom;
}
/* Given a statement (STMT) and the basic block it is currently in (FROMBB),
determine the location to sink the statement to, if any.
Return the basic block to sink it to, or NULL if we should not sink
it. */
static tree
statement_sink_location (tree stmt, basic_block frombb)
{
tree use, def;
use_operand_p one_use = NULL_USE_OPERAND_P;
basic_block sinkbb;
use_operand_p use_p;
def_operand_p def_p;
ssa_op_iter iter;
stmt_ann_t ann;
tree rhs;
imm_use_iterator imm_iter;
FOR_EACH_SSA_TREE_OPERAND (def, stmt, iter, SSA_OP_ALL_DEFS)
{
FOR_EACH_IMM_USE_FAST (one_use, imm_iter, def)
{
break;
}
if (one_use != NULL_USE_OPERAND_P)
break;
}
/* Return if there are no immediate uses of this stmt. */
if (one_use == NULL_USE_OPERAND_P)
return NULL;
if (TREE_CODE (stmt) != GIMPLE_MODIFY_STMT)
return NULL;
rhs = GIMPLE_STMT_OPERAND (stmt, 1);
/* There are a few classes of things we can't or don't move, some because we
don't have code to handle it, some because it's not profitable and some
because it's not legal.
We can't sink things that may be global stores, at least not without
calculating a lot more information, because we may cause it to no longer
be seen by an external routine that needs it depending on where it gets
moved to.
We don't want to sink loads from memory.
We can't sink statements that end basic blocks without splitting the
incoming edge for the sink location to place it there.
We can't sink statements that have volatile operands.
We don't want to sink dead code, so anything with 0 immediate uses is not
sunk.
*/
ann = stmt_ann (stmt);
if (stmt_ends_bb_p (stmt)
|| TREE_SIDE_EFFECTS (rhs)
|| TREE_CODE (rhs) == EXC_PTR_EXPR
|| TREE_CODE (rhs) == FILTER_EXPR
|| is_hidden_global_store (stmt)
|| ann->has_volatile_ops
|| !ZERO_SSA_OPERANDS (stmt, SSA_OP_VUSE))
return NULL;
FOR_EACH_SSA_DEF_OPERAND (def_p, stmt, iter, SSA_OP_ALL_DEFS)
{
tree def = DEF_FROM_PTR (def_p);
if (is_global_var (SSA_NAME_VAR (def))
|| SSA_NAME_OCCURS_IN_ABNORMAL_PHI (def))
return NULL;
}
FOR_EACH_SSA_USE_OPERAND (use_p, stmt, iter, SSA_OP_ALL_USES)
{
tree use = USE_FROM_PTR (use_p);
if (SSA_NAME_OCCURS_IN_ABNORMAL_PHI (use))
return NULL;
}
/* If all the immediate uses are not in the same place, find the nearest
common dominator of all the immediate uses. For PHI nodes, we have to
find the nearest common dominator of all of the predecessor blocks, since
that is where insertion would have to take place. */
if (!all_immediate_uses_same_place (stmt))
{
basic_block commondom = nearest_common_dominator_of_uses (stmt);
if (commondom == frombb)
return NULL;
/* Our common dominator has to be dominated by frombb in order to be a
trivially safe place to put this statement, since it has multiple
uses. */
if (!dominated_by_p (CDI_DOMINATORS, commondom, frombb))
return NULL;
/* It doesn't make sense to move to a dominator that post-dominates
frombb, because it means we've just moved it into a path that always
executes if frombb executes, instead of reducing the number of
executions . */
if (dominated_by_p (CDI_POST_DOMINATORS, frombb, commondom))
{
if (dump_file && (dump_flags & TDF_DETAILS))
fprintf (dump_file, "Not moving store, common dominator post-dominates from block.\n");
return NULL;
}
if (commondom == frombb || commondom->loop_depth > frombb->loop_depth)
return NULL;
if (dump_file && (dump_flags & TDF_DETAILS))
{
fprintf (dump_file, "Common dominator of all uses is %d\n",
commondom->index);
}
return first_stmt (commondom);
}
use = USE_STMT (one_use);
if (TREE_CODE (use) != PHI_NODE)
{
sinkbb = bb_for_stmt (use);
if (sinkbb == frombb || sinkbb->loop_depth > frombb->loop_depth
|| sinkbb->loop_father != frombb->loop_father)
return NULL;
return use;
}
/* Note that at this point, all uses must be in the same statement, so it
doesn't matter which def op we choose, pick the first one. */
FOR_EACH_SSA_TREE_OPERAND (def, stmt, iter, SSA_OP_ALL_DEFS)
break;
sinkbb = find_bb_for_arg (use, def);
if (!sinkbb)
return NULL;
/* This will happen when you have
a_3 = PHI <a_13, a_26>
a_26 = VDEF <a_3>
If the use is a phi, and is in the same bb as the def,
we can't sink it. */
if (bb_for_stmt (use) == frombb)
return NULL;
if (sinkbb == frombb || sinkbb->loop_depth > frombb->loop_depth
|| sinkbb->loop_father != frombb->loop_father)
return NULL;
return first_stmt (sinkbb);
}
/* Perform code sinking on BB */
static void
sink_code_in_bb (basic_block bb)
{
basic_block son;
block_stmt_iterator bsi;
edge_iterator ei;
edge e;
/* If this block doesn't dominate anything, there can't be any place to sink
the statements to. */
if (first_dom_son (CDI_DOMINATORS, bb) == NULL)
goto earlyout;
/* We can't move things across abnormal edges, so don't try. */
FOR_EACH_EDGE (e, ei, bb->succs)
if (e->flags & EDGE_ABNORMAL)
goto earlyout;
for (bsi = bsi_last (bb); !bsi_end_p (bsi);)
{
tree stmt = bsi_stmt (bsi);
block_stmt_iterator tobsi;
tree sinkstmt;
sinkstmt = statement_sink_location (stmt, bb);
if (!sinkstmt)
{
if (!bsi_end_p (bsi))
bsi_prev (&bsi);
continue;
}
if (dump_file)
{
fprintf (dump_file, "Sinking ");
print_generic_expr (dump_file, stmt, TDF_VOPS);
fprintf (dump_file, " from bb %d to bb %d\n",
bb->index, bb_for_stmt (sinkstmt)->index);
}
tobsi = bsi_for_stmt (sinkstmt);
/* Find the first non-label. */
while (!bsi_end_p (tobsi)
&& TREE_CODE (bsi_stmt (tobsi)) == LABEL_EXPR)
bsi_next (&tobsi);
/* If this is the end of the basic block, we need to insert at the end
of the basic block. */
if (bsi_end_p (tobsi))
bsi_move_to_bb_end (&bsi, bb_for_stmt (sinkstmt));
else
bsi_move_before (&bsi, &tobsi);
sink_stats.sunk++;
if (!bsi_end_p (bsi))
bsi_prev (&bsi);
}
earlyout:
for (son = first_dom_son (CDI_POST_DOMINATORS, bb);
son;
son = next_dom_son (CDI_POST_DOMINATORS, son))
{
sink_code_in_bb (son);
}
}
/* Perform code sinking.
This moves code down the flowgraph when we know it would be
profitable to do so, or it wouldn't increase the number of
executions of the statement.
IE given
a_1 = b + c;
if (<something>)
{
}
else
{
foo (&b, &c);
a_5 = b + c;
}
a_6 = PHI (a_5, a_1);
USE a_6.
we'll transform this into:
if (<something>)
{
a_1 = b + c;
}
else
{
foo (&b, &c);
a_5 = b + c;
}
a_6 = PHI (a_5, a_1);
USE a_6.
Note that this reduces the number of computations of a = b + c to 1
when we take the else edge, instead of 2.
*/
static void
execute_sink_code (void)
{
loop_optimizer_init (LOOPS_NORMAL);
connect_infinite_loops_to_exit ();
memset (&sink_stats, 0, sizeof (sink_stats));
calculate_dominance_info (CDI_DOMINATORS | CDI_POST_DOMINATORS);
sink_code_in_bb (EXIT_BLOCK_PTR);
if (dump_file && (dump_flags & TDF_STATS))
fprintf (dump_file, "Sunk statements:%d\n", sink_stats.sunk);
free_dominance_info (CDI_POST_DOMINATORS);
remove_fake_exit_edges ();
loop_optimizer_finalize ();
}
/* Gate and execute functions for PRE. */
static unsigned int
do_sink (void)
{
execute_sink_code ();
return 0;
}
static bool
gate_sink (void)
{
return flag_tree_sink != 0;
}
struct tree_opt_pass pass_sink_code =
{
"sink", /* name */
gate_sink, /* gate */
do_sink, /* execute */
NULL, /* sub */
NULL, /* next */
0, /* static_pass_number */
TV_TREE_SINK, /* tv_id */
PROP_no_crit_edges | PROP_cfg
| PROP_ssa | PROP_alias, /* properties_required */
0, /* properties_provided */
0, /* properties_destroyed */
0, /* todo_flags_start */
TODO_update_ssa
| TODO_dump_func
| TODO_ggc_collect
| TODO_verify_ssa, /* todo_flags_finish */
0 /* letter */
};