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599 lines
17 KiB
C
599 lines
17 KiB
C
/* Routines for discovering and unpropagating edge equivalences.
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Copyright (C) 2005-2015 Free Software Foundation, Inc.
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This file is part of GCC.
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GCC is free software; you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation; either version 3, or (at your option)
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any later version.
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GCC is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with GCC; see the file COPYING3. If not see
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<http://www.gnu.org/licenses/>. */
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#include "config.h"
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#include "system.h"
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#include "coretypes.h"
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#include "tm.h"
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#include "hash-set.h"
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#include "machmode.h"
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#include "vec.h"
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#include "double-int.h"
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#include "input.h"
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#include "alias.h"
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#include "symtab.h"
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#include "wide-int.h"
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#include "inchash.h"
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#include "real.h"
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#include "tree.h"
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#include "fold-const.h"
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#include "stor-layout.h"
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#include "flags.h"
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#include "tm_p.h"
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#include "predict.h"
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#include "hard-reg-set.h"
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#include "input.h"
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#include "function.h"
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#include "dominance.h"
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#include "cfg.h"
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#include "cfganal.h"
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#include "basic-block.h"
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#include "hash-table.h"
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#include "hash-map.h"
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#include "tree-ssa-alias.h"
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#include "internal-fn.h"
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#include "gimple-expr.h"
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#include "is-a.h"
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#include "gimple.h"
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#include "gimple-iterator.h"
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#include "gimple-ssa.h"
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#include "tree-cfg.h"
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#include "tree-phinodes.h"
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#include "ssa-iterators.h"
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#include "domwalk.h"
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#include "tree-pass.h"
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#include "tree-ssa-propagate.h"
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/* The basic structure describing an equivalency created by traversing
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an edge. Traversing the edge effectively means that we can assume
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that we've seen an assignment LHS = RHS. */
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struct edge_equivalency
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{
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tree rhs;
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tree lhs;
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};
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/* This routine finds and records edge equivalences for every edge
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in the CFG.
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When complete, each edge that creates an equivalency will have an
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EDGE_EQUIVALENCY structure hanging off the edge's AUX field.
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The caller is responsible for freeing the AUX fields. */
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static void
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associate_equivalences_with_edges (void)
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{
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basic_block bb;
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/* Walk over each block. If the block ends with a control statement,
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then it might create a useful equivalence. */
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FOR_EACH_BB_FN (bb, cfun)
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{
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gimple_stmt_iterator gsi = gsi_last_bb (bb);
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gimple stmt;
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/* If the block does not end with a COND_EXPR or SWITCH_EXPR
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then there is nothing to do. */
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if (gsi_end_p (gsi))
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continue;
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stmt = gsi_stmt (gsi);
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if (!stmt)
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continue;
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/* A COND_EXPR may create an equivalency in a variety of different
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ways. */
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if (gimple_code (stmt) == GIMPLE_COND)
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{
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edge true_edge;
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edge false_edge;
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struct edge_equivalency *equivalency;
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enum tree_code code = gimple_cond_code (stmt);
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extract_true_false_edges_from_block (bb, &true_edge, &false_edge);
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/* Equality tests may create one or two equivalences. */
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if (code == EQ_EXPR || code == NE_EXPR)
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{
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tree op0 = gimple_cond_lhs (stmt);
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tree op1 = gimple_cond_rhs (stmt);
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/* Special case comparing booleans against a constant as we
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know the value of OP0 on both arms of the branch. i.e., we
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can record an equivalence for OP0 rather than COND. */
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if (TREE_CODE (op0) == SSA_NAME
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&& !SSA_NAME_OCCURS_IN_ABNORMAL_PHI (op0)
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&& TREE_CODE (TREE_TYPE (op0)) == BOOLEAN_TYPE
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&& is_gimple_min_invariant (op1))
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{
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if (code == EQ_EXPR)
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{
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equivalency = XNEW (struct edge_equivalency);
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equivalency->lhs = op0;
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equivalency->rhs = (integer_zerop (op1)
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? boolean_false_node
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: boolean_true_node);
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true_edge->aux = equivalency;
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equivalency = XNEW (struct edge_equivalency);
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equivalency->lhs = op0;
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equivalency->rhs = (integer_zerop (op1)
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? boolean_true_node
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: boolean_false_node);
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false_edge->aux = equivalency;
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}
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else
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{
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equivalency = XNEW (struct edge_equivalency);
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equivalency->lhs = op0;
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equivalency->rhs = (integer_zerop (op1)
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? boolean_true_node
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: boolean_false_node);
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true_edge->aux = equivalency;
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equivalency = XNEW (struct edge_equivalency);
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equivalency->lhs = op0;
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equivalency->rhs = (integer_zerop (op1)
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? boolean_false_node
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: boolean_true_node);
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false_edge->aux = equivalency;
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}
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}
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else if (TREE_CODE (op0) == SSA_NAME
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&& !SSA_NAME_OCCURS_IN_ABNORMAL_PHI (op0)
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&& (is_gimple_min_invariant (op1)
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|| (TREE_CODE (op1) == SSA_NAME
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&& !SSA_NAME_OCCURS_IN_ABNORMAL_PHI (op1))))
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{
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/* For IEEE, -0.0 == 0.0, so we don't necessarily know
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the sign of a variable compared against zero. If
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we're honoring signed zeros, then we cannot record
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this value unless we know that the value is nonzero. */
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if (HONOR_SIGNED_ZEROS (op0)
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&& (TREE_CODE (op1) != REAL_CST
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|| REAL_VALUES_EQUAL (dconst0, TREE_REAL_CST (op1))))
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continue;
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equivalency = XNEW (struct edge_equivalency);
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equivalency->lhs = op0;
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equivalency->rhs = op1;
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if (code == EQ_EXPR)
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true_edge->aux = equivalency;
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else
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false_edge->aux = equivalency;
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}
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}
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/* ??? TRUTH_NOT_EXPR can create an equivalence too. */
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}
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/* For a SWITCH_EXPR, a case label which represents a single
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value and which is the only case label which reaches the
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target block creates an equivalence. */
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else if (gimple_code (stmt) == GIMPLE_SWITCH)
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{
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gswitch *switch_stmt = as_a <gswitch *> (stmt);
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tree cond = gimple_switch_index (switch_stmt);
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if (TREE_CODE (cond) == SSA_NAME
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&& !SSA_NAME_OCCURS_IN_ABNORMAL_PHI (cond))
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{
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int i, n_labels = gimple_switch_num_labels (switch_stmt);
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tree *info = XCNEWVEC (tree, last_basic_block_for_fn (cfun));
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/* Walk over the case label vector. Record blocks
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which are reached by a single case label which represents
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a single value. */
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for (i = 0; i < n_labels; i++)
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{
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tree label = gimple_switch_label (switch_stmt, i);
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basic_block bb = label_to_block (CASE_LABEL (label));
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if (CASE_HIGH (label)
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|| !CASE_LOW (label)
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|| info[bb->index])
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info[bb->index] = error_mark_node;
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else
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info[bb->index] = label;
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}
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/* Now walk over the blocks to determine which ones were
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marked as being reached by a useful case label. */
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for (i = 0; i < n_basic_blocks_for_fn (cfun); i++)
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{
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tree node = info[i];
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if (node != NULL
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&& node != error_mark_node)
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{
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tree x = fold_convert (TREE_TYPE (cond), CASE_LOW (node));
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struct edge_equivalency *equivalency;
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/* Record an equivalency on the edge from BB to basic
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block I. */
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equivalency = XNEW (struct edge_equivalency);
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equivalency->rhs = x;
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equivalency->lhs = cond;
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find_edge (bb, BASIC_BLOCK_FOR_FN (cfun, i))->aux =
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equivalency;
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}
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}
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free (info);
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}
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}
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}
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}
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/* Translating out of SSA sometimes requires inserting copies and
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constant initializations on edges to eliminate PHI nodes.
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In some cases those copies and constant initializations are
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redundant because the target already has the value on the
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RHS of the assignment.
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We previously tried to catch these cases after translating
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out of SSA form. However, that code often missed cases. Worse
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yet, the cases it missed were also often missed by the RTL
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optimizers. Thus the resulting code had redundant instructions.
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This pass attempts to detect these situations before translating
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out of SSA form.
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The key concept that this pass is built upon is that these
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redundant copies and constant initializations often occur
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due to constant/copy propagating equivalences resulting from
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COND_EXPRs and SWITCH_EXPRs.
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We want to do those propagations as they can sometimes allow
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the SSA optimizers to do a better job. However, in the cases
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where such propagations do not result in further optimization,
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we would like to "undo" the propagation to avoid the redundant
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copies and constant initializations.
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This pass works by first associating equivalences with edges in
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the CFG. For example, the edge leading from a SWITCH_EXPR to
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its associated CASE_LABEL will have an equivalency between
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SWITCH_COND and the value in the case label.
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Once we have found the edge equivalences, we proceed to walk
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the CFG in dominator order. As we traverse edges we record
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equivalences associated with those edges we traverse.
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When we encounter a PHI node, we walk its arguments to see if we
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have an equivalence for the PHI argument. If so, then we replace
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the argument.
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Equivalences are looked up based on their value (think of it as
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the RHS of an assignment). A value may be an SSA_NAME or an
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invariant. We may have several SSA_NAMEs with the same value,
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so with each value we have a list of SSA_NAMEs that have the
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same value. */
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/* Main structure for recording equivalences into our hash table. */
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struct equiv_hash_elt
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{
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/* The value/key of this entry. */
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tree value;
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/* List of SSA_NAMEs which have the same value/key. */
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vec<tree> equivalences;
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};
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/* Value to ssa name equivalence hashtable helpers. */
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struct val_ssa_equiv_hash_traits : default_hashmap_traits
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{
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static inline hashval_t hash (tree);
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static inline bool equal_keys (tree, tree);
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template<typename T> static inline void remove (T &);
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};
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inline hashval_t
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val_ssa_equiv_hash_traits::hash (tree value)
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{
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return iterative_hash_expr (value, 0);
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}
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inline bool
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val_ssa_equiv_hash_traits::equal_keys (tree value1, tree value2)
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{
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return operand_equal_p (value1, value2, 0);
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}
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/* Free an instance of equiv_hash_elt. */
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template<typename T>
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inline void
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val_ssa_equiv_hash_traits::remove (T &elt)
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{
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elt.m_value.release ();
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}
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/* Global hash table implementing a mapping from invariant values
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to a list of SSA_NAMEs which have the same value. We might be
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able to reuse tree-vn for this code. */
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static hash_map<tree, vec<tree>, val_ssa_equiv_hash_traits> *val_ssa_equiv;
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static void uncprop_into_successor_phis (basic_block);
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/* Remove the most recently recorded equivalency for VALUE. */
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static void
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remove_equivalence (tree value)
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{
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val_ssa_equiv->get (value)->pop ();
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}
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/* Record EQUIVALENCE = VALUE into our hash table. */
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static void
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record_equiv (tree value, tree equivalence)
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{
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val_ssa_equiv->get_or_insert (value).safe_push (equivalence);
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}
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class uncprop_dom_walker : public dom_walker
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{
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public:
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uncprop_dom_walker (cdi_direction direction) : dom_walker (direction) {}
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virtual void before_dom_children (basic_block);
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virtual void after_dom_children (basic_block);
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private:
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/* As we enter each block we record the value for any edge equivalency
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leading to this block. If no such edge equivalency exists, then we
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record NULL. These equivalences are live until we leave the dominator
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subtree rooted at the block where we record the equivalency. */
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auto_vec<tree, 2> m_equiv_stack;
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};
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/* We have finished processing the dominator children of BB, perform
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any finalization actions in preparation for leaving this node in
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the dominator tree. */
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void
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uncprop_dom_walker::after_dom_children (basic_block bb ATTRIBUTE_UNUSED)
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{
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/* Pop the topmost value off the equiv stack. */
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tree value = m_equiv_stack.pop ();
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/* If that value was non-null, then pop the topmost equivalency off
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its equivalency stack. */
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if (value != NULL)
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remove_equivalence (value);
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}
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/* Unpropagate values from PHI nodes in successor blocks of BB. */
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static void
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uncprop_into_successor_phis (basic_block bb)
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{
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edge e;
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edge_iterator ei;
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/* For each successor edge, first temporarily record any equivalence
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on that edge. Then unpropagate values in any PHI nodes at the
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destination of the edge. Then remove the temporary equivalence. */
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FOR_EACH_EDGE (e, ei, bb->succs)
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{
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gimple_seq phis = phi_nodes (e->dest);
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gimple_stmt_iterator gsi;
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/* If there are no PHI nodes in this destination, then there is
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no sense in recording any equivalences. */
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if (gimple_seq_empty_p (phis))
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continue;
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/* Record any equivalency associated with E. */
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if (e->aux)
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{
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struct edge_equivalency *equiv = (struct edge_equivalency *) e->aux;
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record_equiv (equiv->rhs, equiv->lhs);
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}
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/* Walk over the PHI nodes, unpropagating values. */
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for (gsi = gsi_start (phis) ; !gsi_end_p (gsi); gsi_next (&gsi))
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{
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gimple phi = gsi_stmt (gsi);
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tree arg = PHI_ARG_DEF (phi, e->dest_idx);
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tree res = PHI_RESULT (phi);
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/* If the argument is not an invariant and can be potentially
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coalesced with the result, then there's no point in
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un-propagating the argument. */
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if (!is_gimple_min_invariant (arg)
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&& gimple_can_coalesce_p (arg, res))
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continue;
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/* Lookup this argument's value in the hash table. */
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vec<tree> *equivalences = val_ssa_equiv->get (arg);
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if (equivalences)
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{
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/* Walk every equivalence with the same value. If we find
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one that can potentially coalesce with the PHI rsult,
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then replace the value in the argument with its equivalent
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SSA_NAME. Use the most recent equivalence as hopefully
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that results in shortest lifetimes. */
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for (int j = equivalences->length () - 1; j >= 0; j--)
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{
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tree equiv = (*equivalences)[j];
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if (gimple_can_coalesce_p (equiv, res))
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{
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SET_PHI_ARG_DEF (phi, e->dest_idx, equiv);
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break;
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}
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}
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}
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}
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/* If we had an equivalence associated with this edge, remove it. */
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if (e->aux)
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{
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struct edge_equivalency *equiv = (struct edge_equivalency *) e->aux;
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remove_equivalence (equiv->rhs);
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}
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}
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}
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/* Ignoring loop backedges, if BB has precisely one incoming edge then
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return that edge. Otherwise return NULL. */
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static edge
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single_incoming_edge_ignoring_loop_edges (basic_block bb)
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{
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edge retval = NULL;
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edge e;
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edge_iterator ei;
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FOR_EACH_EDGE (e, ei, bb->preds)
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{
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/* A loop back edge can be identified by the destination of
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the edge dominating the source of the edge. */
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if (dominated_by_p (CDI_DOMINATORS, e->src, e->dest))
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continue;
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/* If we have already seen a non-loop edge, then we must have
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multiple incoming non-loop edges and thus we return NULL. */
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if (retval)
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return NULL;
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/* This is the first non-loop incoming edge we have found. Record
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it. */
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retval = e;
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}
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return retval;
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}
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void
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uncprop_dom_walker::before_dom_children (basic_block bb)
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{
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basic_block parent;
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edge e;
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bool recorded = false;
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/* If this block is dominated by a single incoming edge and that edge
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has an equivalency, then record the equivalency and push the
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VALUE onto EQUIV_STACK. Else push a NULL entry on EQUIV_STACK. */
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parent = get_immediate_dominator (CDI_DOMINATORS, bb);
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if (parent)
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{
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e = single_incoming_edge_ignoring_loop_edges (bb);
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if (e && e->src == parent && e->aux)
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{
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struct edge_equivalency *equiv = (struct edge_equivalency *) e->aux;
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record_equiv (equiv->rhs, equiv->lhs);
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m_equiv_stack.safe_push (equiv->rhs);
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recorded = true;
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}
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}
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if (!recorded)
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m_equiv_stack.safe_push (NULL_TREE);
|
|
|
|
uncprop_into_successor_phis (bb);
|
|
}
|
|
|
|
namespace {
|
|
|
|
const pass_data pass_data_uncprop =
|
|
{
|
|
GIMPLE_PASS, /* type */
|
|
"uncprop", /* name */
|
|
OPTGROUP_NONE, /* optinfo_flags */
|
|
TV_TREE_SSA_UNCPROP, /* tv_id */
|
|
( PROP_cfg | PROP_ssa ), /* properties_required */
|
|
0, /* properties_provided */
|
|
0, /* properties_destroyed */
|
|
0, /* todo_flags_start */
|
|
0, /* todo_flags_finish */
|
|
};
|
|
|
|
class pass_uncprop : public gimple_opt_pass
|
|
{
|
|
public:
|
|
pass_uncprop (gcc::context *ctxt)
|
|
: gimple_opt_pass (pass_data_uncprop, ctxt)
|
|
{}
|
|
|
|
/* opt_pass methods: */
|
|
opt_pass * clone () { return new pass_uncprop (m_ctxt); }
|
|
virtual bool gate (function *) { return flag_tree_dom != 0; }
|
|
virtual unsigned int execute (function *);
|
|
|
|
}; // class pass_uncprop
|
|
|
|
unsigned int
|
|
pass_uncprop::execute (function *fun)
|
|
{
|
|
basic_block bb;
|
|
|
|
associate_equivalences_with_edges ();
|
|
|
|
/* Create our global data structures. */
|
|
val_ssa_equiv
|
|
= new hash_map<tree, vec<tree>, val_ssa_equiv_hash_traits> (1024);
|
|
|
|
/* We're going to do a dominator walk, so ensure that we have
|
|
dominance information. */
|
|
calculate_dominance_info (CDI_DOMINATORS);
|
|
|
|
/* Recursively walk the dominator tree undoing unprofitable
|
|
constant/copy propagations. */
|
|
uncprop_dom_walker (CDI_DOMINATORS).walk (fun->cfg->x_entry_block_ptr);
|
|
|
|
/* we just need to empty elements out of the hash table, and cleanup the
|
|
AUX field on the edges. */
|
|
delete val_ssa_equiv;
|
|
val_ssa_equiv = NULL;
|
|
FOR_EACH_BB_FN (bb, fun)
|
|
{
|
|
edge e;
|
|
edge_iterator ei;
|
|
|
|
FOR_EACH_EDGE (e, ei, bb->succs)
|
|
{
|
|
if (e->aux)
|
|
{
|
|
free (e->aux);
|
|
e->aux = NULL;
|
|
}
|
|
}
|
|
}
|
|
return 0;
|
|
}
|
|
|
|
} // anon namespace
|
|
|
|
gimple_opt_pass *
|
|
make_pass_uncprop (gcc::context *ctxt)
|
|
{
|
|
return new pass_uncprop (ctxt);
|
|
}
|