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684 |
jeremybenn |
/* Tail call optimization on trees.
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Copyright (C) 2003, 2004, 2005, 2006, 2007, 2008, 2009, 2010, 2011, 2012
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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 "tree.h"
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#include "tm_p.h"
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#include "basic-block.h"
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#include "function.h"
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#include "tree-flow.h"
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#include "tree-dump.h"
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#include "gimple-pretty-print.h"
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#include "except.h"
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#include "tree-pass.h"
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#include "flags.h"
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#include "langhooks.h"
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#include "dbgcnt.h"
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#include "target.h"
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#include "common/common-target.h"
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/* The file implements the tail recursion elimination. It is also used to
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analyze the tail calls in general, passing the results to the rtl level
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where they are used for sibcall optimization.
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In addition to the standard tail recursion elimination, we handle the most
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trivial cases of making the call tail recursive by creating accumulators.
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For example the following function
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int sum (int n)
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{
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if (n > 0)
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return n + sum (n - 1);
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else
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return 0;
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}
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is transformed into
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int sum (int n)
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{
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int acc = 0;
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while (n > 0)
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acc += n--;
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return acc;
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}
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To do this, we maintain two accumulators (a_acc and m_acc) that indicate
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when we reach the return x statement, we should return a_acc + x * m_acc
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instead. They are initially initialized to 0 and 1, respectively,
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so the semantics of the function is obviously preserved. If we are
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guaranteed that the value of the accumulator never change, we
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omit the accumulator.
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There are three cases how the function may exit. The first one is
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handled in adjust_return_value, the other two in adjust_accumulator_values
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(the second case is actually a special case of the third one and we
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present it separately just for clarity):
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1) Just return x, where x is not in any of the remaining special shapes.
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We rewrite this to a gimple equivalent of return m_acc * x + a_acc.
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2) return f (...), where f is the current function, is rewritten in a
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classical tail-recursion elimination way, into assignment of arguments
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and jump to the start of the function. Values of the accumulators
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are unchanged.
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3) return a + m * f(...), where a and m do not depend on call to f.
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To preserve the semantics described before we want this to be rewritten
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in such a way that we finally return
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a_acc + (a + m * f(...)) * m_acc = (a_acc + a * m_acc) + (m * m_acc) * f(...).
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I.e. we increase a_acc by a * m_acc, multiply m_acc by m and
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eliminate the tail call to f. Special cases when the value is just
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added or just multiplied are obtained by setting a = 0 or m = 1.
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TODO -- it is possible to do similar tricks for other operations. */
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/* A structure that describes the tailcall. */
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struct tailcall
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{
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/* The iterator pointing to the call statement. */
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gimple_stmt_iterator call_gsi;
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/* True if it is a call to the current function. */
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bool tail_recursion;
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/* The return value of the caller is mult * f + add, where f is the return
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value of the call. */
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tree mult, add;
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/* Next tailcall in the chain. */
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struct tailcall *next;
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};
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/* The variables holding the value of multiplicative and additive
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accumulator. */
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static tree m_acc, a_acc;
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static bool suitable_for_tail_opt_p (void);
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static bool optimize_tail_call (struct tailcall *, bool);
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static void eliminate_tail_call (struct tailcall *);
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static void find_tail_calls (basic_block, struct tailcall **);
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/* Returns false when the function is not suitable for tail call optimization
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from some reason (e.g. if it takes variable number of arguments). */
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static bool
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suitable_for_tail_opt_p (void)
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{
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if (cfun->stdarg)
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return false;
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return true;
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}
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/* Returns false when the function is not suitable for tail call optimization
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from some reason (e.g. if it takes variable number of arguments).
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This test must pass in addition to suitable_for_tail_opt_p in order to make
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tail call discovery happen. */
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static bool
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suitable_for_tail_call_opt_p (void)
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{
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tree param;
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/* alloca (until we have stack slot life analysis) inhibits
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sibling call optimizations, but not tail recursion. */
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if (cfun->calls_alloca)
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return false;
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/* If we are using sjlj exceptions, we may need to add a call to
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_Unwind_SjLj_Unregister at exit of the function. Which means
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that we cannot do any sibcall transformations. */
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if (targetm_common.except_unwind_info (&global_options) == UI_SJLJ
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&& current_function_has_exception_handlers ())
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return false;
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/* Any function that calls setjmp might have longjmp called from
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any called function. ??? We really should represent this
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properly in the CFG so that this needn't be special cased. */
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if (cfun->calls_setjmp)
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return false;
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/* ??? It is OK if the argument of a function is taken in some cases,
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but not in all cases. See PR15387 and PR19616. Revisit for 4.1. */
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for (param = DECL_ARGUMENTS (current_function_decl);
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param;
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param = DECL_CHAIN (param))
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if (TREE_ADDRESSABLE (param))
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return false;
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return true;
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}
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/* Checks whether the expression EXPR in stmt AT is independent of the
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statement pointed to by GSI (in a sense that we already know EXPR's value
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at GSI). We use the fact that we are only called from the chain of
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basic blocks that have only single successor. Returns the expression
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containing the value of EXPR at GSI. */
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static tree
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independent_of_stmt_p (tree expr, gimple at, gimple_stmt_iterator gsi)
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{
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basic_block bb, call_bb, at_bb;
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edge e;
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edge_iterator ei;
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if (is_gimple_min_invariant (expr))
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return expr;
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if (TREE_CODE (expr) != SSA_NAME)
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return NULL_TREE;
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/* Mark the blocks in the chain leading to the end. */
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at_bb = gimple_bb (at);
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call_bb = gimple_bb (gsi_stmt (gsi));
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for (bb = call_bb; bb != at_bb; bb = single_succ (bb))
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bb->aux = &bb->aux;
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bb->aux = &bb->aux;
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while (1)
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{
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at = SSA_NAME_DEF_STMT (expr);
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bb = gimple_bb (at);
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/* The default definition or defined before the chain. */
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if (!bb || !bb->aux)
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break;
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if (bb == call_bb)
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{
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for (; !gsi_end_p (gsi); gsi_next (&gsi))
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if (gsi_stmt (gsi) == at)
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break;
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if (!gsi_end_p (gsi))
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expr = NULL_TREE;
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break;
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}
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if (gimple_code (at) != GIMPLE_PHI)
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{
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expr = NULL_TREE;
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break;
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}
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FOR_EACH_EDGE (e, ei, bb->preds)
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if (e->src->aux)
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break;
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gcc_assert (e);
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expr = PHI_ARG_DEF_FROM_EDGE (at, e);
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if (TREE_CODE (expr) != SSA_NAME)
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{
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/* The value is a constant. */
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break;
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}
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}
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/* Unmark the blocks. */
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for (bb = call_bb; bb != at_bb; bb = single_succ (bb))
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bb->aux = NULL;
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bb->aux = NULL;
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return expr;
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}
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| 250 |
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/* Simulates the effect of an assignment STMT on the return value of the tail
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recursive CALL passed in ASS_VAR. M and A are the multiplicative and the
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additive factor for the real return value. */
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static bool
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process_assignment (gimple stmt, gimple_stmt_iterator call, tree *m,
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tree *a, tree *ass_var)
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{
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tree op0, op1 = NULL_TREE, non_ass_var = NULL_TREE;
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tree dest = gimple_assign_lhs (stmt);
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enum tree_code code = gimple_assign_rhs_code (stmt);
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enum gimple_rhs_class rhs_class = get_gimple_rhs_class (code);
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tree src_var = gimple_assign_rhs1 (stmt);
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| 263 |
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/* See if this is a simple copy operation of an SSA name to the function
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| 265 |
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result. In that case we may have a simple tail call. Ignore type
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| 266 |
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conversions that can never produce extra code between the function
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| 267 |
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call and the function return. */
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| 268 |
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if ((rhs_class == GIMPLE_SINGLE_RHS || gimple_assign_cast_p (stmt))
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| 269 |
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&& (TREE_CODE (src_var) == SSA_NAME))
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| 270 |
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{
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| 271 |
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/* Reject a tailcall if the type conversion might need
|
| 272 |
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additional code. */
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| 273 |
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if (gimple_assign_cast_p (stmt)
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| 274 |
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&& TYPE_MODE (TREE_TYPE (dest)) != TYPE_MODE (TREE_TYPE (src_var)))
|
| 275 |
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return false;
|
| 276 |
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|
| 277 |
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if (src_var != *ass_var)
|
| 278 |
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return false;
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| 279 |
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|
| 280 |
|
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*ass_var = dest;
|
| 281 |
|
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return true;
|
| 282 |
|
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}
|
| 283 |
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|
| 284 |
|
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switch (rhs_class)
|
| 285 |
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{
|
| 286 |
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case GIMPLE_BINARY_RHS:
|
| 287 |
|
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op1 = gimple_assign_rhs2 (stmt);
|
| 288 |
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|
| 289 |
|
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/* Fall through. */
|
| 290 |
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|
| 291 |
|
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case GIMPLE_UNARY_RHS:
|
| 292 |
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op0 = gimple_assign_rhs1 (stmt);
|
| 293 |
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break;
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| 294 |
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| 295 |
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default:
|
| 296 |
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return false;
|
| 297 |
|
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}
|
| 298 |
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|
| 299 |
|
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/* Accumulator optimizations will reverse the order of operations.
|
| 300 |
|
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We can only do that for floating-point types if we're assuming
|
| 301 |
|
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that addition and multiplication are associative. */
|
| 302 |
|
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if (!flag_associative_math)
|
| 303 |
|
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if (FLOAT_TYPE_P (TREE_TYPE (DECL_RESULT (current_function_decl))))
|
| 304 |
|
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return false;
|
| 305 |
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|
| 306 |
|
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if (rhs_class == GIMPLE_UNARY_RHS)
|
| 307 |
|
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;
|
| 308 |
|
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else if (op0 == *ass_var
|
| 309 |
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&& (non_ass_var = independent_of_stmt_p (op1, stmt, call)))
|
| 310 |
|
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;
|
| 311 |
|
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else if (op1 == *ass_var
|
| 312 |
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&& (non_ass_var = independent_of_stmt_p (op0, stmt, call)))
|
| 313 |
|
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;
|
| 314 |
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else
|
| 315 |
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return false;
|
| 316 |
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|
| 317 |
|
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switch (code)
|
| 318 |
|
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{
|
| 319 |
|
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case PLUS_EXPR:
|
| 320 |
|
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*a = non_ass_var;
|
| 321 |
|
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*ass_var = dest;
|
| 322 |
|
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return true;
|
| 323 |
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|
| 324 |
|
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case MULT_EXPR:
|
| 325 |
|
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*m = non_ass_var;
|
| 326 |
|
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*ass_var = dest;
|
| 327 |
|
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return true;
|
| 328 |
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|
| 329 |
|
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case NEGATE_EXPR:
|
| 330 |
|
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if (FLOAT_TYPE_P (TREE_TYPE (op0)))
|
| 331 |
|
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*m = build_real (TREE_TYPE (op0), dconstm1);
|
| 332 |
|
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else
|
| 333 |
|
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*m = build_int_cst (TREE_TYPE (op0), -1);
|
| 334 |
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|
| 335 |
|
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*ass_var = dest;
|
| 336 |
|
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return true;
|
| 337 |
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|
| 338 |
|
|
case MINUS_EXPR:
|
| 339 |
|
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if (*ass_var == op0)
|
| 340 |
|
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*a = fold_build1 (NEGATE_EXPR, TREE_TYPE (non_ass_var), non_ass_var);
|
| 341 |
|
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else
|
| 342 |
|
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{
|
| 343 |
|
|
if (FLOAT_TYPE_P (TREE_TYPE (non_ass_var)))
|
| 344 |
|
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*m = build_real (TREE_TYPE (non_ass_var), dconstm1);
|
| 345 |
|
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else
|
| 346 |
|
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*m = build_int_cst (TREE_TYPE (non_ass_var), -1);
|
| 347 |
|
|
|
| 348 |
|
|
*a = fold_build1 (NEGATE_EXPR, TREE_TYPE (non_ass_var), non_ass_var);
|
| 349 |
|
|
}
|
| 350 |
|
|
|
| 351 |
|
|
*ass_var = dest;
|
| 352 |
|
|
return true;
|
| 353 |
|
|
|
| 354 |
|
|
/* TODO -- Handle POINTER_PLUS_EXPR. */
|
| 355 |
|
|
|
| 356 |
|
|
default:
|
| 357 |
|
|
return false;
|
| 358 |
|
|
}
|
| 359 |
|
|
}
|
| 360 |
|
|
|
| 361 |
|
|
/* Propagate VAR through phis on edge E. */
|
| 362 |
|
|
|
| 363 |
|
|
static tree
|
| 364 |
|
|
propagate_through_phis (tree var, edge e)
|
| 365 |
|
|
{
|
| 366 |
|
|
basic_block dest = e->dest;
|
| 367 |
|
|
gimple_stmt_iterator gsi;
|
| 368 |
|
|
|
| 369 |
|
|
for (gsi = gsi_start_phis (dest); !gsi_end_p (gsi); gsi_next (&gsi))
|
| 370 |
|
|
{
|
| 371 |
|
|
gimple phi = gsi_stmt (gsi);
|
| 372 |
|
|
if (PHI_ARG_DEF_FROM_EDGE (phi, e) == var)
|
| 373 |
|
|
return PHI_RESULT (phi);
|
| 374 |
|
|
}
|
| 375 |
|
|
return var;
|
| 376 |
|
|
}
|
| 377 |
|
|
|
| 378 |
|
|
/* Finds tailcalls falling into basic block BB. The list of found tailcalls is
|
| 379 |
|
|
added to the start of RET. */
|
| 380 |
|
|
|
| 381 |
|
|
static void
|
| 382 |
|
|
find_tail_calls (basic_block bb, struct tailcall **ret)
|
| 383 |
|
|
{
|
| 384 |
|
|
tree ass_var = NULL_TREE, ret_var, func, param;
|
| 385 |
|
|
gimple stmt, call = NULL;
|
| 386 |
|
|
gimple_stmt_iterator gsi, agsi;
|
| 387 |
|
|
bool tail_recursion;
|
| 388 |
|
|
struct tailcall *nw;
|
| 389 |
|
|
edge e;
|
| 390 |
|
|
tree m, a;
|
| 391 |
|
|
basic_block abb;
|
| 392 |
|
|
size_t idx;
|
| 393 |
|
|
tree var;
|
| 394 |
|
|
referenced_var_iterator rvi;
|
| 395 |
|
|
|
| 396 |
|
|
if (!single_succ_p (bb))
|
| 397 |
|
|
return;
|
| 398 |
|
|
|
| 399 |
|
|
for (gsi = gsi_last_bb (bb); !gsi_end_p (gsi); gsi_prev (&gsi))
|
| 400 |
|
|
{
|
| 401 |
|
|
stmt = gsi_stmt (gsi);
|
| 402 |
|
|
|
| 403 |
|
|
/* Ignore labels, returns, clobbers and debug stmts. */
|
| 404 |
|
|
if (gimple_code (stmt) == GIMPLE_LABEL
|
| 405 |
|
|
|| gimple_code (stmt) == GIMPLE_RETURN
|
| 406 |
|
|
|| gimple_clobber_p (stmt)
|
| 407 |
|
|
|| is_gimple_debug (stmt))
|
| 408 |
|
|
continue;
|
| 409 |
|
|
|
| 410 |
|
|
/* Check for a call. */
|
| 411 |
|
|
if (is_gimple_call (stmt))
|
| 412 |
|
|
{
|
| 413 |
|
|
call = stmt;
|
| 414 |
|
|
ass_var = gimple_call_lhs (stmt);
|
| 415 |
|
|
break;
|
| 416 |
|
|
}
|
| 417 |
|
|
|
| 418 |
|
|
/* If the statement references memory or volatile operands, fail. */
|
| 419 |
|
|
if (gimple_references_memory_p (stmt)
|
| 420 |
|
|
|| gimple_has_volatile_ops (stmt))
|
| 421 |
|
|
return;
|
| 422 |
|
|
}
|
| 423 |
|
|
|
| 424 |
|
|
if (gsi_end_p (gsi))
|
| 425 |
|
|
{
|
| 426 |
|
|
edge_iterator ei;
|
| 427 |
|
|
/* Recurse to the predecessors. */
|
| 428 |
|
|
FOR_EACH_EDGE (e, ei, bb->preds)
|
| 429 |
|
|
find_tail_calls (e->src, ret);
|
| 430 |
|
|
|
| 431 |
|
|
return;
|
| 432 |
|
|
}
|
| 433 |
|
|
|
| 434 |
|
|
/* If the LHS of our call is not just a simple register, we can't
|
| 435 |
|
|
transform this into a tail or sibling call. This situation happens,
|
| 436 |
|
|
in (e.g.) "*p = foo()" where foo returns a struct. In this case
|
| 437 |
|
|
we won't have a temporary here, but we need to carry out the side
|
| 438 |
|
|
effect anyway, so tailcall is impossible.
|
| 439 |
|
|
|
| 440 |
|
|
??? In some situations (when the struct is returned in memory via
|
| 441 |
|
|
invisible argument) we could deal with this, e.g. by passing 'p'
|
| 442 |
|
|
itself as that argument to foo, but it's too early to do this here,
|
| 443 |
|
|
and expand_call() will not handle it anyway. If it ever can, then
|
| 444 |
|
|
we need to revisit this here, to allow that situation. */
|
| 445 |
|
|
if (ass_var && !is_gimple_reg (ass_var))
|
| 446 |
|
|
return;
|
| 447 |
|
|
|
| 448 |
|
|
/* We found the call, check whether it is suitable. */
|
| 449 |
|
|
tail_recursion = false;
|
| 450 |
|
|
func = gimple_call_fndecl (call);
|
| 451 |
|
|
if (func == current_function_decl)
|
| 452 |
|
|
{
|
| 453 |
|
|
tree arg;
|
| 454 |
|
|
|
| 455 |
|
|
for (param = DECL_ARGUMENTS (func), idx = 0;
|
| 456 |
|
|
param && idx < gimple_call_num_args (call);
|
| 457 |
|
|
param = DECL_CHAIN (param), idx ++)
|
| 458 |
|
|
{
|
| 459 |
|
|
arg = gimple_call_arg (call, idx);
|
| 460 |
|
|
if (param != arg)
|
| 461 |
|
|
{
|
| 462 |
|
|
/* Make sure there are no problems with copying. The parameter
|
| 463 |
|
|
have a copyable type and the two arguments must have reasonably
|
| 464 |
|
|
equivalent types. The latter requirement could be relaxed if
|
| 465 |
|
|
we emitted a suitable type conversion statement. */
|
| 466 |
|
|
if (!is_gimple_reg_type (TREE_TYPE (param))
|
| 467 |
|
|
|| !useless_type_conversion_p (TREE_TYPE (param),
|
| 468 |
|
|
TREE_TYPE (arg)))
|
| 469 |
|
|
break;
|
| 470 |
|
|
|
| 471 |
|
|
/* The parameter should be a real operand, so that phi node
|
| 472 |
|
|
created for it at the start of the function has the meaning
|
| 473 |
|
|
of copying the value. This test implies is_gimple_reg_type
|
| 474 |
|
|
from the previous condition, however this one could be
|
| 475 |
|
|
relaxed by being more careful with copying the new value
|
| 476 |
|
|
of the parameter (emitting appropriate GIMPLE_ASSIGN and
|
| 477 |
|
|
updating the virtual operands). */
|
| 478 |
|
|
if (!is_gimple_reg (param))
|
| 479 |
|
|
break;
|
| 480 |
|
|
}
|
| 481 |
|
|
}
|
| 482 |
|
|
if (idx == gimple_call_num_args (call) && !param)
|
| 483 |
|
|
tail_recursion = true;
|
| 484 |
|
|
}
|
| 485 |
|
|
|
| 486 |
|
|
/* Make sure the tail invocation of this function does not refer
|
| 487 |
|
|
to local variables. */
|
| 488 |
|
|
FOR_EACH_REFERENCED_VAR (cfun, var, rvi)
|
| 489 |
|
|
{
|
| 490 |
|
|
if (TREE_CODE (var) != PARM_DECL
|
| 491 |
|
|
&& auto_var_in_fn_p (var, cfun->decl)
|
| 492 |
|
|
&& (ref_maybe_used_by_stmt_p (call, var)
|
| 493 |
|
|
|| call_may_clobber_ref_p (call, var)))
|
| 494 |
|
|
return;
|
| 495 |
|
|
}
|
| 496 |
|
|
|
| 497 |
|
|
/* Now check the statements after the call. None of them has virtual
|
| 498 |
|
|
operands, so they may only depend on the call through its return
|
| 499 |
|
|
value. The return value should also be dependent on each of them,
|
| 500 |
|
|
since we are running after dce. */
|
| 501 |
|
|
m = NULL_TREE;
|
| 502 |
|
|
a = NULL_TREE;
|
| 503 |
|
|
|
| 504 |
|
|
abb = bb;
|
| 505 |
|
|
agsi = gsi;
|
| 506 |
|
|
while (1)
|
| 507 |
|
|
{
|
| 508 |
|
|
tree tmp_a = NULL_TREE;
|
| 509 |
|
|
tree tmp_m = NULL_TREE;
|
| 510 |
|
|
gsi_next (&agsi);
|
| 511 |
|
|
|
| 512 |
|
|
while (gsi_end_p (agsi))
|
| 513 |
|
|
{
|
| 514 |
|
|
ass_var = propagate_through_phis (ass_var, single_succ_edge (abb));
|
| 515 |
|
|
abb = single_succ (abb);
|
| 516 |
|
|
agsi = gsi_start_bb (abb);
|
| 517 |
|
|
}
|
| 518 |
|
|
|
| 519 |
|
|
stmt = gsi_stmt (agsi);
|
| 520 |
|
|
|
| 521 |
|
|
if (gimple_code (stmt) == GIMPLE_LABEL)
|
| 522 |
|
|
continue;
|
| 523 |
|
|
|
| 524 |
|
|
if (gimple_code (stmt) == GIMPLE_RETURN)
|
| 525 |
|
|
break;
|
| 526 |
|
|
|
| 527 |
|
|
if (gimple_clobber_p (stmt))
|
| 528 |
|
|
continue;
|
| 529 |
|
|
|
| 530 |
|
|
if (is_gimple_debug (stmt))
|
| 531 |
|
|
continue;
|
| 532 |
|
|
|
| 533 |
|
|
if (gimple_code (stmt) != GIMPLE_ASSIGN)
|
| 534 |
|
|
return;
|
| 535 |
|
|
|
| 536 |
|
|
/* This is a gimple assign. */
|
| 537 |
|
|
if (! process_assignment (stmt, gsi, &tmp_m, &tmp_a, &ass_var))
|
| 538 |
|
|
return;
|
| 539 |
|
|
|
| 540 |
|
|
if (tmp_a)
|
| 541 |
|
|
{
|
| 542 |
|
|
tree type = TREE_TYPE (tmp_a);
|
| 543 |
|
|
if (a)
|
| 544 |
|
|
a = fold_build2 (PLUS_EXPR, type, fold_convert (type, a), tmp_a);
|
| 545 |
|
|
else
|
| 546 |
|
|
a = tmp_a;
|
| 547 |
|
|
}
|
| 548 |
|
|
if (tmp_m)
|
| 549 |
|
|
{
|
| 550 |
|
|
tree type = TREE_TYPE (tmp_m);
|
| 551 |
|
|
if (m)
|
| 552 |
|
|
m = fold_build2 (MULT_EXPR, type, fold_convert (type, m), tmp_m);
|
| 553 |
|
|
else
|
| 554 |
|
|
m = tmp_m;
|
| 555 |
|
|
|
| 556 |
|
|
if (a)
|
| 557 |
|
|
a = fold_build2 (MULT_EXPR, type, fold_convert (type, a), tmp_m);
|
| 558 |
|
|
}
|
| 559 |
|
|
}
|
| 560 |
|
|
|
| 561 |
|
|
/* See if this is a tail call we can handle. */
|
| 562 |
|
|
ret_var = gimple_return_retval (stmt);
|
| 563 |
|
|
|
| 564 |
|
|
/* We may proceed if there either is no return value, or the return value
|
| 565 |
|
|
is identical to the call's return. */
|
| 566 |
|
|
if (ret_var
|
| 567 |
|
|
&& (ret_var != ass_var))
|
| 568 |
|
|
return;
|
| 569 |
|
|
|
| 570 |
|
|
/* If this is not a tail recursive call, we cannot handle addends or
|
| 571 |
|
|
multiplicands. */
|
| 572 |
|
|
if (!tail_recursion && (m || a))
|
| 573 |
|
|
return;
|
| 574 |
|
|
|
| 575 |
|
|
nw = XNEW (struct tailcall);
|
| 576 |
|
|
|
| 577 |
|
|
nw->call_gsi = gsi;
|
| 578 |
|
|
|
| 579 |
|
|
nw->tail_recursion = tail_recursion;
|
| 580 |
|
|
|
| 581 |
|
|
nw->mult = m;
|
| 582 |
|
|
nw->add = a;
|
| 583 |
|
|
|
| 584 |
|
|
nw->next = *ret;
|
| 585 |
|
|
*ret = nw;
|
| 586 |
|
|
}
|
| 587 |
|
|
|
| 588 |
|
|
/* Helper to insert PHI_ARGH to the phi of VAR in the destination of edge E. */
|
| 589 |
|
|
|
| 590 |
|
|
static void
|
| 591 |
|
|
add_successor_phi_arg (edge e, tree var, tree phi_arg)
|
| 592 |
|
|
{
|
| 593 |
|
|
gimple_stmt_iterator gsi;
|
| 594 |
|
|
|
| 595 |
|
|
for (gsi = gsi_start_phis (e->dest); !gsi_end_p (gsi); gsi_next (&gsi))
|
| 596 |
|
|
if (PHI_RESULT (gsi_stmt (gsi)) == var)
|
| 597 |
|
|
break;
|
| 598 |
|
|
|
| 599 |
|
|
gcc_assert (!gsi_end_p (gsi));
|
| 600 |
|
|
add_phi_arg (gsi_stmt (gsi), phi_arg, e, UNKNOWN_LOCATION);
|
| 601 |
|
|
}
|
| 602 |
|
|
|
| 603 |
|
|
/* Creates a GIMPLE statement which computes the operation specified by
|
| 604 |
|
|
CODE, OP0 and OP1 to a new variable with name LABEL and inserts the
|
| 605 |
|
|
statement in the position specified by GSI and UPDATE. Returns the
|
| 606 |
|
|
tree node of the statement's result. */
|
| 607 |
|
|
|
| 608 |
|
|
static tree
|
| 609 |
|
|
adjust_return_value_with_ops (enum tree_code code, const char *label,
|
| 610 |
|
|
tree acc, tree op1, gimple_stmt_iterator gsi)
|
| 611 |
|
|
{
|
| 612 |
|
|
|
| 613 |
|
|
tree ret_type = TREE_TYPE (DECL_RESULT (current_function_decl));
|
| 614 |
|
|
tree tmp = create_tmp_reg (ret_type, label);
|
| 615 |
|
|
gimple stmt;
|
| 616 |
|
|
tree result;
|
| 617 |
|
|
|
| 618 |
|
|
add_referenced_var (tmp);
|
| 619 |
|
|
|
| 620 |
|
|
if (types_compatible_p (TREE_TYPE (acc), TREE_TYPE (op1)))
|
| 621 |
|
|
stmt = gimple_build_assign_with_ops (code, tmp, acc, op1);
|
| 622 |
|
|
else
|
| 623 |
|
|
{
|
| 624 |
|
|
tree rhs = fold_convert (TREE_TYPE (acc),
|
| 625 |
|
|
fold_build2 (code,
|
| 626 |
|
|
TREE_TYPE (op1),
|
| 627 |
|
|
fold_convert (TREE_TYPE (op1), acc),
|
| 628 |
|
|
op1));
|
| 629 |
|
|
rhs = force_gimple_operand_gsi (&gsi, rhs,
|
| 630 |
|
|
false, NULL, true, GSI_CONTINUE_LINKING);
|
| 631 |
|
|
stmt = gimple_build_assign (NULL_TREE, rhs);
|
| 632 |
|
|
}
|
| 633 |
|
|
|
| 634 |
|
|
result = make_ssa_name (tmp, stmt);
|
| 635 |
|
|
gimple_assign_set_lhs (stmt, result);
|
| 636 |
|
|
update_stmt (stmt);
|
| 637 |
|
|
gsi_insert_before (&gsi, stmt, GSI_NEW_STMT);
|
| 638 |
|
|
return result;
|
| 639 |
|
|
}
|
| 640 |
|
|
|
| 641 |
|
|
/* Creates a new GIMPLE statement that adjusts the value of accumulator ACC by
|
| 642 |
|
|
the computation specified by CODE and OP1 and insert the statement
|
| 643 |
|
|
at the position specified by GSI as a new statement. Returns new SSA name
|
| 644 |
|
|
of updated accumulator. */
|
| 645 |
|
|
|
| 646 |
|
|
static tree
|
| 647 |
|
|
update_accumulator_with_ops (enum tree_code code, tree acc, tree op1,
|
| 648 |
|
|
gimple_stmt_iterator gsi)
|
| 649 |
|
|
{
|
| 650 |
|
|
gimple stmt;
|
| 651 |
|
|
tree var;
|
| 652 |
|
|
if (types_compatible_p (TREE_TYPE (acc), TREE_TYPE (op1)))
|
| 653 |
|
|
stmt = gimple_build_assign_with_ops (code, SSA_NAME_VAR (acc), acc, op1);
|
| 654 |
|
|
else
|
| 655 |
|
|
{
|
| 656 |
|
|
tree rhs = fold_convert (TREE_TYPE (acc),
|
| 657 |
|
|
fold_build2 (code,
|
| 658 |
|
|
TREE_TYPE (op1),
|
| 659 |
|
|
fold_convert (TREE_TYPE (op1), acc),
|
| 660 |
|
|
op1));
|
| 661 |
|
|
rhs = force_gimple_operand_gsi (&gsi, rhs,
|
| 662 |
|
|
false, NULL, false, GSI_CONTINUE_LINKING);
|
| 663 |
|
|
stmt = gimple_build_assign (NULL_TREE, rhs);
|
| 664 |
|
|
}
|
| 665 |
|
|
var = make_ssa_name (SSA_NAME_VAR (acc), stmt);
|
| 666 |
|
|
gimple_assign_set_lhs (stmt, var);
|
| 667 |
|
|
update_stmt (stmt);
|
| 668 |
|
|
gsi_insert_after (&gsi, stmt, GSI_NEW_STMT);
|
| 669 |
|
|
return var;
|
| 670 |
|
|
}
|
| 671 |
|
|
|
| 672 |
|
|
/* Adjust the accumulator values according to A and M after GSI, and update
|
| 673 |
|
|
the phi nodes on edge BACK. */
|
| 674 |
|
|
|
| 675 |
|
|
static void
|
| 676 |
|
|
adjust_accumulator_values (gimple_stmt_iterator gsi, tree m, tree a, edge back)
|
| 677 |
|
|
{
|
| 678 |
|
|
tree var, a_acc_arg, m_acc_arg;
|
| 679 |
|
|
|
| 680 |
|
|
if (m)
|
| 681 |
|
|
m = force_gimple_operand_gsi (&gsi, m, true, NULL, true, GSI_SAME_STMT);
|
| 682 |
|
|
if (a)
|
| 683 |
|
|
a = force_gimple_operand_gsi (&gsi, a, true, NULL, true, GSI_SAME_STMT);
|
| 684 |
|
|
|
| 685 |
|
|
a_acc_arg = a_acc;
|
| 686 |
|
|
m_acc_arg = m_acc;
|
| 687 |
|
|
if (a)
|
| 688 |
|
|
{
|
| 689 |
|
|
if (m_acc)
|
| 690 |
|
|
{
|
| 691 |
|
|
if (integer_onep (a))
|
| 692 |
|
|
var = m_acc;
|
| 693 |
|
|
else
|
| 694 |
|
|
var = adjust_return_value_with_ops (MULT_EXPR, "acc_tmp", m_acc,
|
| 695 |
|
|
a, gsi);
|
| 696 |
|
|
}
|
| 697 |
|
|
else
|
| 698 |
|
|
var = a;
|
| 699 |
|
|
|
| 700 |
|
|
a_acc_arg = update_accumulator_with_ops (PLUS_EXPR, a_acc, var, gsi);
|
| 701 |
|
|
}
|
| 702 |
|
|
|
| 703 |
|
|
if (m)
|
| 704 |
|
|
m_acc_arg = update_accumulator_with_ops (MULT_EXPR, m_acc, m, gsi);
|
| 705 |
|
|
|
| 706 |
|
|
if (a_acc)
|
| 707 |
|
|
add_successor_phi_arg (back, a_acc, a_acc_arg);
|
| 708 |
|
|
|
| 709 |
|
|
if (m_acc)
|
| 710 |
|
|
add_successor_phi_arg (back, m_acc, m_acc_arg);
|
| 711 |
|
|
}
|
| 712 |
|
|
|
| 713 |
|
|
/* Adjust value of the return at the end of BB according to M and A
|
| 714 |
|
|
accumulators. */
|
| 715 |
|
|
|
| 716 |
|
|
static void
|
| 717 |
|
|
adjust_return_value (basic_block bb, tree m, tree a)
|
| 718 |
|
|
{
|
| 719 |
|
|
tree retval;
|
| 720 |
|
|
gimple ret_stmt = gimple_seq_last_stmt (bb_seq (bb));
|
| 721 |
|
|
gimple_stmt_iterator gsi = gsi_last_bb (bb);
|
| 722 |
|
|
|
| 723 |
|
|
gcc_assert (gimple_code (ret_stmt) == GIMPLE_RETURN);
|
| 724 |
|
|
|
| 725 |
|
|
retval = gimple_return_retval (ret_stmt);
|
| 726 |
|
|
if (!retval || retval == error_mark_node)
|
| 727 |
|
|
return;
|
| 728 |
|
|
|
| 729 |
|
|
if (m)
|
| 730 |
|
|
retval = adjust_return_value_with_ops (MULT_EXPR, "mul_tmp", m_acc, retval,
|
| 731 |
|
|
gsi);
|
| 732 |
|
|
if (a)
|
| 733 |
|
|
retval = adjust_return_value_with_ops (PLUS_EXPR, "acc_tmp", a_acc, retval,
|
| 734 |
|
|
gsi);
|
| 735 |
|
|
gimple_return_set_retval (ret_stmt, retval);
|
| 736 |
|
|
update_stmt (ret_stmt);
|
| 737 |
|
|
}
|
| 738 |
|
|
|
| 739 |
|
|
/* Subtract COUNT and FREQUENCY from the basic block and it's
|
| 740 |
|
|
outgoing edge. */
|
| 741 |
|
|
static void
|
| 742 |
|
|
decrease_profile (basic_block bb, gcov_type count, int frequency)
|
| 743 |
|
|
{
|
| 744 |
|
|
edge e;
|
| 745 |
|
|
bb->count -= count;
|
| 746 |
|
|
if (bb->count < 0)
|
| 747 |
|
|
bb->count = 0;
|
| 748 |
|
|
bb->frequency -= frequency;
|
| 749 |
|
|
if (bb->frequency < 0)
|
| 750 |
|
|
bb->frequency = 0;
|
| 751 |
|
|
if (!single_succ_p (bb))
|
| 752 |
|
|
{
|
| 753 |
|
|
gcc_assert (!EDGE_COUNT (bb->succs));
|
| 754 |
|
|
return;
|
| 755 |
|
|
}
|
| 756 |
|
|
e = single_succ_edge (bb);
|
| 757 |
|
|
e->count -= count;
|
| 758 |
|
|
if (e->count < 0)
|
| 759 |
|
|
e->count = 0;
|
| 760 |
|
|
}
|
| 761 |
|
|
|
| 762 |
|
|
/* Returns true if argument PARAM of the tail recursive call needs to be copied
|
| 763 |
|
|
when the call is eliminated. */
|
| 764 |
|
|
|
| 765 |
|
|
static bool
|
| 766 |
|
|
arg_needs_copy_p (tree param)
|
| 767 |
|
|
{
|
| 768 |
|
|
tree def;
|
| 769 |
|
|
|
| 770 |
|
|
if (!is_gimple_reg (param) || !var_ann (param))
|
| 771 |
|
|
return false;
|
| 772 |
|
|
|
| 773 |
|
|
/* Parameters that are only defined but never used need not be copied. */
|
| 774 |
|
|
def = gimple_default_def (cfun, param);
|
| 775 |
|
|
if (!def)
|
| 776 |
|
|
return false;
|
| 777 |
|
|
|
| 778 |
|
|
return true;
|
| 779 |
|
|
}
|
| 780 |
|
|
|
| 781 |
|
|
/* Eliminates tail call described by T. TMP_VARS is a list of
|
| 782 |
|
|
temporary variables used to copy the function arguments. */
|
| 783 |
|
|
|
| 784 |
|
|
static void
|
| 785 |
|
|
eliminate_tail_call (struct tailcall *t)
|
| 786 |
|
|
{
|
| 787 |
|
|
tree param, rslt;
|
| 788 |
|
|
gimple stmt, call;
|
| 789 |
|
|
tree arg;
|
| 790 |
|
|
size_t idx;
|
| 791 |
|
|
basic_block bb, first;
|
| 792 |
|
|
edge e;
|
| 793 |
|
|
gimple phi;
|
| 794 |
|
|
gimple_stmt_iterator gsi;
|
| 795 |
|
|
gimple orig_stmt;
|
| 796 |
|
|
|
| 797 |
|
|
stmt = orig_stmt = gsi_stmt (t->call_gsi);
|
| 798 |
|
|
bb = gsi_bb (t->call_gsi);
|
| 799 |
|
|
|
| 800 |
|
|
if (dump_file && (dump_flags & TDF_DETAILS))
|
| 801 |
|
|
{
|
| 802 |
|
|
fprintf (dump_file, "Eliminated tail recursion in bb %d : ",
|
| 803 |
|
|
bb->index);
|
| 804 |
|
|
print_gimple_stmt (dump_file, stmt, 0, TDF_SLIM);
|
| 805 |
|
|
fprintf (dump_file, "\n");
|
| 806 |
|
|
}
|
| 807 |
|
|
|
| 808 |
|
|
gcc_assert (is_gimple_call (stmt));
|
| 809 |
|
|
|
| 810 |
|
|
first = single_succ (ENTRY_BLOCK_PTR);
|
| 811 |
|
|
|
| 812 |
|
|
/* Remove the code after call_gsi that will become unreachable. The
|
| 813 |
|
|
possibly unreachable code in other blocks is removed later in
|
| 814 |
|
|
cfg cleanup. */
|
| 815 |
|
|
gsi = t->call_gsi;
|
| 816 |
|
|
gsi_next (&gsi);
|
| 817 |
|
|
while (!gsi_end_p (gsi))
|
| 818 |
|
|
{
|
| 819 |
|
|
gimple t = gsi_stmt (gsi);
|
| 820 |
|
|
/* Do not remove the return statement, so that redirect_edge_and_branch
|
| 821 |
|
|
sees how the block ends. */
|
| 822 |
|
|
if (gimple_code (t) == GIMPLE_RETURN)
|
| 823 |
|
|
break;
|
| 824 |
|
|
|
| 825 |
|
|
gsi_remove (&gsi, true);
|
| 826 |
|
|
release_defs (t);
|
| 827 |
|
|
}
|
| 828 |
|
|
|
| 829 |
|
|
/* Number of executions of function has reduced by the tailcall. */
|
| 830 |
|
|
e = single_succ_edge (gsi_bb (t->call_gsi));
|
| 831 |
|
|
decrease_profile (EXIT_BLOCK_PTR, e->count, EDGE_FREQUENCY (e));
|
| 832 |
|
|
decrease_profile (ENTRY_BLOCK_PTR, e->count, EDGE_FREQUENCY (e));
|
| 833 |
|
|
if (e->dest != EXIT_BLOCK_PTR)
|
| 834 |
|
|
decrease_profile (e->dest, e->count, EDGE_FREQUENCY (e));
|
| 835 |
|
|
|
| 836 |
|
|
/* Replace the call by a jump to the start of function. */
|
| 837 |
|
|
e = redirect_edge_and_branch (single_succ_edge (gsi_bb (t->call_gsi)),
|
| 838 |
|
|
first);
|
| 839 |
|
|
gcc_assert (e);
|
| 840 |
|
|
PENDING_STMT (e) = NULL;
|
| 841 |
|
|
|
| 842 |
|
|
/* Add phi node entries for arguments. The ordering of the phi nodes should
|
| 843 |
|
|
be the same as the ordering of the arguments. */
|
| 844 |
|
|
for (param = DECL_ARGUMENTS (current_function_decl),
|
| 845 |
|
|
idx = 0, gsi = gsi_start_phis (first);
|
| 846 |
|
|
param;
|
| 847 |
|
|
param = DECL_CHAIN (param), idx++)
|
| 848 |
|
|
{
|
| 849 |
|
|
if (!arg_needs_copy_p (param))
|
| 850 |
|
|
continue;
|
| 851 |
|
|
|
| 852 |
|
|
arg = gimple_call_arg (stmt, idx);
|
| 853 |
|
|
phi = gsi_stmt (gsi);
|
| 854 |
|
|
gcc_assert (param == SSA_NAME_VAR (PHI_RESULT (phi)));
|
| 855 |
|
|
|
| 856 |
|
|
add_phi_arg (phi, arg, e, gimple_location (stmt));
|
| 857 |
|
|
gsi_next (&gsi);
|
| 858 |
|
|
}
|
| 859 |
|
|
|
| 860 |
|
|
/* Update the values of accumulators. */
|
| 861 |
|
|
adjust_accumulator_values (t->call_gsi, t->mult, t->add, e);
|
| 862 |
|
|
|
| 863 |
|
|
call = gsi_stmt (t->call_gsi);
|
| 864 |
|
|
rslt = gimple_call_lhs (call);
|
| 865 |
|
|
if (rslt != NULL_TREE)
|
| 866 |
|
|
{
|
| 867 |
|
|
/* Result of the call will no longer be defined. So adjust the
|
| 868 |
|
|
SSA_NAME_DEF_STMT accordingly. */
|
| 869 |
|
|
SSA_NAME_DEF_STMT (rslt) = gimple_build_nop ();
|
| 870 |
|
|
}
|
| 871 |
|
|
|
| 872 |
|
|
gsi_remove (&t->call_gsi, true);
|
| 873 |
|
|
release_defs (call);
|
| 874 |
|
|
}
|
| 875 |
|
|
|
| 876 |
|
|
/* Add phi nodes for the virtual operands defined in the function to the
|
| 877 |
|
|
header of the loop created by tail recursion elimination.
|
| 878 |
|
|
|
| 879 |
|
|
Originally, we used to add phi nodes only for call clobbered variables,
|
| 880 |
|
|
as the value of the non-call clobbered ones obviously cannot be used
|
| 881 |
|
|
or changed within the recursive call. However, the local variables
|
| 882 |
|
|
from multiple calls now share the same location, so the virtual ssa form
|
| 883 |
|
|
requires us to say that the location dies on further iterations of the loop,
|
| 884 |
|
|
which requires adding phi nodes.
|
| 885 |
|
|
*/
|
| 886 |
|
|
static void
|
| 887 |
|
|
add_virtual_phis (void)
|
| 888 |
|
|
{
|
| 889 |
|
|
referenced_var_iterator rvi;
|
| 890 |
|
|
tree var;
|
| 891 |
|
|
|
| 892 |
|
|
/* The problematic part is that there is no way how to know what
|
| 893 |
|
|
to put into phi nodes (there in fact does not have to be such
|
| 894 |
|
|
ssa name available). A solution would be to have an artificial
|
| 895 |
|
|
use/kill for all virtual operands in EXIT node. Unless we have
|
| 896 |
|
|
this, we cannot do much better than to rebuild the ssa form for
|
| 897 |
|
|
possibly affected virtual ssa names from scratch. */
|
| 898 |
|
|
|
| 899 |
|
|
FOR_EACH_REFERENCED_VAR (cfun, var, rvi)
|
| 900 |
|
|
{
|
| 901 |
|
|
if (!is_gimple_reg (var) && gimple_default_def (cfun, var) != NULL_TREE)
|
| 902 |
|
|
mark_sym_for_renaming (var);
|
| 903 |
|
|
}
|
| 904 |
|
|
}
|
| 905 |
|
|
|
| 906 |
|
|
/* Optimizes the tailcall described by T. If OPT_TAILCALLS is true, also
|
| 907 |
|
|
mark the tailcalls for the sibcall optimization. */
|
| 908 |
|
|
|
| 909 |
|
|
static bool
|
| 910 |
|
|
optimize_tail_call (struct tailcall *t, bool opt_tailcalls)
|
| 911 |
|
|
{
|
| 912 |
|
|
if (t->tail_recursion)
|
| 913 |
|
|
{
|
| 914 |
|
|
eliminate_tail_call (t);
|
| 915 |
|
|
return true;
|
| 916 |
|
|
}
|
| 917 |
|
|
|
| 918 |
|
|
if (opt_tailcalls)
|
| 919 |
|
|
{
|
| 920 |
|
|
gimple stmt = gsi_stmt (t->call_gsi);
|
| 921 |
|
|
|
| 922 |
|
|
gimple_call_set_tail (stmt, true);
|
| 923 |
|
|
if (dump_file && (dump_flags & TDF_DETAILS))
|
| 924 |
|
|
{
|
| 925 |
|
|
fprintf (dump_file, "Found tail call ");
|
| 926 |
|
|
print_gimple_stmt (dump_file, stmt, 0, dump_flags);
|
| 927 |
|
|
fprintf (dump_file, " in bb %i\n", (gsi_bb (t->call_gsi))->index);
|
| 928 |
|
|
}
|
| 929 |
|
|
}
|
| 930 |
|
|
|
| 931 |
|
|
return false;
|
| 932 |
|
|
}
|
| 933 |
|
|
|
| 934 |
|
|
/* Creates a tail-call accumulator of the same type as the return type of the
|
| 935 |
|
|
current function. LABEL is the name used to creating the temporary
|
| 936 |
|
|
variable for the accumulator. The accumulator will be inserted in the
|
| 937 |
|
|
phis of a basic block BB with single predecessor with an initial value
|
| 938 |
|
|
INIT converted to the current function return type. */
|
| 939 |
|
|
|
| 940 |
|
|
static tree
|
| 941 |
|
|
create_tailcall_accumulator (const char *label, basic_block bb, tree init)
|
| 942 |
|
|
{
|
| 943 |
|
|
tree ret_type = TREE_TYPE (DECL_RESULT (current_function_decl));
|
| 944 |
|
|
tree tmp = create_tmp_reg (ret_type, label);
|
| 945 |
|
|
gimple phi;
|
| 946 |
|
|
|
| 947 |
|
|
add_referenced_var (tmp);
|
| 948 |
|
|
phi = create_phi_node (tmp, bb);
|
| 949 |
|
|
/* RET_TYPE can be a float when -ffast-maths is enabled. */
|
| 950 |
|
|
add_phi_arg (phi, fold_convert (ret_type, init), single_pred_edge (bb),
|
| 951 |
|
|
UNKNOWN_LOCATION);
|
| 952 |
|
|
return PHI_RESULT (phi);
|
| 953 |
|
|
}
|
| 954 |
|
|
|
| 955 |
|
|
/* Optimizes tail calls in the function, turning the tail recursion
|
| 956 |
|
|
into iteration. */
|
| 957 |
|
|
|
| 958 |
|
|
static unsigned int
|
| 959 |
|
|
tree_optimize_tail_calls_1 (bool opt_tailcalls)
|
| 960 |
|
|
{
|
| 961 |
|
|
edge e;
|
| 962 |
|
|
bool phis_constructed = false;
|
| 963 |
|
|
struct tailcall *tailcalls = NULL, *act, *next;
|
| 964 |
|
|
bool changed = false;
|
| 965 |
|
|
basic_block first = single_succ (ENTRY_BLOCK_PTR);
|
| 966 |
|
|
tree param;
|
| 967 |
|
|
gimple stmt;
|
| 968 |
|
|
edge_iterator ei;
|
| 969 |
|
|
|
| 970 |
|
|
if (!suitable_for_tail_opt_p ())
|
| 971 |
|
|
return 0;
|
| 972 |
|
|
if (opt_tailcalls)
|
| 973 |
|
|
opt_tailcalls = suitable_for_tail_call_opt_p ();
|
| 974 |
|
|
|
| 975 |
|
|
FOR_EACH_EDGE (e, ei, EXIT_BLOCK_PTR->preds)
|
| 976 |
|
|
{
|
| 977 |
|
|
/* Only traverse the normal exits, i.e. those that end with return
|
| 978 |
|
|
statement. */
|
| 979 |
|
|
stmt = last_stmt (e->src);
|
| 980 |
|
|
|
| 981 |
|
|
if (stmt
|
| 982 |
|
|
&& gimple_code (stmt) == GIMPLE_RETURN)
|
| 983 |
|
|
find_tail_calls (e->src, &tailcalls);
|
| 984 |
|
|
}
|
| 985 |
|
|
|
| 986 |
|
|
/* Construct the phi nodes and accumulators if necessary. */
|
| 987 |
|
|
a_acc = m_acc = NULL_TREE;
|
| 988 |
|
|
for (act = tailcalls; act; act = act->next)
|
| 989 |
|
|
{
|
| 990 |
|
|
if (!act->tail_recursion)
|
| 991 |
|
|
continue;
|
| 992 |
|
|
|
| 993 |
|
|
if (!phis_constructed)
|
| 994 |
|
|
{
|
| 995 |
|
|
/* Ensure that there is only one predecessor of the block
|
| 996 |
|
|
or if there are existing degenerate PHI nodes. */
|
| 997 |
|
|
if (!single_pred_p (first)
|
| 998 |
|
|
|| !gimple_seq_empty_p (phi_nodes (first)))
|
| 999 |
|
|
first = split_edge (single_succ_edge (ENTRY_BLOCK_PTR));
|
| 1000 |
|
|
|
| 1001 |
|
|
/* Copy the args if needed. */
|
| 1002 |
|
|
for (param = DECL_ARGUMENTS (current_function_decl);
|
| 1003 |
|
|
param;
|
| 1004 |
|
|
param = DECL_CHAIN (param))
|
| 1005 |
|
|
if (arg_needs_copy_p (param))
|
| 1006 |
|
|
{
|
| 1007 |
|
|
tree name = gimple_default_def (cfun, param);
|
| 1008 |
|
|
tree new_name = make_ssa_name (param, SSA_NAME_DEF_STMT (name));
|
| 1009 |
|
|
gimple phi;
|
| 1010 |
|
|
|
| 1011 |
|
|
set_default_def (param, new_name);
|
| 1012 |
|
|
phi = create_phi_node (name, first);
|
| 1013 |
|
|
SSA_NAME_DEF_STMT (name) = phi;
|
| 1014 |
|
|
add_phi_arg (phi, new_name, single_pred_edge (first),
|
| 1015 |
|
|
EXPR_LOCATION (param));
|
| 1016 |
|
|
}
|
| 1017 |
|
|
phis_constructed = true;
|
| 1018 |
|
|
}
|
| 1019 |
|
|
|
| 1020 |
|
|
if (act->add && !a_acc)
|
| 1021 |
|
|
a_acc = create_tailcall_accumulator ("add_acc", first,
|
| 1022 |
|
|
integer_zero_node);
|
| 1023 |
|
|
|
| 1024 |
|
|
if (act->mult && !m_acc)
|
| 1025 |
|
|
m_acc = create_tailcall_accumulator ("mult_acc", first,
|
| 1026 |
|
|
integer_one_node);
|
| 1027 |
|
|
}
|
| 1028 |
|
|
|
| 1029 |
|
|
if (a_acc || m_acc)
|
| 1030 |
|
|
{
|
| 1031 |
|
|
/* When the tail call elimination using accumulators is performed,
|
| 1032 |
|
|
statements adding the accumulated value are inserted at all exits.
|
| 1033 |
|
|
This turns all other tail calls to non-tail ones. */
|
| 1034 |
|
|
opt_tailcalls = false;
|
| 1035 |
|
|
}
|
| 1036 |
|
|
|
| 1037 |
|
|
for (; tailcalls; tailcalls = next)
|
| 1038 |
|
|
{
|
| 1039 |
|
|
next = tailcalls->next;
|
| 1040 |
|
|
changed |= optimize_tail_call (tailcalls, opt_tailcalls);
|
| 1041 |
|
|
free (tailcalls);
|
| 1042 |
|
|
}
|
| 1043 |
|
|
|
| 1044 |
|
|
if (a_acc || m_acc)
|
| 1045 |
|
|
{
|
| 1046 |
|
|
/* Modify the remaining return statements. */
|
| 1047 |
|
|
FOR_EACH_EDGE (e, ei, EXIT_BLOCK_PTR->preds)
|
| 1048 |
|
|
{
|
| 1049 |
|
|
stmt = last_stmt (e->src);
|
| 1050 |
|
|
|
| 1051 |
|
|
if (stmt
|
| 1052 |
|
|
&& gimple_code (stmt) == GIMPLE_RETURN)
|
| 1053 |
|
|
adjust_return_value (e->src, m_acc, a_acc);
|
| 1054 |
|
|
}
|
| 1055 |
|
|
}
|
| 1056 |
|
|
|
| 1057 |
|
|
if (changed)
|
| 1058 |
|
|
free_dominance_info (CDI_DOMINATORS);
|
| 1059 |
|
|
|
| 1060 |
|
|
if (phis_constructed)
|
| 1061 |
|
|
add_virtual_phis ();
|
| 1062 |
|
|
if (changed)
|
| 1063 |
|
|
return TODO_cleanup_cfg | TODO_update_ssa_only_virtuals;
|
| 1064 |
|
|
return 0;
|
| 1065 |
|
|
}
|
| 1066 |
|
|
|
| 1067 |
|
|
static unsigned int
|
| 1068 |
|
|
execute_tail_recursion (void)
|
| 1069 |
|
|
{
|
| 1070 |
|
|
return tree_optimize_tail_calls_1 (false);
|
| 1071 |
|
|
}
|
| 1072 |
|
|
|
| 1073 |
|
|
static bool
|
| 1074 |
|
|
gate_tail_calls (void)
|
| 1075 |
|
|
{
|
| 1076 |
|
|
return flag_optimize_sibling_calls != 0 && dbg_cnt (tail_call);
|
| 1077 |
|
|
}
|
| 1078 |
|
|
|
| 1079 |
|
|
static unsigned int
|
| 1080 |
|
|
execute_tail_calls (void)
|
| 1081 |
|
|
{
|
| 1082 |
|
|
return tree_optimize_tail_calls_1 (true);
|
| 1083 |
|
|
}
|
| 1084 |
|
|
|
| 1085 |
|
|
struct gimple_opt_pass pass_tail_recursion =
|
| 1086 |
|
|
{
|
| 1087 |
|
|
{
|
| 1088 |
|
|
GIMPLE_PASS,
|
| 1089 |
|
|
"tailr", /* name */
|
| 1090 |
|
|
gate_tail_calls, /* gate */
|
| 1091 |
|
|
execute_tail_recursion, /* execute */
|
| 1092 |
|
|
NULL, /* sub */
|
| 1093 |
|
|
NULL, /* next */
|
| 1094 |
|
|
0, /* static_pass_number */
|
| 1095 |
|
|
TV_NONE, /* tv_id */
|
| 1096 |
|
|
PROP_cfg | PROP_ssa, /* properties_required */
|
| 1097 |
|
|
0, /* properties_provided */
|
| 1098 |
|
|
0, /* properties_destroyed */
|
| 1099 |
|
|
0, /* todo_flags_start */
|
| 1100 |
|
|
TODO_verify_ssa /* todo_flags_finish */
|
| 1101 |
|
|
}
|
| 1102 |
|
|
};
|
| 1103 |
|
|
|
| 1104 |
|
|
struct gimple_opt_pass pass_tail_calls =
|
| 1105 |
|
|
{
|
| 1106 |
|
|
{
|
| 1107 |
|
|
GIMPLE_PASS,
|
| 1108 |
|
|
"tailc", /* name */
|
| 1109 |
|
|
gate_tail_calls, /* gate */
|
| 1110 |
|
|
execute_tail_calls, /* execute */
|
| 1111 |
|
|
NULL, /* sub */
|
| 1112 |
|
|
NULL, /* next */
|
| 1113 |
|
|
0, /* static_pass_number */
|
| 1114 |
|
|
TV_NONE, /* tv_id */
|
| 1115 |
|
|
PROP_cfg | PROP_ssa, /* properties_required */
|
| 1116 |
|
|
0, /* properties_provided */
|
| 1117 |
|
|
0, /* properties_destroyed */
|
| 1118 |
|
|
0, /* todo_flags_start */
|
| 1119 |
|
|
TODO_verify_ssa /* todo_flags_finish */
|
| 1120 |
|
|
}
|
| 1121 |
|
|
};
|