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687 lines
18 KiB
687 lines
18 KiB
/* |
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* Copyright (c) 1983, 1993, 2001 |
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* The Regents of the University of California. All rights reserved. |
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* |
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* Redistribution and use in source and binary forms, with or without |
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* modification, are permitted provided that the following conditions |
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* are met: |
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* 1. Redistributions of source code must retain the above copyright |
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* notice, this list of conditions and the following disclaimer. |
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* 2. Redistributions in binary form must reproduce the above copyright |
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* notice, this list of conditions and the following disclaimer in the |
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* documentation and/or other materials provided with the distribution. |
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* 3. Neither the name of the University nor the names of its contributors |
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* may be used to endorse or promote products derived from this software |
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* without specific prior written permission. |
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* |
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* THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND |
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* ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE |
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* IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE |
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* ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE |
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* FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL |
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* DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS |
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* OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) |
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* HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT |
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* LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY |
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* OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF |
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* SUCH DAMAGE. |
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*/ |
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#include "gprof.h" |
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#include "libiberty.h" |
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#include "search_list.h" |
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#include "source.h" |
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#include "symtab.h" |
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#include "call_graph.h" |
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#include "cg_arcs.h" |
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#include "cg_dfn.h" |
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#include "cg_print.h" |
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#include "utils.h" |
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#include "sym_ids.h" |
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|
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static int cmp_topo (const PTR, const PTR); |
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static void propagate_time (Sym *); |
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static void cycle_time (void); |
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static void cycle_link (void); |
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static void inherit_flags (Sym *); |
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static void propagate_flags (Sym **); |
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static int cmp_total (const PTR, const PTR); |
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|
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Sym *cycle_header; |
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unsigned int num_cycles; |
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Arc **arcs; |
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unsigned int numarcs; |
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|
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/* |
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* Return TRUE iff PARENT has an arc to covers the address |
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* range covered by CHILD. |
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*/ |
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Arc * |
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arc_lookup (Sym *parent, Sym *child) |
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{ |
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Arc *arc; |
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|
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if (!parent || !child) |
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{ |
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printf ("[arc_lookup] parent == 0 || child == 0\n"); |
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return 0; |
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} |
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DBG (LOOKUPDEBUG, printf ("[arc_lookup] parent %s child %s\n", |
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parent->name, child->name)); |
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for (arc = parent->cg.children; arc; arc = arc->next_child) |
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{ |
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DBG (LOOKUPDEBUG, printf ("[arc_lookup]\t parent %s child %s\n", |
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arc->parent->name, arc->child->name)); |
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if (child->addr >= arc->child->addr |
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&& child->end_addr <= arc->child->end_addr) |
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{ |
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return arc; |
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} |
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} |
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return 0; |
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} |
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/* |
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* Add (or just increment) an arc: |
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*/ |
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void |
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arc_add (Sym *parent, Sym *child, unsigned long count) |
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{ |
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static unsigned int maxarcs = 0; |
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Arc *arc, **newarcs; |
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|
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DBG (TALLYDEBUG, printf ("[arc_add] %lu arcs from %s to %s\n", |
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count, parent->name, child->name)); |
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arc = arc_lookup (parent, child); |
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if (arc) |
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{ |
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/* |
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* A hit: just increment the count. |
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*/ |
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DBG (TALLYDEBUG, printf ("[tally] hit %lu += %lu\n", |
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arc->count, count)); |
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arc->count += count; |
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return; |
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} |
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arc = (Arc *) xmalloc (sizeof (*arc)); |
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memset (arc, 0, sizeof (*arc)); |
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arc->parent = parent; |
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arc->child = child; |
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arc->count = count; |
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|
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/* If this isn't an arc for a recursive call to parent, then add it |
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to the array of arcs. */ |
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if (parent != child) |
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{ |
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/* If we've exhausted space in our current array, get a new one |
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and copy the contents. We might want to throttle the doubling |
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factor one day. */ |
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if (numarcs == maxarcs) |
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{ |
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/* Determine how much space we want to allocate. */ |
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if (maxarcs == 0) |
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maxarcs = 1; |
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maxarcs *= 2; |
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|
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/* Allocate the new array. */ |
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newarcs = (Arc **)xmalloc(sizeof (Arc *) * maxarcs); |
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|
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/* Copy the old array's contents into the new array. */ |
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memcpy (newarcs, arcs, numarcs * sizeof (Arc *)); |
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|
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/* Free up the old array. */ |
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free (arcs); |
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|
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/* And make the new array be the current array. */ |
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arcs = newarcs; |
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} |
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|
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/* Place this arc in the arc array. */ |
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arcs[numarcs++] = arc; |
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} |
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|
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/* prepend this child to the children of this parent: */ |
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arc->next_child = parent->cg.children; |
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parent->cg.children = arc; |
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|
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/* prepend this parent to the parents of this child: */ |
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arc->next_parent = child->cg.parents; |
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child->cg.parents = arc; |
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} |
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static int |
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cmp_topo (const PTR lp, const PTR rp) |
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{ |
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const Sym *left = *(const Sym **) lp; |
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const Sym *right = *(const Sym **) rp; |
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return left->cg.top_order - right->cg.top_order; |
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} |
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static void |
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propagate_time (Sym *parent) |
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{ |
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Arc *arc; |
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Sym *child; |
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double share, prop_share; |
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|
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if (parent->cg.prop.fract == 0.0) |
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{ |
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return; |
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} |
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|
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/* gather time from children of this parent: */ |
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|
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for (arc = parent->cg.children; arc; arc = arc->next_child) |
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{ |
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child = arc->child; |
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if (arc->count == 0 || child == parent || child->cg.prop.fract == 0) |
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{ |
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continue; |
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} |
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if (child->cg.cyc.head != child) |
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{ |
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if (parent->cg.cyc.num == child->cg.cyc.num) |
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{ |
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continue; |
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} |
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if (parent->cg.top_order <= child->cg.top_order) |
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{ |
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fprintf (stderr, "[propagate] toporder botches\n"); |
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} |
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child = child->cg.cyc.head; |
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} |
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else |
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{ |
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if (parent->cg.top_order <= child->cg.top_order) |
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{ |
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fprintf (stderr, "[propagate] toporder botches\n"); |
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continue; |
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} |
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} |
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if (child->ncalls == 0) |
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{ |
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continue; |
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} |
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/* distribute time for this arc: */ |
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arc->time = child->hist.time * (((double) arc->count) |
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/ ((double) child->ncalls)); |
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arc->child_time = child->cg.child_time |
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* (((double) arc->count) / ((double) child->ncalls)); |
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share = arc->time + arc->child_time; |
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parent->cg.child_time += share; |
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|
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/* (1 - cg.prop.fract) gets lost along the way: */ |
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prop_share = parent->cg.prop.fract * share; |
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|
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/* fix things for printing: */ |
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parent->cg.prop.child += prop_share; |
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arc->time *= parent->cg.prop.fract; |
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arc->child_time *= parent->cg.prop.fract; |
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|
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/* add this share to the parent's cycle header, if any: */ |
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if (parent->cg.cyc.head != parent) |
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{ |
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parent->cg.cyc.head->cg.child_time += share; |
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parent->cg.cyc.head->cg.prop.child += prop_share; |
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} |
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DBG (PROPDEBUG, |
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printf ("[prop_time] child \t"); |
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print_name (child); |
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printf (" with %f %f %lu/%lu\n", child->hist.time, |
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child->cg.child_time, arc->count, child->ncalls); |
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printf ("[prop_time] parent\t"); |
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print_name (parent); |
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printf ("\n[prop_time] share %f\n", share)); |
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} |
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} |
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/* |
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* Compute the time of a cycle as the sum of the times of all |
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* its members. |
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*/ |
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static void |
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cycle_time () |
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{ |
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Sym *member, *cyc; |
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for (cyc = &cycle_header[1]; cyc <= &cycle_header[num_cycles]; ++cyc) |
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{ |
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for (member = cyc->cg.cyc.next; member; member = member->cg.cyc.next) |
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{ |
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if (member->cg.prop.fract == 0.0) |
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{ |
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/* |
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* All members have the same propfraction except those |
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* that were excluded with -E. |
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*/ |
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continue; |
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} |
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cyc->hist.time += member->hist.time; |
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} |
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cyc->cg.prop.self = cyc->cg.prop.fract * cyc->hist.time; |
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} |
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} |
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static void |
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cycle_link () |
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{ |
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Sym *sym, *cyc, *member; |
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Arc *arc; |
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int num; |
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|
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/* count the number of cycles, and initialize the cycle lists: */ |
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num_cycles = 0; |
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for (sym = symtab.base; sym < symtab.limit; ++sym) |
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{ |
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/* this is how you find unattached cycles: */ |
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if (sym->cg.cyc.head == sym && sym->cg.cyc.next) |
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{ |
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++num_cycles; |
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} |
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} |
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/* |
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* cycle_header is indexed by cycle number: i.e. it is origin 1, |
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* not origin 0. |
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*/ |
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cycle_header = (Sym *) xmalloc ((num_cycles + 1) * sizeof (Sym)); |
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/* |
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* Now link cycles to true cycle-heads, number them, accumulate |
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* the data for the cycle. |
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*/ |
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num = 0; |
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cyc = cycle_header; |
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for (sym = symtab.base; sym < symtab.limit; ++sym) |
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{ |
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if (!(sym->cg.cyc.head == sym && sym->cg.cyc.next != 0)) |
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{ |
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continue; |
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} |
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++num; |
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++cyc; |
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sym_init (cyc); |
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cyc->cg.print_flag = TRUE; /* should this be printed? */ |
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cyc->cg.top_order = DFN_NAN; /* graph call chain top-sort order */ |
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cyc->cg.cyc.num = num; /* internal number of cycle on */ |
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cyc->cg.cyc.head = cyc; /* pointer to head of cycle */ |
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cyc->cg.cyc.next = sym; /* pointer to next member of cycle */ |
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DBG (CYCLEDEBUG, printf ("[cycle_link] "); |
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print_name (sym); |
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printf (" is the head of cycle %d\n", num)); |
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/* link members to cycle header: */ |
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for (member = sym; member; member = member->cg.cyc.next) |
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{ |
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member->cg.cyc.num = num; |
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member->cg.cyc.head = cyc; |
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} |
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/* |
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* Count calls from outside the cycle and those among cycle |
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* members: |
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*/ |
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for (member = sym; member; member = member->cg.cyc.next) |
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{ |
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for (arc = member->cg.parents; arc; arc = arc->next_parent) |
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{ |
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if (arc->parent == member) |
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{ |
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continue; |
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} |
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if (arc->parent->cg.cyc.num == num) |
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{ |
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cyc->cg.self_calls += arc->count; |
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} |
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else |
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{ |
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cyc->ncalls += arc->count; |
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} |
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} |
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} |
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} |
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} |
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/* |
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* Check if any parent of this child (or outside parents of this |
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* cycle) have their print flags on and set the print flag of the |
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* child (cycle) appropriately. Similarly, deal with propagation |
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* fractions from parents. |
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*/ |
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static void |
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inherit_flags (Sym *child) |
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{ |
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Sym *head, *parent, *member; |
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Arc *arc; |
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head = child->cg.cyc.head; |
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if (child == head) |
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{ |
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/* just a regular child, check its parents: */ |
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child->cg.print_flag = FALSE; |
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child->cg.prop.fract = 0.0; |
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for (arc = child->cg.parents; arc; arc = arc->next_parent) |
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{ |
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parent = arc->parent; |
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if (child == parent) |
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{ |
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continue; |
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} |
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child->cg.print_flag |= parent->cg.print_flag; |
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/* |
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* If the child was never actually called (e.g., this arc |
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* is static (and all others are, too)) no time propagates |
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* along this arc. |
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*/ |
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if (child->ncalls != 0) |
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{ |
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child->cg.prop.fract += parent->cg.prop.fract |
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* (((double) arc->count) / ((double) child->ncalls)); |
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} |
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} |
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} |
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else |
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{ |
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/* |
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* Its a member of a cycle, look at all parents from outside |
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* the cycle. |
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*/ |
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head->cg.print_flag = FALSE; |
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head->cg.prop.fract = 0.0; |
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for (member = head->cg.cyc.next; member; member = member->cg.cyc.next) |
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{ |
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for (arc = member->cg.parents; arc; arc = arc->next_parent) |
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{ |
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if (arc->parent->cg.cyc.head == head) |
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{ |
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continue; |
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} |
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parent = arc->parent; |
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head->cg.print_flag |= parent->cg.print_flag; |
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/* |
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* If the cycle was never actually called (e.g. this |
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* arc is static (and all others are, too)) no time |
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* propagates along this arc. |
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*/ |
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if (head->ncalls != 0) |
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{ |
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head->cg.prop.fract += parent->cg.prop.fract |
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* (((double) arc->count) / ((double) head->ncalls)); |
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} |
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} |
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} |
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for (member = head; member; member = member->cg.cyc.next) |
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{ |
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member->cg.print_flag = head->cg.print_flag; |
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member->cg.prop.fract = head->cg.prop.fract; |
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} |
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} |
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} |
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/* |
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* In one top-to-bottom pass over the topologically sorted symbols |
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* propagate: |
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* cg.print_flag as the union of parents' print_flags |
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* propfraction as the sum of fractional parents' propfractions |
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* and while we're here, sum time for functions. |
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*/ |
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static void |
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propagate_flags (Sym **symbols) |
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{ |
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int sym_index; |
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Sym *old_head, *child; |
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|
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old_head = 0; |
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for (sym_index = symtab.len - 1; sym_index >= 0; --sym_index) |
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{ |
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child = symbols[sym_index]; |
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/* |
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* If we haven't done this function or cycle, inherit things |
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* from parent. This way, we are linear in the number of arcs |
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* since we do all members of a cycle (and the cycle itself) |
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* as we hit the first member of the cycle. |
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*/ |
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if (child->cg.cyc.head != old_head) |
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{ |
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old_head = child->cg.cyc.head; |
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inherit_flags (child); |
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} |
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DBG (PROPDEBUG, |
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printf ("[prop_flags] "); |
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print_name (child); |
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printf ("inherits print-flag %d and prop-fract %f\n", |
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child->cg.print_flag, child->cg.prop.fract)); |
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if (!child->cg.print_flag) |
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{ |
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/* |
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* Printflag is off. It gets turned on by being in the |
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* INCL_GRAPH table, or there being an empty INCL_GRAPH |
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* table and not being in the EXCL_GRAPH table. |
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*/ |
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if (sym_lookup (&syms[INCL_GRAPH], child->addr) |
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|| (syms[INCL_GRAPH].len == 0 |
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&& !sym_lookup (&syms[EXCL_GRAPH], child->addr))) |
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{ |
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child->cg.print_flag = TRUE; |
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} |
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} |
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else |
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{ |
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/* |
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* This function has printing parents: maybe someone wants |
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* to shut it up by putting it in the EXCL_GRAPH table. |
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* (But favor INCL_GRAPH over EXCL_GRAPH.) |
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*/ |
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if (!sym_lookup (&syms[INCL_GRAPH], child->addr) |
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&& sym_lookup (&syms[EXCL_GRAPH], child->addr)) |
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{ |
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child->cg.print_flag = FALSE; |
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} |
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} |
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if (child->cg.prop.fract == 0.0) |
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{ |
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/* |
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* No parents to pass time to. Collect time from children |
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* if its in the INCL_TIME table, or there is an empty |
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* INCL_TIME table and its not in the EXCL_TIME table. |
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*/ |
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if (sym_lookup (&syms[INCL_TIME], child->addr) |
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|| (syms[INCL_TIME].len == 0 |
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&& !sym_lookup (&syms[EXCL_TIME], child->addr))) |
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{ |
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child->cg.prop.fract = 1.0; |
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} |
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} |
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else |
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{ |
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/* |
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* It has parents to pass time to, but maybe someone wants |
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* to shut it up by puttting it in the EXCL_TIME table. |
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* (But favor being in INCL_TIME tabe over being in |
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* EXCL_TIME table.) |
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*/ |
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if (!sym_lookup (&syms[INCL_TIME], child->addr) |
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&& sym_lookup (&syms[EXCL_TIME], child->addr)) |
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{ |
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child->cg.prop.fract = 0.0; |
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} |
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} |
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child->cg.prop.self = child->hist.time * child->cg.prop.fract; |
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print_time += child->cg.prop.self; |
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DBG (PROPDEBUG, |
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printf ("[prop_flags] "); |
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print_name (child); |
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printf (" ends up with printflag %d and prop-fract %f\n", |
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child->cg.print_flag, child->cg.prop.fract); |
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printf ("[prop_flags] time %f propself %f print_time %f\n", |
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child->hist.time, child->cg.prop.self, print_time)); |
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} |
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} |
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|
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/* |
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* Compare by decreasing propagated time. If times are equal, but one |
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* is a cycle header, say that's first (e.g. less, i.e. -1). If one's |
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* name doesn't have an underscore and the other does, say that one is |
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* first. All else being equal, compare by names. |
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*/ |
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static int |
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cmp_total (const PTR lp, const PTR rp) |
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{ |
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const Sym *left = *(const Sym **) lp; |
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const Sym *right = *(const Sym **) rp; |
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double diff; |
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|
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diff = (left->cg.prop.self + left->cg.prop.child) |
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- (right->cg.prop.self + right->cg.prop.child); |
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if (diff < 0.0) |
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{ |
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return 1; |
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} |
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if (diff > 0.0) |
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{ |
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return -1; |
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} |
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if (!left->name && left->cg.cyc.num != 0) |
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{ |
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return -1; |
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} |
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if (!right->name && right->cg.cyc.num != 0) |
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{ |
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return 1; |
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} |
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if (!left->name) |
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{ |
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return -1; |
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} |
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if (!right->name) |
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{ |
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return 1; |
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} |
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if (left->name[0] != '_' && right->name[0] == '_') |
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{ |
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return -1; |
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} |
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if (left->name[0] == '_' && right->name[0] != '_') |
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{ |
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return 1; |
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} |
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if (left->ncalls > right->ncalls) |
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{ |
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return -1; |
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} |
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if (left->ncalls < right->ncalls) |
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{ |
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return 1; |
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} |
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return strcmp (left->name, right->name); |
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} |
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|
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/* Topologically sort the graph (collapsing cycles), and propagates |
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time bottom up and flags top down. */ |
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|
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Sym ** |
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cg_assemble (void) |
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{ |
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Sym *parent, **time_sorted_syms, **top_sorted_syms; |
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unsigned int sym_index; |
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Arc *arc; |
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|
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/* Initialize various things: |
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Zero out child times. |
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Count self-recursive calls. |
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Indicate that nothing is on cycles. */ |
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for (parent = symtab.base; parent < symtab.limit; parent++) |
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{ |
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parent->cg.child_time = 0.0; |
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arc = arc_lookup (parent, parent); |
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if (arc && parent == arc->child) |
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{ |
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parent->ncalls -= arc->count; |
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parent->cg.self_calls = arc->count; |
|
} |
|
else |
|
{ |
|
parent->cg.self_calls = 0; |
|
} |
|
parent->cg.prop.fract = 0.0; |
|
parent->cg.prop.self = 0.0; |
|
parent->cg.prop.child = 0.0; |
|
parent->cg.print_flag = FALSE; |
|
parent->cg.top_order = DFN_NAN; |
|
parent->cg.cyc.num = 0; |
|
parent->cg.cyc.head = parent; |
|
parent->cg.cyc.next = 0; |
|
if (ignore_direct_calls) |
|
find_call (parent, parent->addr, (parent + 1)->addr); |
|
} |
|
|
|
/* Topologically order things. If any node is unnumbered, number |
|
it and any of its descendents. */ |
|
for (parent = symtab.base; parent < symtab.limit; parent++) |
|
{ |
|
if (parent->cg.top_order == DFN_NAN) |
|
cg_dfn (parent); |
|
} |
|
|
|
/* Link together nodes on the same cycle. */ |
|
cycle_link (); |
|
|
|
/* Sort the symbol table in reverse topological order. */ |
|
top_sorted_syms = (Sym **) xmalloc (symtab.len * sizeof (Sym *)); |
|
for (sym_index = 0; sym_index < symtab.len; ++sym_index) |
|
top_sorted_syms[sym_index] = &symtab.base[sym_index]; |
|
|
|
qsort (top_sorted_syms, symtab.len, sizeof (Sym *), cmp_topo); |
|
DBG (DFNDEBUG, |
|
printf ("[cg_assemble] topological sort listing\n"); |
|
for (sym_index = 0; sym_index < symtab.len; ++sym_index) |
|
{ |
|
printf ("[cg_assemble] "); |
|
printf ("%d:", top_sorted_syms[sym_index]->cg.top_order); |
|
print_name (top_sorted_syms[sym_index]); |
|
printf ("\n"); |
|
} |
|
); |
|
|
|
/* Starting from the topological top, propagate print flags to |
|
children. also, calculate propagation fractions. this happens |
|
before time propagation since time propagation uses the |
|
fractions. */ |
|
propagate_flags (top_sorted_syms); |
|
|
|
/* Starting from the topological bottom, propogate children times |
|
up to parents. */ |
|
cycle_time (); |
|
for (sym_index = 0; sym_index < symtab.len; ++sym_index) |
|
propagate_time (top_sorted_syms[sym_index]); |
|
|
|
free (top_sorted_syms); |
|
|
|
/* Now, sort by CG.PROP.SELF + CG.PROP.CHILD. Sorting both the regular |
|
function names and cycle headers. */ |
|
time_sorted_syms = (Sym **) xmalloc ((symtab.len + num_cycles) * sizeof (Sym *)); |
|
for (sym_index = 0; sym_index < symtab.len; sym_index++) |
|
time_sorted_syms[sym_index] = &symtab.base[sym_index]; |
|
|
|
for (sym_index = 1; sym_index <= num_cycles; sym_index++) |
|
time_sorted_syms[symtab.len + sym_index - 1] = &cycle_header[sym_index]; |
|
|
|
qsort (time_sorted_syms, symtab.len + num_cycles, sizeof (Sym *), |
|
cmp_total); |
|
|
|
for (sym_index = 0; sym_index < symtab.len + num_cycles; sym_index++) |
|
time_sorted_syms[sym_index]->cg.index = sym_index + 1; |
|
|
|
return time_sorted_syms; |
|
}
|
|
|