* config/msp430/msp430.h (LIB_SPEC): Remove automatic addition of
[official-gcc.git] / libgcc / libgcov-util.c
blobe46ae06ea5a5e6dfb15f51f2c660a0ea1b3e47b5
1 /* Utility functions for reading gcda files into in-memory
2 gcov_info structures and offline profile processing. */
3 /* Copyright (C) 2014 Free Software Foundation, Inc.
4 Contributed by Rong Xu <xur@google.com>.
6 This file is part of GCC.
8 GCC is free software; you can redistribute it and/or modify it under
9 the terms of the GNU General Public License as published by the Free
10 Software Foundation; either version 3, or (at your option) any later
11 version.
13 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
14 WARRANTY; without even the implied warranty of MERCHANTABILITY or
15 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
16 for more details.
18 Under Section 7 of GPL version 3, you are granted additional
19 permissions described in the GCC Runtime Library Exception, version
20 3.1, as published by the Free Software Foundation.
22 You should have received a copy of the GNU General Public License and
23 a copy of the GCC Runtime Library Exception along with this program;
24 see the files COPYING3 and COPYING.RUNTIME respectively. If not, see
25 <http://www.gnu.org/licenses/>. */
28 #define IN_GCOV_TOOL 1
30 #include "libgcov.h"
31 #include "intl.h"
32 #include "diagnostic.h"
33 #include "version.h"
34 #include "demangle.h"
36 /* Borrowed from basic-block.h. */
37 #define RDIV(X,Y) (((X) + (Y) / 2) / (Y))
39 extern gcov_position_t gcov_position();
40 extern int gcov_is_error();
42 /* Verbose mode for debug. */
43 static int verbose;
45 /* Set verbose flag. */
46 void gcov_set_verbose (void)
48 verbose = 1;
51 /* The following part is to read Gcda and reconstruct GCOV_INFO. */
53 #include "obstack.h"
54 #include <unistd.h>
55 #include <ftw.h>
57 static void tag_function (unsigned, unsigned);
58 static void tag_blocks (unsigned, unsigned);
59 static void tag_arcs (unsigned, unsigned);
60 static void tag_lines (unsigned, unsigned);
61 static void tag_counters (unsigned, unsigned);
62 static void tag_summary (unsigned, unsigned);
64 /* The gcov_info for the first module. */
65 static struct gcov_info *curr_gcov_info;
66 /* The gcov_info being processed. */
67 static struct gcov_info *gcov_info_head;
68 /* This variable contains all the functions in current module. */
69 static struct obstack fn_info;
70 /* The function being processed. */
71 static struct gcov_fn_info *curr_fn_info;
72 /* The number of functions seen so far. */
73 static unsigned num_fn_info;
74 /* This variable contains all the counters for current module. */
75 static int k_ctrs_mask[GCOV_COUNTERS];
76 /* The kind of counters that have been seen. */
77 static struct gcov_ctr_info k_ctrs[GCOV_COUNTERS];
78 /* Number of kind of counters that have been seen. */
79 static int k_ctrs_types;
81 /* Merge functions for counters. */
82 #define DEF_GCOV_COUNTER(COUNTER, NAME, FN_TYPE) __gcov_merge ## FN_TYPE,
83 static gcov_merge_fn ctr_merge_functions[GCOV_COUNTERS] = {
84 #include "gcov-counter.def"
86 #undef DEF_GCOV_COUNTER
88 /* Set the ctrs field in gcov_fn_info object FN_INFO. */
90 static void
91 set_fn_ctrs (struct gcov_fn_info *fn_info)
93 int j = 0, i;
95 for (i = 0; i < GCOV_COUNTERS; i++)
97 if (k_ctrs_mask[i] == 0)
98 continue;
99 fn_info->ctrs[j].num = k_ctrs[i].num;
100 fn_info->ctrs[j].values = k_ctrs[i].values;
101 j++;
103 if (k_ctrs_types == 0)
104 k_ctrs_types = j;
105 else
106 gcc_assert (j == k_ctrs_types);
109 /* For each tag in gcda file, we have an entry here.
110 TAG is the tag value; NAME is the tag name; and
111 PROC is the handler function. */
113 typedef struct tag_format
115 unsigned tag;
116 char const *name;
117 void (*proc) (unsigned, unsigned);
118 } tag_format_t;
120 /* Handler table for various Tags. */
122 static const tag_format_t tag_table[] =
124 {0, "NOP", NULL},
125 {0, "UNKNOWN", NULL},
126 {0, "COUNTERS", tag_counters},
127 {GCOV_TAG_FUNCTION, "FUNCTION", tag_function},
128 {GCOV_TAG_BLOCKS, "BLOCKS", tag_blocks},
129 {GCOV_TAG_ARCS, "ARCS", tag_arcs},
130 {GCOV_TAG_LINES, "LINES", tag_lines},
131 {GCOV_TAG_OBJECT_SUMMARY, "OBJECT_SUMMARY", tag_summary},
132 {GCOV_TAG_PROGRAM_SUMMARY, "PROGRAM_SUMMARY", tag_summary},
133 {0, NULL, NULL}
136 /* Handler for reading function tag. */
138 static void
139 tag_function (unsigned tag ATTRIBUTE_UNUSED, unsigned length ATTRIBUTE_UNUSED)
141 int i;
143 /* write out previous fn_info. */
144 if (num_fn_info)
146 set_fn_ctrs (curr_fn_info);
147 obstack_ptr_grow (&fn_info, curr_fn_info);
150 /* Here we over allocate a bit, using GCOV_COUNTERS instead of the actual active
151 counter types. */
152 curr_fn_info = (struct gcov_fn_info *) xcalloc (sizeof (struct gcov_fn_info)
153 + GCOV_COUNTERS * sizeof (struct gcov_ctr_info), 1);
155 for (i = 0; i < GCOV_COUNTERS; i++)
156 k_ctrs[i].num = 0;
157 k_ctrs_types = 0;
159 curr_fn_info->key = curr_gcov_info;
160 curr_fn_info->ident = gcov_read_unsigned ();
161 curr_fn_info->lineno_checksum = gcov_read_unsigned ();
162 curr_fn_info->cfg_checksum = gcov_read_unsigned ();
163 num_fn_info++;
165 if (verbose)
166 fnotice (stdout, "tag one function id=%d\n", curr_fn_info->ident);
169 /* Handler for reading block tag. */
171 static void
172 tag_blocks (unsigned tag ATTRIBUTE_UNUSED, unsigned length ATTRIBUTE_UNUSED)
174 /* TBD: gcov-tool currently does not handle gcno files. Assert here. */
175 gcc_unreachable ();
178 /* Handler for reading flow arc tag. */
180 static void
181 tag_arcs (unsigned tag ATTRIBUTE_UNUSED, unsigned length ATTRIBUTE_UNUSED)
183 /* TBD: gcov-tool currently does not handle gcno files. Assert here. */
184 gcc_unreachable ();
187 /* Handler for reading line tag. */
189 static void
190 tag_lines (unsigned tag ATTRIBUTE_UNUSED, unsigned length ATTRIBUTE_UNUSED)
192 /* TBD: gcov-tool currently does not handle gcno files. Assert here. */
193 gcc_unreachable ();
196 /* Handler for reading counters array tag with value as TAG and length of LENGTH. */
198 static void
199 tag_counters (unsigned tag, unsigned length)
201 unsigned n_counts = GCOV_TAG_COUNTER_NUM (length);
202 gcov_type *values;
203 unsigned ix;
204 unsigned tag_ix;
206 tag_ix = GCOV_COUNTER_FOR_TAG (tag);
207 gcc_assert (tag_ix < GCOV_COUNTERS);
208 k_ctrs_mask [tag_ix] = 1;
209 gcc_assert (k_ctrs[tag_ix].num == 0);
210 k_ctrs[tag_ix].num = n_counts;
212 k_ctrs[tag_ix].values = values = (gcov_type *) xmalloc (n_counts * sizeof (gcov_type));
213 gcc_assert (values);
215 for (ix = 0; ix != n_counts; ix++)
216 values[ix] = gcov_read_counter ();
219 /* Handler for reading summary tag. */
221 static void
222 tag_summary (unsigned tag ATTRIBUTE_UNUSED, unsigned length ATTRIBUTE_UNUSED)
224 struct gcov_summary summary;
226 gcov_read_summary (&summary);
229 /* This function is called at the end of reading a gcda file.
230 It flushes the contents in curr_fn_info to gcov_info object OBJ_INFO. */
232 static void
233 read_gcda_finalize (struct gcov_info *obj_info)
235 int i;
237 set_fn_ctrs (curr_fn_info);
238 obstack_ptr_grow (&fn_info, curr_fn_info);
240 /* We set the following fields: merge, n_functions, and functions. */
241 obj_info->n_functions = num_fn_info;
242 obj_info->functions = (const struct gcov_fn_info**) obstack_finish (&fn_info);
244 /* wrap all the counter array. */
245 for (i=0; i< GCOV_COUNTERS; i++)
247 if (k_ctrs_mask[i])
248 obj_info->merge[i] = ctr_merge_functions[i];
252 /* Read the content of a gcda file FILENAME, and return a gcov_info data structure.
253 Program level summary CURRENT_SUMMARY will also be updated. */
255 static struct gcov_info *
256 read_gcda_file (const char *filename)
258 unsigned tags[4];
259 unsigned depth = 0;
260 unsigned magic, version;
261 struct gcov_info *obj_info;
262 int i;
264 for (i=0; i< GCOV_COUNTERS; i++)
265 k_ctrs_mask[i] = 0;
266 k_ctrs_types = 0;
268 if (!gcov_open (filename))
270 fnotice (stderr, "%s:cannot open\n", filename);
271 return NULL;
274 /* Read magic. */
275 magic = gcov_read_unsigned ();
276 if (magic != GCOV_DATA_MAGIC)
278 fnotice (stderr, "%s:not a gcov data file\n", filename);
279 gcov_close ();
280 return NULL;
283 /* Read version. */
284 version = gcov_read_unsigned ();
285 if (version != GCOV_VERSION)
287 fnotice (stderr, "%s:incorrect gcov version %d vs %d \n", filename, version, GCOV_VERSION);
288 gcov_close ();
289 return NULL;
292 /* Instantiate a gcov_info object. */
293 curr_gcov_info = obj_info = (struct gcov_info *) xcalloc (sizeof (struct gcov_info) +
294 sizeof (struct gcov_ctr_info) * GCOV_COUNTERS, 1);
296 obj_info->version = version;
297 obstack_init (&fn_info);
298 num_fn_info = 0;
299 curr_fn_info = 0;
301 size_t len = strlen (filename) + 1;
302 char *str_dup = (char*) xmalloc (len);
304 memcpy (str_dup, filename, len);
305 obj_info->filename = str_dup;
308 /* Read stamp. */
309 obj_info->stamp = gcov_read_unsigned ();
311 while (1)
313 gcov_position_t base;
314 unsigned tag, length;
315 tag_format_t const *format;
316 unsigned tag_depth;
317 int error;
318 unsigned mask;
320 tag = gcov_read_unsigned ();
321 if (!tag)
322 break;
323 length = gcov_read_unsigned ();
324 base = gcov_position ();
325 mask = GCOV_TAG_MASK (tag) >> 1;
326 for (tag_depth = 4; mask; mask >>= 8)
328 if (((mask & 0xff) != 0xff))
330 warning (0, "%s:tag `%x' is invalid\n", filename, tag);
331 break;
333 tag_depth--;
335 for (format = tag_table; format->name; format++)
336 if (format->tag == tag)
337 goto found;
338 format = &tag_table[GCOV_TAG_IS_COUNTER (tag) ? 2 : 1];
339 found:;
340 if (tag)
342 if (depth && depth < tag_depth)
344 if (!GCOV_TAG_IS_SUBTAG (tags[depth - 1], tag))
345 warning (0, "%s:tag `%x' is incorrectly nested\n",
346 filename, tag);
348 depth = tag_depth;
349 tags[depth - 1] = tag;
352 if (format->proc)
354 unsigned long actual_length;
356 (*format->proc) (tag, length);
358 actual_length = gcov_position () - base;
359 if (actual_length > length)
360 warning (0, "%s:record size mismatch %lu bytes overread\n",
361 filename, actual_length - length);
362 else if (length > actual_length)
363 warning (0, "%s:record size mismatch %lu bytes unread\n",
364 filename, length - actual_length);
367 gcov_sync (base, length);
368 if ((error = gcov_is_error ()))
370 warning (0, error < 0 ? "%s:counter overflow at %lu\n" :
371 "%s:read error at %lu\n", filename,
372 (long unsigned) gcov_position ());
373 break;
377 read_gcda_finalize (obj_info);
378 gcov_close ();
380 return obj_info;
383 /* This will be called by ftw(). It opens and read a gcda file FILENAME.
384 Return a non-zero value to stop the tree walk. */
386 static int
387 ftw_read_file (const char *filename,
388 const struct stat *status ATTRIBUTE_UNUSED,
389 int type)
391 int filename_len;
392 int suffix_len;
393 struct gcov_info *obj_info;
395 /* Only read regular files. */
396 if (type != FTW_F)
397 return 0;
399 filename_len = strlen (filename);
400 suffix_len = strlen (GCOV_DATA_SUFFIX);
402 if (filename_len <= suffix_len)
403 return 0;
405 if (strcmp(filename + filename_len - suffix_len, GCOV_DATA_SUFFIX))
406 return 0;
408 if (verbose)
409 fnotice (stderr, "reading file: %s\n", filename);
411 obj_info = read_gcda_file (filename);
412 if (!obj_info)
413 return 0;
415 obj_info->next = gcov_info_head;
416 gcov_info_head = obj_info;
418 return 0;
421 /* Initializer for reading a profile dir. */
423 static inline void
424 read_profile_dir_init (void)
426 gcov_info_head = 0;
429 /* Driver for read a profile directory and convert into gcov_info list in memory.
430 Return NULL on error,
431 Return the head of gcov_info list on success. */
433 struct gcov_info *
434 gcov_read_profile_dir (const char* dir_name, int recompute_summary ATTRIBUTE_UNUSED)
436 char *pwd;
437 int ret;
439 read_profile_dir_init ();
441 if (access (dir_name, R_OK) != 0)
443 fnotice (stderr, "cannot access directory %s\n", dir_name);
444 return NULL;
446 pwd = getcwd (NULL, 0);
447 gcc_assert (pwd);
448 ret = chdir (dir_name);
449 if (ret !=0)
451 fnotice (stderr, "%s is not a directory\n", dir_name);
452 return NULL;
454 ftw (".", ftw_read_file, 50);
455 ret = chdir (pwd);
456 free (pwd);
459 return gcov_info_head;;
462 /* This part of the code is to merge profile counters. These
463 variables are set in merge_wrapper and to be used by
464 global function gcov_read_counter_mem() and gcov_get_merge_weight. */
466 /* We save the counter value address to this variable. */
467 static gcov_type *gcov_value_buf;
469 /* The number of counter values to be read by current merging. */
470 static gcov_unsigned_t gcov_value_buf_size;
472 /* The index of counter values being read. */
473 static gcov_unsigned_t gcov_value_buf_pos;
475 /* The weight of current merging. */
476 static unsigned gcov_merge_weight;
478 /* Read a counter value from gcov_value_buf array. */
480 gcov_type
481 gcov_read_counter_mem (void)
483 gcov_type ret;
484 gcc_assert (gcov_value_buf_pos < gcov_value_buf_size);
485 ret = *(gcov_value_buf + gcov_value_buf_pos);
486 ++gcov_value_buf_pos;
487 return ret;
490 /* Return the recorded merge weight. */
492 unsigned
493 gcov_get_merge_weight (void)
495 return gcov_merge_weight;
498 /* A wrapper function for merge functions. It sets up the
499 value buffer and weights and then calls the merge function. */
501 static void
502 merge_wrapper (gcov_merge_fn f, gcov_type *v1, gcov_unsigned_t n,
503 gcov_type *v2, unsigned w)
505 gcov_value_buf = v2;
506 gcov_value_buf_pos = 0;
507 gcov_value_buf_size = n;
508 gcov_merge_weight = w;
509 (*f) (v1, n);
512 /* Offline tool to manipulate profile data.
513 This tool targets on matched profiles. But it has some tolerance on
514 unmatched profiles.
515 When merging p1 to p2 (p2 is the dst),
516 * m.gcda in p1 but not in p2: append m.gcda to p2 with specified weight;
517 emit warning
518 * m.gcda in p2 but not in p1: keep m.gcda in p2 and multiply by
519 specified weight; emit warning.
520 * m.gcda in both p1 and p2:
521 ** p1->m.gcda->f checksum matches p2->m.gcda->f: simple merge.
522 ** p1->m.gcda->f checksum does not matches p2->m.gcda->f: keep
523 p2->m.gcda->f and
524 drop p1->m.gcda->f. A warning is emitted. */
526 /* Add INFO2's counter to INFO1, multiplying by weight W. */
528 static int
529 gcov_merge (struct gcov_info *info1, struct gcov_info *info2, int w)
531 unsigned f_ix;
532 unsigned n_functions = info1->n_functions;
533 int has_mismatch = 0;
535 gcc_assert (info2->n_functions == n_functions);
536 for (f_ix = 0; f_ix < n_functions; f_ix++)
538 unsigned t_ix;
539 const struct gcov_fn_info *gfi_ptr1 = info1->functions[f_ix];
540 const struct gcov_fn_info *gfi_ptr2 = info2->functions[f_ix];
541 const struct gcov_ctr_info *ci_ptr1, *ci_ptr2;
543 if (!gfi_ptr1 || gfi_ptr1->key != info1)
544 continue;
545 if (!gfi_ptr2 || gfi_ptr2->key != info2)
546 continue;
548 if (gfi_ptr1->cfg_checksum != gfi_ptr2->cfg_checksum)
550 fnotice (stderr, "in %s, cfg_checksum mismatch, skipping\n",
551 info1->filename);
552 has_mismatch = 1;
553 continue;
555 ci_ptr1 = gfi_ptr1->ctrs;
556 ci_ptr2 = gfi_ptr2->ctrs;
557 for (t_ix = 0; t_ix != GCOV_COUNTERS; t_ix++)
559 gcov_merge_fn merge1 = info1->merge[t_ix];
560 gcov_merge_fn merge2 = info2->merge[t_ix];
562 gcc_assert (merge1 == merge2);
563 if (!merge1)
564 continue;
565 gcc_assert (ci_ptr1->num == ci_ptr2->num);
566 merge_wrapper (merge1, ci_ptr1->values, ci_ptr1->num, ci_ptr2->values, w);
567 ci_ptr1++;
568 ci_ptr2++;
572 return has_mismatch;
575 /* Find and return the match gcov_info object for INFO from ARRAY.
576 SIZE is the length of ARRAY.
577 Return NULL if there is no match. */
579 static struct gcov_info *
580 find_match_gcov_info (struct gcov_info **array, int size, struct gcov_info *info)
582 struct gcov_info *gi_ptr;
583 struct gcov_info *ret = NULL;
584 int i;
586 for (i = 0; i < size; i++)
588 gi_ptr = array[i];
589 if (gi_ptr == 0)
590 continue;
591 if (!strcmp (gi_ptr->filename, info->filename))
593 ret = gi_ptr;
594 array[i] = 0;
595 break;
599 if (ret && ret->n_functions != info->n_functions)
601 fnotice (stderr, "mismatched profiles in %s (%d functions"
602 " vs %d functions)\n",
603 ret->filename,
604 ret->n_functions,
605 info->n_functions);
606 ret = NULL;
608 return ret;
611 /* Merge the list of gcov_info objects from SRC_PROFILE to TGT_PROFILE.
612 Return 0 on success: without mismatch.
613 Reutrn 1 on error. */
616 gcov_profile_merge (struct gcov_info *tgt_profile, struct gcov_info *src_profile,
617 int w1, int w2)
619 struct gcov_info *gi_ptr;
620 struct gcov_info **tgt_infos;
621 struct gcov_info *tgt_tail;
622 struct gcov_info **in_src_not_tgt;
623 unsigned tgt_cnt = 0, src_cnt = 0;
624 unsigned unmatch_info_cnt = 0;
625 unsigned int i;
627 for (gi_ptr = tgt_profile; gi_ptr; gi_ptr = gi_ptr->next)
628 tgt_cnt++;
629 for (gi_ptr = src_profile; gi_ptr; gi_ptr = gi_ptr->next)
630 src_cnt++;
631 tgt_infos = (struct gcov_info **) xmalloc (sizeof (struct gcov_info *)
632 * tgt_cnt);
633 gcc_assert (tgt_infos);
634 in_src_not_tgt = (struct gcov_info **) xmalloc (sizeof (struct gcov_info *)
635 * src_cnt);
636 gcc_assert (in_src_not_tgt);
638 for (gi_ptr = tgt_profile, i = 0; gi_ptr; gi_ptr = gi_ptr->next, i++)
639 tgt_infos[i] = gi_ptr;
641 tgt_tail = tgt_infos[tgt_cnt - 1];
643 /* First pass on tgt_profile, we multiply w1 to all counters. */
644 if (w1 > 1)
646 for (i = 0; i < tgt_cnt; i++)
647 gcov_merge (tgt_infos[i], tgt_infos[i], w1-1);
650 /* Second pass, add src_profile to the tgt_profile. */
651 for (gi_ptr = src_profile; gi_ptr; gi_ptr = gi_ptr->next)
653 struct gcov_info *gi_ptr1;
655 gi_ptr1 = find_match_gcov_info (tgt_infos, tgt_cnt, gi_ptr);
656 if (gi_ptr1 == NULL)
658 in_src_not_tgt[unmatch_info_cnt++] = gi_ptr;
659 continue;
661 gcov_merge (gi_ptr1, gi_ptr, w2);
664 /* For modules in src but not in tgt. We adjust the counter and append. */
665 for (i = 0; i < unmatch_info_cnt; i++)
667 gi_ptr = in_src_not_tgt[i];
668 gcov_merge (gi_ptr, gi_ptr, w2 - 1);
669 tgt_tail->next = gi_ptr;
670 tgt_tail = gi_ptr;
673 return 0;
676 typedef gcov_type (*counter_op_fn) (gcov_type, void*, void*);
678 /* Performing FN upon arc counters. */
680 static void
681 __gcov_add_counter_op (gcov_type *counters, unsigned n_counters,
682 counter_op_fn fn, void *data1, void *data2)
684 for (; n_counters; counters++, n_counters--)
686 gcov_type val = *counters;
687 *counters = fn(val, data1, data2);
691 /* Performing FN upon ior counters. */
693 static void
694 __gcov_ior_counter_op (gcov_type *counters ATTRIBUTE_UNUSED,
695 unsigned n_counters ATTRIBUTE_UNUSED,
696 counter_op_fn fn ATTRIBUTE_UNUSED,
697 void *data1 ATTRIBUTE_UNUSED,
698 void *data2 ATTRIBUTE_UNUSED)
700 /* Do nothing. */
703 /* Performing FN upon time-profile counters. */
705 static void
706 __gcov_time_profile_counter_op (gcov_type *counters ATTRIBUTE_UNUSED,
707 unsigned n_counters ATTRIBUTE_UNUSED,
708 counter_op_fn fn ATTRIBUTE_UNUSED,
709 void *data1 ATTRIBUTE_UNUSED,
710 void *data2 ATTRIBUTE_UNUSED)
712 /* Do nothing. */
715 /* Performaing FN upon delta counters. */
717 static void
718 __gcov_delta_counter_op (gcov_type *counters, unsigned n_counters,
719 counter_op_fn fn, void *data1, void *data2)
721 unsigned i, n_measures;
723 gcc_assert (!(n_counters % 4));
724 n_measures = n_counters / 4;
725 for (i = 0; i < n_measures; i++, counters += 4)
727 counters[2] = fn (counters[2], data1, data2);
728 counters[3] = fn (counters[3], data1, data2);
732 /* Performing FN upon single counters. */
734 static void
735 __gcov_single_counter_op (gcov_type *counters, unsigned n_counters,
736 counter_op_fn fn, void *data1, void *data2)
738 unsigned i, n_measures;
740 gcc_assert (!(n_counters % 3));
741 n_measures = n_counters / 3;
742 for (i = 0; i < n_measures; i++, counters += 3)
744 counters[1] = fn (counters[1], data1, data2);
745 counters[2] = fn (counters[2], data1, data2);
749 /* Scaling the counter value V by multiplying *(float*) DATA1. */
751 static gcov_type
752 fp_scale (gcov_type v, void *data1, void *data2 ATTRIBUTE_UNUSED)
754 float f = *(float *) data1;
755 return (gcov_type) (v * f);
758 /* Scaling the counter value V by multiplying DATA2/DATA1. */
760 static gcov_type
761 int_scale (gcov_type v, void *data1, void *data2)
763 int n = *(int *) data1;
764 int d = *(int *) data2;
765 return (gcov_type) ( RDIV (v,d) * n);
768 /* Type of function used to process counters. */
769 typedef void (*gcov_counter_fn) (gcov_type *, gcov_unsigned_t,
770 counter_op_fn, void *, void *);
772 /* Function array to process profile counters. */
773 #define DEF_GCOV_COUNTER(COUNTER, NAME, FN_TYPE) \
774 __gcov ## FN_TYPE ## _counter_op,
775 static gcov_counter_fn ctr_functions[GCOV_COUNTERS] = {
776 #include "gcov-counter.def"
778 #undef DEF_GCOV_COUNTER
780 /* Driver for scaling profile counters. */
783 gcov_profile_scale (struct gcov_info *profile, float scale_factor, int n, int d)
785 struct gcov_info *gi_ptr;
786 unsigned f_ix;
788 if (verbose)
789 fnotice (stdout, "scale_factor is %f or %d/%d\n", scale_factor, n, d);
791 /* Scaling the counters. */
792 for (gi_ptr = profile; gi_ptr; gi_ptr = gi_ptr->next)
793 for (f_ix = 0; f_ix < gi_ptr->n_functions; f_ix++)
795 unsigned t_ix;
796 const struct gcov_fn_info *gfi_ptr = gi_ptr->functions[f_ix];
797 const struct gcov_ctr_info *ci_ptr;
799 if (!gfi_ptr || gfi_ptr->key != gi_ptr)
800 continue;
802 ci_ptr = gfi_ptr->ctrs;
803 for (t_ix = 0; t_ix != GCOV_COUNTERS; t_ix++)
805 gcov_merge_fn merge = gi_ptr->merge[t_ix];
807 if (!merge)
808 continue;
809 if (d == 0)
810 (*ctr_functions[t_ix]) (ci_ptr->values, ci_ptr->num,
811 fp_scale, &scale_factor, NULL);
812 else
813 (*ctr_functions[t_ix]) (ci_ptr->values, ci_ptr->num,
814 int_scale, &n, &d);
815 ci_ptr++;
819 return 0;
822 /* Driver to normalize profile counters. */
825 gcov_profile_normalize (struct gcov_info *profile, gcov_type max_val)
827 struct gcov_info *gi_ptr;
828 gcov_type curr_max_val = 0;
829 unsigned f_ix;
830 unsigned int i;
831 float scale_factor;
833 /* Find the largest count value. */
834 for (gi_ptr = profile; gi_ptr; gi_ptr = gi_ptr->next)
835 for (f_ix = 0; f_ix < gi_ptr->n_functions; f_ix++)
837 unsigned t_ix;
838 const struct gcov_fn_info *gfi_ptr = gi_ptr->functions[f_ix];
839 const struct gcov_ctr_info *ci_ptr;
841 if (!gfi_ptr || gfi_ptr->key != gi_ptr)
842 continue;
844 ci_ptr = gfi_ptr->ctrs;
845 for (t_ix = 0; t_ix < 1; t_ix++)
847 for (i = 0; i < ci_ptr->num; i++)
848 if (ci_ptr->values[i] > curr_max_val)
849 curr_max_val = ci_ptr->values[i];
850 ci_ptr++;
854 scale_factor = (float)max_val / curr_max_val;
855 if (verbose)
856 fnotice (stdout, "max_val is %lld\n", (long long) curr_max_val);
858 return gcov_profile_scale (profile, scale_factor, 0, 0);