libgcov-util.c revision 1.1.1.9 1 1.1 mrg /* Utility functions for reading gcda files into in-memory
2 1.1 mrg gcov_info structures and offline profile processing. */
3 1.1.1.9 mrg /* Copyright (C) 2014-2022 Free Software Foundation, Inc.
4 1.1 mrg Contributed by Rong Xu <xur (at) google.com>.
5 1.1 mrg
6 1.1 mrg This file is part of GCC.
7 1.1 mrg
8 1.1 mrg GCC is free software; you can redistribute it and/or modify it under
9 1.1 mrg the terms of the GNU General Public License as published by the Free
10 1.1 mrg Software Foundation; either version 3, or (at your option) any later
11 1.1 mrg version.
12 1.1 mrg
13 1.1 mrg GCC is distributed in the hope that it will be useful, but WITHOUT ANY
14 1.1 mrg WARRANTY; without even the implied warranty of MERCHANTABILITY or
15 1.1 mrg FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
16 1.1 mrg for more details.
17 1.1 mrg
18 1.1 mrg Under Section 7 of GPL version 3, you are granted additional
19 1.1 mrg permissions described in the GCC Runtime Library Exception, version
20 1.1 mrg 3.1, as published by the Free Software Foundation.
21 1.1 mrg
22 1.1 mrg You should have received a copy of the GNU General Public License and
23 1.1 mrg a copy of the GCC Runtime Library Exception along with this program;
24 1.1 mrg see the files COPYING3 and COPYING.RUNTIME respectively. If not, see
25 1.1 mrg <http://www.gnu.org/licenses/>. */
26 1.1 mrg
27 1.1 mrg
28 1.1 mrg #define IN_GCOV_TOOL 1
29 1.1 mrg
30 1.1 mrg #include "libgcov.h"
31 1.1 mrg #include "intl.h"
32 1.1 mrg #include "diagnostic.h"
33 1.1 mrg #include "version.h"
34 1.1 mrg #include "demangle.h"
35 1.1.1.7 mrg #include "gcov-io.h"
36 1.1 mrg
37 1.1 mrg /* Borrowed from basic-block.h. */
38 1.1 mrg #define RDIV(X,Y) (((X) + (Y) / 2) / (Y))
39 1.1 mrg
40 1.1 mrg extern gcov_position_t gcov_position();
41 1.1 mrg extern int gcov_is_error();
42 1.1 mrg
43 1.1 mrg /* Verbose mode for debug. */
44 1.1 mrg static int verbose;
45 1.1 mrg
46 1.1 mrg /* Set verbose flag. */
47 1.1 mrg void gcov_set_verbose (void)
48 1.1 mrg {
49 1.1 mrg verbose = 1;
50 1.1 mrg }
51 1.1 mrg
52 1.1 mrg /* The following part is to read Gcda and reconstruct GCOV_INFO. */
53 1.1 mrg
54 1.1 mrg #include "obstack.h"
55 1.1 mrg #include <unistd.h>
56 1.1 mrg #ifdef HAVE_FTW_H
57 1.1 mrg #include <ftw.h>
58 1.1 mrg #endif
59 1.1 mrg
60 1.1.1.9 mrg static void tag_function (unsigned, int);
61 1.1.1.9 mrg static void tag_blocks (unsigned, int);
62 1.1.1.9 mrg static void tag_arcs (unsigned, int);
63 1.1.1.9 mrg static void tag_lines (unsigned, int);
64 1.1.1.9 mrg static void tag_counters (unsigned, int);
65 1.1.1.9 mrg static void tag_summary (unsigned, int);
66 1.1 mrg
67 1.1 mrg /* The gcov_info for the first module. */
68 1.1 mrg static struct gcov_info *curr_gcov_info;
69 1.1 mrg /* The gcov_info being processed. */
70 1.1 mrg static struct gcov_info *gcov_info_head;
71 1.1 mrg /* This variable contains all the functions in current module. */
72 1.1 mrg static struct obstack fn_info;
73 1.1 mrg /* The function being processed. */
74 1.1 mrg static struct gcov_fn_info *curr_fn_info;
75 1.1 mrg /* The number of functions seen so far. */
76 1.1 mrg static unsigned num_fn_info;
77 1.1 mrg /* This variable contains all the counters for current module. */
78 1.1 mrg static int k_ctrs_mask[GCOV_COUNTERS];
79 1.1 mrg /* The kind of counters that have been seen. */
80 1.1 mrg static struct gcov_ctr_info k_ctrs[GCOV_COUNTERS];
81 1.1 mrg /* Number of kind of counters that have been seen. */
82 1.1 mrg static int k_ctrs_types;
83 1.1 mrg
84 1.1 mrg /* Merge functions for counters. */
85 1.1 mrg #define DEF_GCOV_COUNTER(COUNTER, NAME, FN_TYPE) __gcov_merge ## FN_TYPE,
86 1.1 mrg static gcov_merge_fn ctr_merge_functions[GCOV_COUNTERS] = {
87 1.1 mrg #include "gcov-counter.def"
88 1.1 mrg };
89 1.1 mrg #undef DEF_GCOV_COUNTER
90 1.1 mrg
91 1.1 mrg /* Set the ctrs field in gcov_fn_info object FN_INFO. */
92 1.1 mrg
93 1.1 mrg static void
94 1.1 mrg set_fn_ctrs (struct gcov_fn_info *fn_info)
95 1.1 mrg {
96 1.1 mrg int j = 0, i;
97 1.1 mrg
98 1.1 mrg for (i = 0; i < GCOV_COUNTERS; i++)
99 1.1 mrg {
100 1.1 mrg if (k_ctrs_mask[i] == 0)
101 1.1 mrg continue;
102 1.1 mrg fn_info->ctrs[j].num = k_ctrs[i].num;
103 1.1 mrg fn_info->ctrs[j].values = k_ctrs[i].values;
104 1.1 mrg j++;
105 1.1 mrg }
106 1.1 mrg if (k_ctrs_types == 0)
107 1.1 mrg k_ctrs_types = j;
108 1.1 mrg else
109 1.1 mrg gcc_assert (j == k_ctrs_types);
110 1.1 mrg }
111 1.1 mrg
112 1.1 mrg /* For each tag in gcda file, we have an entry here.
113 1.1 mrg TAG is the tag value; NAME is the tag name; and
114 1.1 mrg PROC is the handler function. */
115 1.1 mrg
116 1.1 mrg typedef struct tag_format
117 1.1 mrg {
118 1.1 mrg unsigned tag;
119 1.1 mrg char const *name;
120 1.1.1.9 mrg void (*proc) (unsigned, int);
121 1.1 mrg } tag_format_t;
122 1.1 mrg
123 1.1 mrg /* Handler table for various Tags. */
124 1.1 mrg
125 1.1 mrg static const tag_format_t tag_table[] =
126 1.1 mrg {
127 1.1 mrg {0, "NOP", NULL},
128 1.1 mrg {0, "UNKNOWN", NULL},
129 1.1 mrg {0, "COUNTERS", tag_counters},
130 1.1 mrg {GCOV_TAG_FUNCTION, "FUNCTION", tag_function},
131 1.1 mrg {GCOV_TAG_BLOCKS, "BLOCKS", tag_blocks},
132 1.1 mrg {GCOV_TAG_ARCS, "ARCS", tag_arcs},
133 1.1 mrg {GCOV_TAG_LINES, "LINES", tag_lines},
134 1.1 mrg {GCOV_TAG_OBJECT_SUMMARY, "OBJECT_SUMMARY", tag_summary},
135 1.1 mrg {0, NULL, NULL}
136 1.1 mrg };
137 1.1 mrg
138 1.1 mrg /* Handler for reading function tag. */
139 1.1 mrg
140 1.1 mrg static void
141 1.1.1.9 mrg tag_function (unsigned tag ATTRIBUTE_UNUSED, int length ATTRIBUTE_UNUSED)
142 1.1 mrg {
143 1.1 mrg int i;
144 1.1 mrg
145 1.1 mrg /* write out previous fn_info. */
146 1.1 mrg if (num_fn_info)
147 1.1 mrg {
148 1.1 mrg set_fn_ctrs (curr_fn_info);
149 1.1 mrg obstack_ptr_grow (&fn_info, curr_fn_info);
150 1.1 mrg }
151 1.1 mrg
152 1.1 mrg /* Here we over allocate a bit, using GCOV_COUNTERS instead of the actual active
153 1.1 mrg counter types. */
154 1.1 mrg curr_fn_info = (struct gcov_fn_info *) xcalloc (sizeof (struct gcov_fn_info)
155 1.1 mrg + GCOV_COUNTERS * sizeof (struct gcov_ctr_info), 1);
156 1.1 mrg
157 1.1 mrg for (i = 0; i < GCOV_COUNTERS; i++)
158 1.1 mrg k_ctrs[i].num = 0;
159 1.1 mrg k_ctrs_types = 0;
160 1.1 mrg
161 1.1 mrg curr_fn_info->key = curr_gcov_info;
162 1.1 mrg curr_fn_info->ident = gcov_read_unsigned ();
163 1.1 mrg curr_fn_info->lineno_checksum = gcov_read_unsigned ();
164 1.1 mrg curr_fn_info->cfg_checksum = gcov_read_unsigned ();
165 1.1 mrg num_fn_info++;
166 1.1 mrg
167 1.1 mrg if (verbose)
168 1.1 mrg fnotice (stdout, "tag one function id=%d\n", curr_fn_info->ident);
169 1.1 mrg }
170 1.1 mrg
171 1.1 mrg /* Handler for reading block tag. */
172 1.1 mrg
173 1.1 mrg static void
174 1.1.1.9 mrg tag_blocks (unsigned tag ATTRIBUTE_UNUSED, int length ATTRIBUTE_UNUSED)
175 1.1 mrg {
176 1.1 mrg /* TBD: gcov-tool currently does not handle gcno files. Assert here. */
177 1.1 mrg gcc_unreachable ();
178 1.1 mrg }
179 1.1 mrg
180 1.1 mrg /* Handler for reading flow arc tag. */
181 1.1 mrg
182 1.1 mrg static void
183 1.1.1.9 mrg tag_arcs (unsigned tag ATTRIBUTE_UNUSED, int length ATTRIBUTE_UNUSED)
184 1.1 mrg {
185 1.1 mrg /* TBD: gcov-tool currently does not handle gcno files. Assert here. */
186 1.1 mrg gcc_unreachable ();
187 1.1 mrg }
188 1.1 mrg
189 1.1 mrg /* Handler for reading line tag. */
190 1.1 mrg
191 1.1 mrg static void
192 1.1.1.9 mrg tag_lines (unsigned tag ATTRIBUTE_UNUSED, int length ATTRIBUTE_UNUSED)
193 1.1 mrg {
194 1.1 mrg /* TBD: gcov-tool currently does not handle gcno files. Assert here. */
195 1.1 mrg gcc_unreachable ();
196 1.1 mrg }
197 1.1 mrg
198 1.1 mrg /* Handler for reading counters array tag with value as TAG and length of LENGTH. */
199 1.1 mrg
200 1.1 mrg static void
201 1.1.1.9 mrg tag_counters (unsigned tag, int length)
202 1.1 mrg {
203 1.1.1.9 mrg unsigned n_counts = GCOV_TAG_COUNTER_NUM (abs (length));
204 1.1 mrg gcov_type *values;
205 1.1 mrg unsigned ix;
206 1.1 mrg unsigned tag_ix;
207 1.1 mrg
208 1.1 mrg tag_ix = GCOV_COUNTER_FOR_TAG (tag);
209 1.1 mrg gcc_assert (tag_ix < GCOV_COUNTERS);
210 1.1 mrg k_ctrs_mask [tag_ix] = 1;
211 1.1 mrg gcc_assert (k_ctrs[tag_ix].num == 0);
212 1.1 mrg k_ctrs[tag_ix].num = n_counts;
213 1.1 mrg
214 1.1.1.9 mrg k_ctrs[tag_ix].values = values = (gcov_type *) xcalloc (sizeof (gcov_type),
215 1.1.1.9 mrg n_counts);
216 1.1 mrg gcc_assert (values);
217 1.1 mrg
218 1.1.1.9 mrg if (length > 0)
219 1.1.1.9 mrg for (ix = 0; ix != n_counts; ix++)
220 1.1.1.9 mrg values[ix] = gcov_read_counter ();
221 1.1 mrg }
222 1.1 mrg
223 1.1 mrg /* Handler for reading summary tag. */
224 1.1 mrg
225 1.1 mrg static void
226 1.1.1.9 mrg tag_summary (unsigned tag ATTRIBUTE_UNUSED, int ATTRIBUTE_UNUSED)
227 1.1 mrg {
228 1.1.1.9 mrg gcov_read_summary (&curr_gcov_info->summary);
229 1.1 mrg }
230 1.1 mrg
231 1.1 mrg /* This function is called at the end of reading a gcda file.
232 1.1 mrg It flushes the contents in curr_fn_info to gcov_info object OBJ_INFO. */
233 1.1 mrg
234 1.1 mrg static void
235 1.1 mrg read_gcda_finalize (struct gcov_info *obj_info)
236 1.1 mrg {
237 1.1 mrg int i;
238 1.1 mrg
239 1.1 mrg set_fn_ctrs (curr_fn_info);
240 1.1 mrg obstack_ptr_grow (&fn_info, curr_fn_info);
241 1.1 mrg
242 1.1.1.7 mrg /* We set the following fields: merge, n_functions, functions
243 1.1.1.7 mrg and summary. */
244 1.1 mrg obj_info->n_functions = num_fn_info;
245 1.1.1.9 mrg obj_info->functions = (struct gcov_fn_info**) obstack_finish (&fn_info);
246 1.1 mrg
247 1.1 mrg /* wrap all the counter array. */
248 1.1 mrg for (i=0; i< GCOV_COUNTERS; i++)
249 1.1 mrg {
250 1.1 mrg if (k_ctrs_mask[i])
251 1.1 mrg obj_info->merge[i] = ctr_merge_functions[i];
252 1.1 mrg }
253 1.1 mrg }
254 1.1 mrg
255 1.1 mrg /* Read the content of a gcda file FILENAME, and return a gcov_info data structure.
256 1.1 mrg Program level summary CURRENT_SUMMARY will also be updated. */
257 1.1 mrg
258 1.1 mrg static struct gcov_info *
259 1.1 mrg read_gcda_file (const char *filename)
260 1.1 mrg {
261 1.1 mrg unsigned tags[4];
262 1.1 mrg unsigned depth = 0;
263 1.1.1.8 mrg unsigned version;
264 1.1 mrg struct gcov_info *obj_info;
265 1.1 mrg int i;
266 1.1 mrg
267 1.1 mrg for (i=0; i< GCOV_COUNTERS; i++)
268 1.1 mrg k_ctrs_mask[i] = 0;
269 1.1 mrg k_ctrs_types = 0;
270 1.1 mrg
271 1.1 mrg if (!gcov_open (filename))
272 1.1 mrg {
273 1.1 mrg fnotice (stderr, "%s:cannot open\n", filename);
274 1.1 mrg return NULL;
275 1.1 mrg }
276 1.1 mrg
277 1.1 mrg /* Read magic. */
278 1.1.1.8 mrg if (!gcov_magic (gcov_read_unsigned (), GCOV_DATA_MAGIC))
279 1.1 mrg {
280 1.1 mrg fnotice (stderr, "%s:not a gcov data file\n", filename);
281 1.1 mrg gcov_close ();
282 1.1 mrg return NULL;
283 1.1 mrg }
284 1.1 mrg
285 1.1 mrg /* Read version. */
286 1.1 mrg version = gcov_read_unsigned ();
287 1.1 mrg if (version != GCOV_VERSION)
288 1.1 mrg {
289 1.1 mrg fnotice (stderr, "%s:incorrect gcov version %d vs %d \n", filename, version, GCOV_VERSION);
290 1.1 mrg gcov_close ();
291 1.1 mrg return NULL;
292 1.1 mrg }
293 1.1 mrg
294 1.1 mrg /* Instantiate a gcov_info object. */
295 1.1 mrg curr_gcov_info = obj_info = (struct gcov_info *) xcalloc (sizeof (struct gcov_info) +
296 1.1 mrg sizeof (struct gcov_ctr_info) * GCOV_COUNTERS, 1);
297 1.1 mrg
298 1.1 mrg obj_info->version = version;
299 1.1 mrg obstack_init (&fn_info);
300 1.1 mrg num_fn_info = 0;
301 1.1 mrg curr_fn_info = 0;
302 1.1 mrg {
303 1.1 mrg size_t len = strlen (filename) + 1;
304 1.1 mrg char *str_dup = (char*) xmalloc (len);
305 1.1 mrg
306 1.1 mrg memcpy (str_dup, filename, len);
307 1.1 mrg obj_info->filename = str_dup;
308 1.1 mrg }
309 1.1 mrg
310 1.1 mrg /* Read stamp. */
311 1.1 mrg obj_info->stamp = gcov_read_unsigned ();
312 1.1 mrg
313 1.1.1.9 mrg /* Read checksum. */
314 1.1.1.9 mrg obj_info->checksum = gcov_read_unsigned ();
315 1.1.1.9 mrg
316 1.1 mrg while (1)
317 1.1 mrg {
318 1.1 mrg gcov_position_t base;
319 1.1 mrg unsigned tag, length;
320 1.1 mrg tag_format_t const *format;
321 1.1 mrg unsigned tag_depth;
322 1.1 mrg int error;
323 1.1 mrg unsigned mask;
324 1.1 mrg
325 1.1 mrg tag = gcov_read_unsigned ();
326 1.1 mrg if (!tag)
327 1.1 mrg break;
328 1.1.1.9 mrg int read_length = (int)gcov_read_unsigned ();
329 1.1.1.9 mrg length = read_length > 0 ? read_length : 0;
330 1.1 mrg base = gcov_position ();
331 1.1 mrg mask = GCOV_TAG_MASK (tag) >> 1;
332 1.1 mrg for (tag_depth = 4; mask; mask >>= 8)
333 1.1 mrg {
334 1.1 mrg if (((mask & 0xff) != 0xff))
335 1.1 mrg {
336 1.1.1.8 mrg warning (0, "%s:tag %qx is invalid", filename, tag);
337 1.1 mrg break;
338 1.1 mrg }
339 1.1 mrg tag_depth--;
340 1.1 mrg }
341 1.1 mrg for (format = tag_table; format->name; format++)
342 1.1 mrg if (format->tag == tag)
343 1.1 mrg goto found;
344 1.1 mrg format = &tag_table[GCOV_TAG_IS_COUNTER (tag) ? 2 : 1];
345 1.1 mrg found:;
346 1.1 mrg if (tag)
347 1.1 mrg {
348 1.1 mrg if (depth && depth < tag_depth)
349 1.1 mrg {
350 1.1 mrg if (!GCOV_TAG_IS_SUBTAG (tags[depth - 1], tag))
351 1.1.1.8 mrg warning (0, "%s:tag %qx is incorrectly nested",
352 1.1 mrg filename, tag);
353 1.1 mrg }
354 1.1 mrg depth = tag_depth;
355 1.1 mrg tags[depth - 1] = tag;
356 1.1 mrg }
357 1.1 mrg
358 1.1 mrg if (format->proc)
359 1.1 mrg {
360 1.1 mrg unsigned long actual_length;
361 1.1 mrg
362 1.1.1.9 mrg (*format->proc) (tag, read_length);
363 1.1 mrg
364 1.1 mrg actual_length = gcov_position () - base;
365 1.1 mrg if (actual_length > length)
366 1.1.1.8 mrg warning (0, "%s:record size mismatch %lu bytes overread",
367 1.1 mrg filename, actual_length - length);
368 1.1 mrg else if (length > actual_length)
369 1.1.1.8 mrg warning (0, "%s:record size mismatch %lu bytes unread",
370 1.1 mrg filename, length - actual_length);
371 1.1 mrg }
372 1.1 mrg
373 1.1 mrg gcov_sync (base, length);
374 1.1 mrg if ((error = gcov_is_error ()))
375 1.1 mrg {
376 1.1.1.8 mrg warning (0, error < 0 ? "%s:counter overflow at %lu" :
377 1.1.1.8 mrg "%s:read error at %lu", filename,
378 1.1 mrg (long unsigned) gcov_position ());
379 1.1 mrg break;
380 1.1 mrg }
381 1.1 mrg }
382 1.1 mrg
383 1.1 mrg read_gcda_finalize (obj_info);
384 1.1 mrg gcov_close ();
385 1.1 mrg
386 1.1 mrg return obj_info;
387 1.1 mrg }
388 1.1 mrg
389 1.1 mrg #ifdef HAVE_FTW_H
390 1.1 mrg /* This will be called by ftw(). It opens and read a gcda file FILENAME.
391 1.1 mrg Return a non-zero value to stop the tree walk. */
392 1.1 mrg
393 1.1 mrg static int
394 1.1 mrg ftw_read_file (const char *filename,
395 1.1 mrg const struct stat *status ATTRIBUTE_UNUSED,
396 1.1 mrg int type)
397 1.1 mrg {
398 1.1 mrg int filename_len;
399 1.1 mrg int suffix_len;
400 1.1 mrg struct gcov_info *obj_info;
401 1.1 mrg
402 1.1 mrg /* Only read regular files. */
403 1.1 mrg if (type != FTW_F)
404 1.1 mrg return 0;
405 1.1 mrg
406 1.1 mrg filename_len = strlen (filename);
407 1.1 mrg suffix_len = strlen (GCOV_DATA_SUFFIX);
408 1.1 mrg
409 1.1 mrg if (filename_len <= suffix_len)
410 1.1 mrg return 0;
411 1.1 mrg
412 1.1 mrg if (strcmp(filename + filename_len - suffix_len, GCOV_DATA_SUFFIX))
413 1.1 mrg return 0;
414 1.1 mrg
415 1.1 mrg if (verbose)
416 1.1 mrg fnotice (stderr, "reading file: %s\n", filename);
417 1.1 mrg
418 1.1 mrg obj_info = read_gcda_file (filename);
419 1.1 mrg if (!obj_info)
420 1.1 mrg return 0;
421 1.1 mrg
422 1.1 mrg obj_info->next = gcov_info_head;
423 1.1 mrg gcov_info_head = obj_info;
424 1.1 mrg
425 1.1 mrg return 0;
426 1.1 mrg }
427 1.1 mrg #endif
428 1.1 mrg
429 1.1 mrg /* Initializer for reading a profile dir. */
430 1.1 mrg
431 1.1 mrg static inline void
432 1.1 mrg read_profile_dir_init (void)
433 1.1 mrg {
434 1.1 mrg gcov_info_head = 0;
435 1.1 mrg }
436 1.1 mrg
437 1.1 mrg /* Driver for read a profile directory and convert into gcov_info list in memory.
438 1.1 mrg Return NULL on error,
439 1.1 mrg Return the head of gcov_info list on success. */
440 1.1 mrg
441 1.1 mrg struct gcov_info *
442 1.1 mrg gcov_read_profile_dir (const char* dir_name, int recompute_summary ATTRIBUTE_UNUSED)
443 1.1 mrg {
444 1.1 mrg char *pwd;
445 1.1 mrg int ret;
446 1.1 mrg
447 1.1 mrg read_profile_dir_init ();
448 1.1 mrg
449 1.1 mrg if (access (dir_name, R_OK) != 0)
450 1.1 mrg {
451 1.1 mrg fnotice (stderr, "cannot access directory %s\n", dir_name);
452 1.1 mrg return NULL;
453 1.1 mrg }
454 1.1 mrg pwd = getcwd (NULL, 0);
455 1.1 mrg gcc_assert (pwd);
456 1.1 mrg ret = chdir (dir_name);
457 1.1 mrg if (ret !=0)
458 1.1 mrg {
459 1.1 mrg fnotice (stderr, "%s is not a directory\n", dir_name);
460 1.1 mrg return NULL;
461 1.1 mrg }
462 1.1 mrg #ifdef HAVE_FTW_H
463 1.1 mrg ftw (".", ftw_read_file, 50);
464 1.1 mrg #endif
465 1.1.1.8 mrg chdir (pwd);
466 1.1 mrg free (pwd);
467 1.1 mrg
468 1.1 mrg return gcov_info_head;;
469 1.1 mrg }
470 1.1 mrg
471 1.1 mrg /* This part of the code is to merge profile counters. These
472 1.1 mrg variables are set in merge_wrapper and to be used by
473 1.1 mrg global function gcov_read_counter_mem() and gcov_get_merge_weight. */
474 1.1 mrg
475 1.1 mrg /* We save the counter value address to this variable. */
476 1.1 mrg static gcov_type *gcov_value_buf;
477 1.1 mrg
478 1.1 mrg /* The number of counter values to be read by current merging. */
479 1.1 mrg static gcov_unsigned_t gcov_value_buf_size;
480 1.1 mrg
481 1.1 mrg /* The index of counter values being read. */
482 1.1 mrg static gcov_unsigned_t gcov_value_buf_pos;
483 1.1 mrg
484 1.1 mrg /* The weight of current merging. */
485 1.1 mrg static unsigned gcov_merge_weight;
486 1.1 mrg
487 1.1 mrg /* Read a counter value from gcov_value_buf array. */
488 1.1 mrg
489 1.1 mrg gcov_type
490 1.1 mrg gcov_read_counter_mem (void)
491 1.1 mrg {
492 1.1 mrg gcov_type ret;
493 1.1 mrg gcc_assert (gcov_value_buf_pos < gcov_value_buf_size);
494 1.1 mrg ret = *(gcov_value_buf + gcov_value_buf_pos);
495 1.1 mrg ++gcov_value_buf_pos;
496 1.1 mrg return ret;
497 1.1 mrg }
498 1.1 mrg
499 1.1 mrg /* Return the recorded merge weight. */
500 1.1 mrg
501 1.1 mrg unsigned
502 1.1 mrg gcov_get_merge_weight (void)
503 1.1 mrg {
504 1.1 mrg return gcov_merge_weight;
505 1.1 mrg }
506 1.1 mrg
507 1.1 mrg /* A wrapper function for merge functions. It sets up the
508 1.1 mrg value buffer and weights and then calls the merge function. */
509 1.1 mrg
510 1.1 mrg static void
511 1.1.1.9 mrg merge_wrapper (gcov_merge_fn f, gcov_type *v1, gcov_unsigned_t n1,
512 1.1.1.9 mrg gcov_type *v2, gcov_unsigned_t n2, unsigned w)
513 1.1 mrg {
514 1.1 mrg gcov_value_buf = v2;
515 1.1 mrg gcov_value_buf_pos = 0;
516 1.1.1.9 mrg gcov_value_buf_size = n2;
517 1.1 mrg gcov_merge_weight = w;
518 1.1.1.9 mrg (*f) (v1, n1);
519 1.1.1.9 mrg }
520 1.1.1.9 mrg
521 1.1.1.9 mrg /* Convert on disk representation of a TOPN counter to in memory representation
522 1.1.1.9 mrg that is expected from __gcov_merge_topn function. */
523 1.1.1.9 mrg
524 1.1.1.9 mrg static void
525 1.1.1.9 mrg topn_to_memory_representation (struct gcov_ctr_info *info)
526 1.1.1.9 mrg {
527 1.1.1.9 mrg auto_vec<gcov_type> output;
528 1.1.1.9 mrg gcov_type *values = info->values;
529 1.1.1.9 mrg int count = info->num;
530 1.1.1.9 mrg
531 1.1.1.9 mrg while (count > 0)
532 1.1.1.9 mrg {
533 1.1.1.9 mrg output.safe_push (values[0]);
534 1.1.1.9 mrg gcov_type n = values[1];
535 1.1.1.9 mrg output.safe_push (n);
536 1.1.1.9 mrg if (n > 0)
537 1.1.1.9 mrg {
538 1.1.1.9 mrg struct gcov_kvp *tuples
539 1.1.1.9 mrg = (struct gcov_kvp *)xcalloc (sizeof (struct gcov_kvp), n);
540 1.1.1.9 mrg for (unsigned i = 0; i < n - 1; i++)
541 1.1.1.9 mrg tuples[i].next = &tuples[i + 1];
542 1.1.1.9 mrg for (unsigned i = 0; i < n; i++)
543 1.1.1.9 mrg {
544 1.1.1.9 mrg tuples[i].value = values[2 + 2 * i];
545 1.1.1.9 mrg tuples[i].count = values[2 + 2 * i + 1];
546 1.1.1.9 mrg }
547 1.1.1.9 mrg output.safe_push ((intptr_t)&tuples[0]);
548 1.1.1.9 mrg }
549 1.1.1.9 mrg else
550 1.1.1.9 mrg output.safe_push (0);
551 1.1.1.9 mrg
552 1.1.1.9 mrg unsigned len = 2 * n + 2;
553 1.1.1.9 mrg values += len;
554 1.1.1.9 mrg count -= len;
555 1.1.1.9 mrg }
556 1.1.1.9 mrg gcc_assert (count == 0);
557 1.1.1.9 mrg
558 1.1.1.9 mrg /* Allocate new buffer and copy it there. */
559 1.1.1.9 mrg info->num = output.length ();
560 1.1.1.9 mrg info->values = (gcov_type *)xmalloc (sizeof (gcov_type) * info->num);
561 1.1.1.9 mrg for (unsigned i = 0; i < info->num; i++)
562 1.1.1.9 mrg info->values[i] = output[i];
563 1.1 mrg }
564 1.1 mrg
565 1.1 mrg /* Offline tool to manipulate profile data.
566 1.1 mrg This tool targets on matched profiles. But it has some tolerance on
567 1.1 mrg unmatched profiles.
568 1.1 mrg When merging p1 to p2 (p2 is the dst),
569 1.1 mrg * m.gcda in p1 but not in p2: append m.gcda to p2 with specified weight;
570 1.1 mrg emit warning
571 1.1 mrg * m.gcda in p2 but not in p1: keep m.gcda in p2 and multiply by
572 1.1 mrg specified weight; emit warning.
573 1.1 mrg * m.gcda in both p1 and p2:
574 1.1 mrg ** p1->m.gcda->f checksum matches p2->m.gcda->f: simple merge.
575 1.1 mrg ** p1->m.gcda->f checksum does not matches p2->m.gcda->f: keep
576 1.1 mrg p2->m.gcda->f and
577 1.1 mrg drop p1->m.gcda->f. A warning is emitted. */
578 1.1 mrg
579 1.1 mrg /* Add INFO2's counter to INFO1, multiplying by weight W. */
580 1.1 mrg
581 1.1 mrg static int
582 1.1 mrg gcov_merge (struct gcov_info *info1, struct gcov_info *info2, int w)
583 1.1 mrg {
584 1.1 mrg unsigned f_ix;
585 1.1 mrg unsigned n_functions = info1->n_functions;
586 1.1 mrg int has_mismatch = 0;
587 1.1 mrg
588 1.1 mrg gcc_assert (info2->n_functions == n_functions);
589 1.1.1.9 mrg
590 1.1.1.9 mrg /* Merge summary. */
591 1.1.1.9 mrg info1->summary.runs += info2->summary.runs;
592 1.1.1.9 mrg info1->summary.sum_max += info2->summary.sum_max;
593 1.1.1.9 mrg
594 1.1 mrg for (f_ix = 0; f_ix < n_functions; f_ix++)
595 1.1 mrg {
596 1.1 mrg unsigned t_ix;
597 1.1.1.9 mrg struct gcov_fn_info *gfi_ptr1 = info1->functions[f_ix];
598 1.1.1.9 mrg struct gcov_fn_info *gfi_ptr2 = info2->functions[f_ix];
599 1.1.1.9 mrg struct gcov_ctr_info *ci_ptr1, *ci_ptr2;
600 1.1 mrg
601 1.1 mrg if (!gfi_ptr1 || gfi_ptr1->key != info1)
602 1.1 mrg continue;
603 1.1 mrg if (!gfi_ptr2 || gfi_ptr2->key != info2)
604 1.1 mrg continue;
605 1.1 mrg
606 1.1 mrg if (gfi_ptr1->cfg_checksum != gfi_ptr2->cfg_checksum)
607 1.1 mrg {
608 1.1 mrg fnotice (stderr, "in %s, cfg_checksum mismatch, skipping\n",
609 1.1 mrg info1->filename);
610 1.1 mrg has_mismatch = 1;
611 1.1 mrg continue;
612 1.1 mrg }
613 1.1 mrg ci_ptr1 = gfi_ptr1->ctrs;
614 1.1 mrg ci_ptr2 = gfi_ptr2->ctrs;
615 1.1 mrg for (t_ix = 0; t_ix != GCOV_COUNTERS; t_ix++)
616 1.1 mrg {
617 1.1 mrg gcov_merge_fn merge1 = info1->merge[t_ix];
618 1.1 mrg gcov_merge_fn merge2 = info2->merge[t_ix];
619 1.1 mrg
620 1.1 mrg gcc_assert (merge1 == merge2);
621 1.1 mrg if (!merge1)
622 1.1 mrg continue;
623 1.1.1.9 mrg
624 1.1.1.9 mrg if (merge1 == __gcov_merge_topn)
625 1.1.1.9 mrg topn_to_memory_representation (ci_ptr1);
626 1.1.1.9 mrg else
627 1.1.1.9 mrg gcc_assert (ci_ptr1->num == ci_ptr2->num);
628 1.1.1.9 mrg
629 1.1.1.9 mrg merge_wrapper (merge1, ci_ptr1->values, ci_ptr1->num,
630 1.1.1.9 mrg ci_ptr2->values, ci_ptr2->num, w);
631 1.1 mrg ci_ptr1++;
632 1.1 mrg ci_ptr2++;
633 1.1 mrg }
634 1.1 mrg }
635 1.1 mrg
636 1.1 mrg return has_mismatch;
637 1.1 mrg }
638 1.1 mrg
639 1.1 mrg /* Find and return the match gcov_info object for INFO from ARRAY.
640 1.1 mrg SIZE is the length of ARRAY.
641 1.1 mrg Return NULL if there is no match. */
642 1.1 mrg
643 1.1 mrg static struct gcov_info *
644 1.1 mrg find_match_gcov_info (struct gcov_info **array, int size,
645 1.1 mrg struct gcov_info *info)
646 1.1 mrg {
647 1.1 mrg struct gcov_info *gi_ptr;
648 1.1 mrg struct gcov_info *ret = NULL;
649 1.1 mrg int i;
650 1.1 mrg
651 1.1 mrg for (i = 0; i < size; i++)
652 1.1 mrg {
653 1.1 mrg gi_ptr = array[i];
654 1.1 mrg if (gi_ptr == 0)
655 1.1 mrg continue;
656 1.1 mrg if (!strcmp (gi_ptr->filename, info->filename))
657 1.1 mrg {
658 1.1 mrg ret = gi_ptr;
659 1.1 mrg array[i] = 0;
660 1.1 mrg break;
661 1.1 mrg }
662 1.1 mrg }
663 1.1 mrg
664 1.1 mrg if (ret && ret->n_functions != info->n_functions)
665 1.1 mrg {
666 1.1 mrg fnotice (stderr, "mismatched profiles in %s (%d functions"
667 1.1 mrg " vs %d functions)\n",
668 1.1 mrg ret->filename,
669 1.1 mrg ret->n_functions,
670 1.1 mrg info->n_functions);
671 1.1 mrg ret = NULL;
672 1.1 mrg }
673 1.1 mrg return ret;
674 1.1 mrg }
675 1.1 mrg
676 1.1 mrg /* Merge the list of gcov_info objects from SRC_PROFILE to TGT_PROFILE.
677 1.1 mrg Return 0 on success: without mismatch.
678 1.1 mrg Reutrn 1 on error. */
679 1.1 mrg
680 1.1 mrg int
681 1.1 mrg gcov_profile_merge (struct gcov_info *tgt_profile, struct gcov_info *src_profile,
682 1.1 mrg int w1, int w2)
683 1.1 mrg {
684 1.1 mrg struct gcov_info *gi_ptr;
685 1.1 mrg struct gcov_info **tgt_infos;
686 1.1 mrg struct gcov_info *tgt_tail;
687 1.1 mrg struct gcov_info **in_src_not_tgt;
688 1.1 mrg unsigned tgt_cnt = 0, src_cnt = 0;
689 1.1 mrg unsigned unmatch_info_cnt = 0;
690 1.1 mrg unsigned int i;
691 1.1 mrg
692 1.1 mrg for (gi_ptr = tgt_profile; gi_ptr; gi_ptr = gi_ptr->next)
693 1.1 mrg tgt_cnt++;
694 1.1 mrg for (gi_ptr = src_profile; gi_ptr; gi_ptr = gi_ptr->next)
695 1.1 mrg src_cnt++;
696 1.1 mrg tgt_infos = (struct gcov_info **) xmalloc (sizeof (struct gcov_info *)
697 1.1 mrg * tgt_cnt);
698 1.1 mrg gcc_assert (tgt_infos);
699 1.1 mrg in_src_not_tgt = (struct gcov_info **) xmalloc (sizeof (struct gcov_info *)
700 1.1 mrg * src_cnt);
701 1.1 mrg gcc_assert (in_src_not_tgt);
702 1.1 mrg
703 1.1 mrg for (gi_ptr = tgt_profile, i = 0; gi_ptr; gi_ptr = gi_ptr->next, i++)
704 1.1 mrg tgt_infos[i] = gi_ptr;
705 1.1 mrg
706 1.1 mrg tgt_tail = tgt_infos[tgt_cnt - 1];
707 1.1 mrg
708 1.1 mrg /* First pass on tgt_profile, we multiply w1 to all counters. */
709 1.1 mrg if (w1 > 1)
710 1.1 mrg {
711 1.1 mrg for (i = 0; i < tgt_cnt; i++)
712 1.1 mrg gcov_merge (tgt_infos[i], tgt_infos[i], w1-1);
713 1.1 mrg }
714 1.1 mrg
715 1.1 mrg /* Second pass, add src_profile to the tgt_profile. */
716 1.1 mrg for (gi_ptr = src_profile; gi_ptr; gi_ptr = gi_ptr->next)
717 1.1 mrg {
718 1.1 mrg struct gcov_info *gi_ptr1;
719 1.1 mrg
720 1.1 mrg gi_ptr1 = find_match_gcov_info (tgt_infos, tgt_cnt, gi_ptr);
721 1.1 mrg if (gi_ptr1 == NULL)
722 1.1 mrg {
723 1.1 mrg in_src_not_tgt[unmatch_info_cnt++] = gi_ptr;
724 1.1 mrg continue;
725 1.1 mrg }
726 1.1 mrg gcov_merge (gi_ptr1, gi_ptr, w2);
727 1.1 mrg }
728 1.1 mrg
729 1.1 mrg /* For modules in src but not in tgt. We adjust the counter and append. */
730 1.1 mrg for (i = 0; i < unmatch_info_cnt; i++)
731 1.1 mrg {
732 1.1 mrg gi_ptr = in_src_not_tgt[i];
733 1.1 mrg gcov_merge (gi_ptr, gi_ptr, w2 - 1);
734 1.1.1.3 mrg gi_ptr->next = NULL;
735 1.1 mrg tgt_tail->next = gi_ptr;
736 1.1 mrg tgt_tail = gi_ptr;
737 1.1 mrg }
738 1.1 mrg
739 1.1.1.8 mrg free (in_src_not_tgt);
740 1.1.1.8 mrg free (tgt_infos);
741 1.1.1.8 mrg
742 1.1 mrg return 0;
743 1.1 mrg }
744 1.1 mrg
745 1.1 mrg typedef gcov_type (*counter_op_fn) (gcov_type, void*, void*);
746 1.1 mrg
747 1.1 mrg /* Performing FN upon arc counters. */
748 1.1 mrg
749 1.1 mrg static void
750 1.1 mrg __gcov_add_counter_op (gcov_type *counters, unsigned n_counters,
751 1.1 mrg counter_op_fn fn, void *data1, void *data2)
752 1.1 mrg {
753 1.1 mrg for (; n_counters; counters++, n_counters--)
754 1.1 mrg {
755 1.1 mrg gcov_type val = *counters;
756 1.1 mrg *counters = fn(val, data1, data2);
757 1.1 mrg }
758 1.1 mrg }
759 1.1 mrg
760 1.1 mrg /* Performing FN upon ior counters. */
761 1.1 mrg
762 1.1 mrg static void
763 1.1 mrg __gcov_ior_counter_op (gcov_type *counters ATTRIBUTE_UNUSED,
764 1.1 mrg unsigned n_counters ATTRIBUTE_UNUSED,
765 1.1 mrg counter_op_fn fn ATTRIBUTE_UNUSED,
766 1.1 mrg void *data1 ATTRIBUTE_UNUSED,
767 1.1 mrg void *data2 ATTRIBUTE_UNUSED)
768 1.1 mrg {
769 1.1 mrg /* Do nothing. */
770 1.1 mrg }
771 1.1 mrg
772 1.1 mrg /* Performing FN upon time-profile counters. */
773 1.1 mrg
774 1.1 mrg static void
775 1.1 mrg __gcov_time_profile_counter_op (gcov_type *counters ATTRIBUTE_UNUSED,
776 1.1 mrg unsigned n_counters ATTRIBUTE_UNUSED,
777 1.1 mrg counter_op_fn fn ATTRIBUTE_UNUSED,
778 1.1 mrg void *data1 ATTRIBUTE_UNUSED,
779 1.1 mrg void *data2 ATTRIBUTE_UNUSED)
780 1.1 mrg {
781 1.1 mrg /* Do nothing. */
782 1.1 mrg }
783 1.1 mrg
784 1.1.1.8 mrg /* Performing FN upon TOP N counters. */
785 1.1 mrg
786 1.1 mrg static void
787 1.1.1.8 mrg __gcov_topn_counter_op (gcov_type *counters, unsigned n_counters,
788 1.1.1.8 mrg counter_op_fn fn, void *data1, void *data2)
789 1.1 mrg {
790 1.1 mrg unsigned i, n_measures;
791 1.1 mrg
792 1.1 mrg gcc_assert (!(n_counters % 3));
793 1.1 mrg n_measures = n_counters / 3;
794 1.1 mrg for (i = 0; i < n_measures; i++, counters += 3)
795 1.1 mrg {
796 1.1 mrg counters[1] = fn (counters[1], data1, data2);
797 1.1 mrg counters[2] = fn (counters[2], data1, data2);
798 1.1 mrg }
799 1.1 mrg }
800 1.1 mrg
801 1.1 mrg /* Scaling the counter value V by multiplying *(float*) DATA1. */
802 1.1 mrg
803 1.1 mrg static gcov_type
804 1.1 mrg fp_scale (gcov_type v, void *data1, void *data2 ATTRIBUTE_UNUSED)
805 1.1 mrg {
806 1.1 mrg float f = *(float *) data1;
807 1.1 mrg return (gcov_type) (v * f);
808 1.1 mrg }
809 1.1 mrg
810 1.1 mrg /* Scaling the counter value V by multiplying DATA2/DATA1. */
811 1.1 mrg
812 1.1 mrg static gcov_type
813 1.1 mrg int_scale (gcov_type v, void *data1, void *data2)
814 1.1 mrg {
815 1.1 mrg int n = *(int *) data1;
816 1.1 mrg int d = *(int *) data2;
817 1.1 mrg return (gcov_type) ( RDIV (v,d) * n);
818 1.1 mrg }
819 1.1 mrg
820 1.1 mrg /* Type of function used to process counters. */
821 1.1 mrg typedef void (*gcov_counter_fn) (gcov_type *, gcov_unsigned_t,
822 1.1 mrg counter_op_fn, void *, void *);
823 1.1 mrg
824 1.1 mrg /* Function array to process profile counters. */
825 1.1 mrg #define DEF_GCOV_COUNTER(COUNTER, NAME, FN_TYPE) \
826 1.1 mrg __gcov ## FN_TYPE ## _counter_op,
827 1.1 mrg static gcov_counter_fn ctr_functions[GCOV_COUNTERS] = {
828 1.1 mrg #include "gcov-counter.def"
829 1.1 mrg };
830 1.1 mrg #undef DEF_GCOV_COUNTER
831 1.1 mrg
832 1.1 mrg /* Driver for scaling profile counters. */
833 1.1 mrg
834 1.1 mrg int
835 1.1 mrg gcov_profile_scale (struct gcov_info *profile, float scale_factor, int n, int d)
836 1.1 mrg {
837 1.1 mrg struct gcov_info *gi_ptr;
838 1.1 mrg unsigned f_ix;
839 1.1 mrg
840 1.1 mrg if (verbose)
841 1.1 mrg fnotice (stdout, "scale_factor is %f or %d/%d\n", scale_factor, n, d);
842 1.1 mrg
843 1.1 mrg /* Scaling the counters. */
844 1.1 mrg for (gi_ptr = profile; gi_ptr; gi_ptr = gi_ptr->next)
845 1.1 mrg for (f_ix = 0; f_ix < gi_ptr->n_functions; f_ix++)
846 1.1 mrg {
847 1.1 mrg unsigned t_ix;
848 1.1 mrg const struct gcov_fn_info *gfi_ptr = gi_ptr->functions[f_ix];
849 1.1 mrg const struct gcov_ctr_info *ci_ptr;
850 1.1 mrg
851 1.1 mrg if (!gfi_ptr || gfi_ptr->key != gi_ptr)
852 1.1 mrg continue;
853 1.1 mrg
854 1.1 mrg ci_ptr = gfi_ptr->ctrs;
855 1.1 mrg for (t_ix = 0; t_ix != GCOV_COUNTERS; t_ix++)
856 1.1 mrg {
857 1.1 mrg gcov_merge_fn merge = gi_ptr->merge[t_ix];
858 1.1 mrg
859 1.1 mrg if (!merge)
860 1.1 mrg continue;
861 1.1 mrg if (d == 0)
862 1.1 mrg (*ctr_functions[t_ix]) (ci_ptr->values, ci_ptr->num,
863 1.1 mrg fp_scale, &scale_factor, NULL);
864 1.1 mrg else
865 1.1 mrg (*ctr_functions[t_ix]) (ci_ptr->values, ci_ptr->num,
866 1.1 mrg int_scale, &n, &d);
867 1.1 mrg ci_ptr++;
868 1.1 mrg }
869 1.1 mrg }
870 1.1 mrg
871 1.1 mrg return 0;
872 1.1 mrg }
873 1.1 mrg
874 1.1 mrg /* Driver to normalize profile counters. */
875 1.1 mrg
876 1.1 mrg int
877 1.1 mrg gcov_profile_normalize (struct gcov_info *profile, gcov_type max_val)
878 1.1 mrg {
879 1.1 mrg struct gcov_info *gi_ptr;
880 1.1 mrg gcov_type curr_max_val = 0;
881 1.1 mrg unsigned f_ix;
882 1.1 mrg unsigned int i;
883 1.1 mrg float scale_factor;
884 1.1 mrg
885 1.1 mrg /* Find the largest count value. */
886 1.1 mrg for (gi_ptr = profile; gi_ptr; gi_ptr = gi_ptr->next)
887 1.1 mrg for (f_ix = 0; f_ix < gi_ptr->n_functions; f_ix++)
888 1.1 mrg {
889 1.1 mrg unsigned t_ix;
890 1.1 mrg const struct gcov_fn_info *gfi_ptr = gi_ptr->functions[f_ix];
891 1.1 mrg const struct gcov_ctr_info *ci_ptr;
892 1.1 mrg
893 1.1 mrg if (!gfi_ptr || gfi_ptr->key != gi_ptr)
894 1.1 mrg continue;
895 1.1 mrg
896 1.1 mrg ci_ptr = gfi_ptr->ctrs;
897 1.1 mrg for (t_ix = 0; t_ix < 1; t_ix++)
898 1.1 mrg {
899 1.1 mrg for (i = 0; i < ci_ptr->num; i++)
900 1.1 mrg if (ci_ptr->values[i] > curr_max_val)
901 1.1 mrg curr_max_val = ci_ptr->values[i];
902 1.1 mrg ci_ptr++;
903 1.1 mrg }
904 1.1 mrg }
905 1.1 mrg
906 1.1 mrg scale_factor = (float)max_val / curr_max_val;
907 1.1 mrg if (verbose)
908 1.1.1.2 mrg fnotice (stdout, "max_val is %" PRId64 "\n", curr_max_val);
909 1.1 mrg
910 1.1 mrg return gcov_profile_scale (profile, scale_factor, 0, 0);
911 1.1 mrg }
912 1.1 mrg
913 1.1 mrg /* The following variables are defined in gcc/gcov-tool.c. */
914 1.1 mrg extern int overlap_func_level;
915 1.1 mrg extern int overlap_obj_level;
916 1.1 mrg extern int overlap_hot_only;
917 1.1 mrg extern int overlap_use_fullname;
918 1.1 mrg extern double overlap_hot_threshold;
919 1.1 mrg
920 1.1 mrg /* Compute the overlap score of two values. The score is defined as:
921 1.1 mrg min (V1/SUM_1, V2/SUM_2) */
922 1.1 mrg
923 1.1 mrg static double
924 1.1 mrg calculate_2_entries (const unsigned long v1, const unsigned long v2,
925 1.1 mrg const double sum_1, const double sum_2)
926 1.1 mrg {
927 1.1 mrg double val1 = (sum_1 == 0.0 ? 0.0 : v1/sum_1);
928 1.1 mrg double val2 = (sum_2 == 0.0 ? 0.0 : v2/sum_2);
929 1.1 mrg
930 1.1 mrg if (val2 < val1)
931 1.1 mrg val1 = val2;
932 1.1 mrg
933 1.1 mrg return val1;
934 1.1 mrg }
935 1.1 mrg
936 1.1 mrg /* Compute the overlap score between GCOV_INFO1 and GCOV_INFO2.
937 1.1 mrg This function also updates cumulative score CUM_1_RESULT and
938 1.1 mrg CUM_2_RESULT. */
939 1.1 mrg
940 1.1 mrg static double
941 1.1 mrg compute_one_gcov (const struct gcov_info *gcov_info1,
942 1.1 mrg const struct gcov_info *gcov_info2,
943 1.1 mrg const double sum_1, const double sum_2,
944 1.1 mrg double *cum_1_result, double *cum_2_result)
945 1.1 mrg {
946 1.1 mrg unsigned f_ix;
947 1.1 mrg double ret = 0;
948 1.1 mrg double cum_1 = 0, cum_2 = 0;
949 1.1 mrg const struct gcov_info *gcov_info = 0;
950 1.1 mrg double *cum_p;
951 1.1 mrg double sum;
952 1.1 mrg
953 1.1 mrg gcc_assert (gcov_info1 || gcov_info2);
954 1.1 mrg if (!gcov_info1)
955 1.1 mrg {
956 1.1 mrg gcov_info = gcov_info2;
957 1.1 mrg cum_p = cum_2_result;
958 1.1 mrg sum = sum_2;
959 1.1 mrg *cum_1_result = 0;
960 1.1 mrg } else
961 1.1 mrg if (!gcov_info2)
962 1.1 mrg {
963 1.1 mrg gcov_info = gcov_info1;
964 1.1 mrg cum_p = cum_1_result;
965 1.1 mrg sum = sum_1;
966 1.1 mrg *cum_2_result = 0;
967 1.1 mrg }
968 1.1 mrg
969 1.1 mrg if (gcov_info)
970 1.1 mrg {
971 1.1 mrg for (f_ix = 0; f_ix < gcov_info->n_functions; f_ix++)
972 1.1 mrg {
973 1.1 mrg const struct gcov_fn_info *gfi_ptr = gcov_info->functions[f_ix];
974 1.1 mrg if (!gfi_ptr || gfi_ptr->key != gcov_info)
975 1.1 mrg continue;
976 1.1 mrg const struct gcov_ctr_info *ci_ptr = gfi_ptr->ctrs;
977 1.1.1.7 mrg unsigned c_num;
978 1.1.1.7 mrg for (c_num = 0; c_num < ci_ptr->num; c_num++)
979 1.1.1.7 mrg cum_1 += ci_ptr->values[c_num] / sum;
980 1.1 mrg }
981 1.1 mrg *cum_p = cum_1;
982 1.1 mrg return 0.0;
983 1.1 mrg }
984 1.1 mrg
985 1.1 mrg for (f_ix = 0; f_ix < gcov_info1->n_functions; f_ix++)
986 1.1 mrg {
987 1.1 mrg double func_cum_1 = 0.0;
988 1.1 mrg double func_cum_2 = 0.0;
989 1.1 mrg double func_val = 0.0;
990 1.1 mrg int nonzero = 0;
991 1.1 mrg int hot = 0;
992 1.1 mrg const struct gcov_fn_info *gfi_ptr1 = gcov_info1->functions[f_ix];
993 1.1 mrg const struct gcov_fn_info *gfi_ptr2 = gcov_info2->functions[f_ix];
994 1.1 mrg
995 1.1 mrg if (!gfi_ptr1 || gfi_ptr1->key != gcov_info1)
996 1.1 mrg continue;
997 1.1 mrg if (!gfi_ptr2 || gfi_ptr2->key != gcov_info2)
998 1.1 mrg continue;
999 1.1 mrg
1000 1.1 mrg const struct gcov_ctr_info *ci_ptr1 = gfi_ptr1->ctrs;
1001 1.1 mrg const struct gcov_ctr_info *ci_ptr2 = gfi_ptr2->ctrs;
1002 1.1.1.7 mrg unsigned c_num;
1003 1.1.1.7 mrg for (c_num = 0; c_num < ci_ptr1->num; c_num++)
1004 1.1.1.7 mrg {
1005 1.1.1.7 mrg if (ci_ptr1->values[c_num] | ci_ptr2->values[c_num])
1006 1.1.1.7 mrg {
1007 1.1.1.7 mrg func_val += calculate_2_entries (ci_ptr1->values[c_num],
1008 1.1.1.7 mrg ci_ptr2->values[c_num],
1009 1.1.1.7 mrg sum_1, sum_2);
1010 1.1.1.7 mrg
1011 1.1.1.7 mrg func_cum_1 += ci_ptr1->values[c_num] / sum_1;
1012 1.1.1.7 mrg func_cum_2 += ci_ptr2->values[c_num] / sum_2;
1013 1.1.1.7 mrg nonzero = 1;
1014 1.1.1.7 mrg if (ci_ptr1->values[c_num] / sum_1 >= overlap_hot_threshold
1015 1.1.1.7 mrg || ci_ptr2->values[c_num] / sum_2 >= overlap_hot_threshold)
1016 1.1.1.7 mrg hot = 1;
1017 1.1.1.7 mrg }
1018 1.1.1.7 mrg }
1019 1.1 mrg
1020 1.1 mrg ret += func_val;
1021 1.1 mrg cum_1 += func_cum_1;
1022 1.1 mrg cum_2 += func_cum_2;
1023 1.1 mrg if (overlap_func_level && nonzero && (!overlap_hot_only || hot))
1024 1.1 mrg {
1025 1.1 mrg printf(" \tfunc_id=%10d \toverlap =%6.5f%% (%5.5f%% %5.5f%%)\n",
1026 1.1 mrg gfi_ptr1->ident, func_val*100, func_cum_1*100, func_cum_2*100);
1027 1.1 mrg }
1028 1.1 mrg }
1029 1.1 mrg *cum_1_result = cum_1;
1030 1.1 mrg *cum_2_result = cum_2;
1031 1.1 mrg return ret;
1032 1.1 mrg }
1033 1.1 mrg
1034 1.1 mrg /* Test if all counter values in this GCOV_INFO are cold.
1035 1.1 mrg "Cold" is defined as the counter value being less than
1036 1.1 mrg or equal to THRESHOLD. */
1037 1.1 mrg
1038 1.1 mrg static bool
1039 1.1 mrg gcov_info_count_all_cold (const struct gcov_info *gcov_info,
1040 1.1 mrg gcov_type threshold)
1041 1.1 mrg {
1042 1.1 mrg unsigned f_ix;
1043 1.1 mrg
1044 1.1 mrg for (f_ix = 0; f_ix < gcov_info->n_functions; f_ix++)
1045 1.1 mrg {
1046 1.1 mrg const struct gcov_fn_info *gfi_ptr = gcov_info->functions[f_ix];
1047 1.1 mrg
1048 1.1 mrg if (!gfi_ptr || gfi_ptr->key != gcov_info)
1049 1.1 mrg continue;
1050 1.1 mrg const struct gcov_ctr_info *ci_ptr = gfi_ptr->ctrs;
1051 1.1.1.7 mrg for (unsigned c_num = 0; c_num < ci_ptr->num; c_num++)
1052 1.1.1.7 mrg if (ci_ptr->values[c_num] > threshold)
1053 1.1.1.7 mrg return false;
1054 1.1 mrg }
1055 1.1 mrg
1056 1.1 mrg return true;
1057 1.1 mrg }
1058 1.1 mrg
1059 1.1 mrg /* Test if all counter values in this GCOV_INFO are 0. */
1060 1.1 mrg
1061 1.1 mrg static bool
1062 1.1 mrg gcov_info_count_all_zero (const struct gcov_info *gcov_info)
1063 1.1 mrg {
1064 1.1 mrg return gcov_info_count_all_cold (gcov_info, 0);
1065 1.1 mrg }
1066 1.1 mrg
1067 1.1 mrg /* A pair of matched GCOV_INFO.
1068 1.1 mrg The flag is a bitvector:
1069 1.1 mrg b0: obj1's all counts are 0;
1070 1.1 mrg b1: obj1's all counts are cold (but no 0);
1071 1.1 mrg b2: obj1 is hot;
1072 1.1 mrg b3: no obj1 to match obj2;
1073 1.1 mrg b4: obj2's all counts are 0;
1074 1.1 mrg b5: obj2's all counts are cold (but no 0);
1075 1.1 mrg b6: obj2 is hot;
1076 1.1 mrg b7: no obj2 to match obj1;
1077 1.1 mrg */
1078 1.1 mrg struct overlap_t {
1079 1.1 mrg const struct gcov_info *obj1;
1080 1.1 mrg const struct gcov_info *obj2;
1081 1.1 mrg char flag;
1082 1.1 mrg };
1083 1.1 mrg
1084 1.1 mrg #define FLAG_BOTH_ZERO(flag) ((flag & 0x1) && (flag & 0x10))
1085 1.1 mrg #define FLAG_BOTH_COLD(flag) ((flag & 0x2) && (flag & 0x20))
1086 1.1 mrg #define FLAG_ONE_HOT(flag) ((flag & 0x4) || (flag & 0x40))
1087 1.1 mrg
1088 1.1 mrg /* Cumlative overlap dscore for profile1 and profile2. */
1089 1.1 mrg static double overlap_sum_1, overlap_sum_2;
1090 1.1 mrg
1091 1.1 mrg /* The number of gcda files in the profiles. */
1092 1.1 mrg static unsigned gcda_files[2];
1093 1.1 mrg
1094 1.1 mrg /* The number of unique gcda files in the profiles
1095 1.1 mrg (not existing in the other profile). */
1096 1.1 mrg static unsigned unique_gcda_files[2];
1097 1.1 mrg
1098 1.1 mrg /* The number of gcda files that all counter values are 0. */
1099 1.1 mrg static unsigned zero_gcda_files[2];
1100 1.1 mrg
1101 1.1 mrg /* The number of gcda files that all counter values are cold (but not 0). */
1102 1.1 mrg static unsigned cold_gcda_files[2];
1103 1.1 mrg
1104 1.1 mrg /* The number of gcda files that includes hot counter values. */
1105 1.1 mrg static unsigned hot_gcda_files[2];
1106 1.1 mrg
1107 1.1 mrg /* The number of gcda files with hot count value in either profiles. */
1108 1.1 mrg static unsigned both_hot_cnt;
1109 1.1 mrg
1110 1.1 mrg /* The number of gcda files with all counts cold (but not 0) in
1111 1.1 mrg both profiles. */
1112 1.1 mrg static unsigned both_cold_cnt;
1113 1.1 mrg
1114 1.1 mrg /* The number of gcda files with all counts 0 in both profiles. */
1115 1.1 mrg static unsigned both_zero_cnt;
1116 1.1 mrg
1117 1.1 mrg /* Extract the basename of the filename NAME. */
1118 1.1 mrg
1119 1.1 mrg static char *
1120 1.1 mrg extract_file_basename (const char *name)
1121 1.1 mrg {
1122 1.1 mrg char *str;
1123 1.1 mrg int len = 0;
1124 1.1 mrg char *path = xstrdup (name);
1125 1.1 mrg char sep_str[2];
1126 1.1 mrg
1127 1.1 mrg sep_str[0] = DIR_SEPARATOR;
1128 1.1 mrg sep_str[1] = 0;
1129 1.1 mrg str = strstr(path, sep_str);
1130 1.1 mrg do{
1131 1.1 mrg len = strlen(str) + 1;
1132 1.1 mrg path = &path[strlen(path) - len + 2];
1133 1.1 mrg str = strstr(path, sep_str);
1134 1.1 mrg } while(str);
1135 1.1 mrg
1136 1.1 mrg return path;
1137 1.1 mrg }
1138 1.1 mrg
1139 1.1 mrg /* Utility function to get the filename. */
1140 1.1 mrg
1141 1.1 mrg static const char *
1142 1.1 mrg get_file_basename (const char *name)
1143 1.1 mrg {
1144 1.1 mrg if (overlap_use_fullname)
1145 1.1 mrg return name;
1146 1.1 mrg return extract_file_basename (name);
1147 1.1 mrg }
1148 1.1 mrg
1149 1.1 mrg /* A utility function to set the flag for the gcda files. */
1150 1.1 mrg
1151 1.1 mrg static void
1152 1.1 mrg set_flag (struct overlap_t *e)
1153 1.1 mrg {
1154 1.1 mrg char flag = 0;
1155 1.1 mrg
1156 1.1 mrg if (!e->obj1)
1157 1.1 mrg {
1158 1.1 mrg unique_gcda_files[1]++;
1159 1.1 mrg flag = 0x8;
1160 1.1 mrg }
1161 1.1 mrg else
1162 1.1 mrg {
1163 1.1 mrg gcda_files[0]++;
1164 1.1 mrg if (gcov_info_count_all_zero (e->obj1))
1165 1.1 mrg {
1166 1.1 mrg zero_gcda_files[0]++;
1167 1.1 mrg flag = 0x1;
1168 1.1 mrg }
1169 1.1 mrg else
1170 1.1 mrg if (gcov_info_count_all_cold (e->obj1, overlap_sum_1
1171 1.1 mrg * overlap_hot_threshold))
1172 1.1 mrg {
1173 1.1 mrg cold_gcda_files[0]++;
1174 1.1 mrg flag = 0x2;
1175 1.1 mrg }
1176 1.1 mrg else
1177 1.1 mrg {
1178 1.1 mrg hot_gcda_files[0]++;
1179 1.1 mrg flag = 0x4;
1180 1.1 mrg }
1181 1.1 mrg }
1182 1.1 mrg
1183 1.1 mrg if (!e->obj2)
1184 1.1 mrg {
1185 1.1 mrg unique_gcda_files[0]++;
1186 1.1 mrg flag |= (0x8 << 4);
1187 1.1 mrg }
1188 1.1 mrg else
1189 1.1 mrg {
1190 1.1 mrg gcda_files[1]++;
1191 1.1 mrg if (gcov_info_count_all_zero (e->obj2))
1192 1.1 mrg {
1193 1.1 mrg zero_gcda_files[1]++;
1194 1.1 mrg flag |= (0x1 << 4);
1195 1.1 mrg }
1196 1.1 mrg else
1197 1.1 mrg if (gcov_info_count_all_cold (e->obj2, overlap_sum_2
1198 1.1 mrg * overlap_hot_threshold))
1199 1.1 mrg {
1200 1.1 mrg cold_gcda_files[1]++;
1201 1.1 mrg flag |= (0x2 << 4);
1202 1.1 mrg }
1203 1.1 mrg else
1204 1.1 mrg {
1205 1.1 mrg hot_gcda_files[1]++;
1206 1.1 mrg flag |= (0x4 << 4);
1207 1.1 mrg }
1208 1.1 mrg }
1209 1.1 mrg
1210 1.1 mrg gcc_assert (flag);
1211 1.1 mrg e->flag = flag;
1212 1.1 mrg }
1213 1.1 mrg
1214 1.1 mrg /* Test if INFO1 and INFO2 are from the matched source file.
1215 1.1 mrg Return 1 if they match; return 0 otherwise. */
1216 1.1 mrg
1217 1.1 mrg static int
1218 1.1 mrg matched_gcov_info (const struct gcov_info *info1, const struct gcov_info *info2)
1219 1.1 mrg {
1220 1.1 mrg /* For FDO, we have to match the name. This can be expensive.
1221 1.1 mrg Maybe we should use hash here. */
1222 1.1 mrg if (strcmp (info1->filename, info2->filename))
1223 1.1 mrg return 0;
1224 1.1 mrg
1225 1.1 mrg if (info1->n_functions != info2->n_functions)
1226 1.1 mrg {
1227 1.1 mrg fnotice (stderr, "mismatched profiles in %s (%d functions"
1228 1.1 mrg " vs %d functions)\n",
1229 1.1 mrg info1->filename,
1230 1.1 mrg info1->n_functions,
1231 1.1 mrg info2->n_functions);
1232 1.1 mrg return 0;
1233 1.1 mrg }
1234 1.1 mrg return 1;
1235 1.1 mrg }
1236 1.1 mrg
1237 1.1 mrg /* Compute the overlap score of two profiles with the head of GCOV_LIST1 and
1238 1.1 mrg GCOV_LIST1. Return a number ranging from [0.0, 1.0], with 0.0 meaning no
1239 1.1 mrg match and 1.0 meaning a perfect match. */
1240 1.1 mrg
1241 1.1 mrg static double
1242 1.1 mrg calculate_overlap (struct gcov_info *gcov_list1,
1243 1.1 mrg struct gcov_info *gcov_list2)
1244 1.1 mrg {
1245 1.1 mrg unsigned list1_cnt = 0, list2_cnt= 0, all_cnt;
1246 1.1 mrg unsigned int i, j;
1247 1.1 mrg const struct gcov_info *gi_ptr;
1248 1.1 mrg struct overlap_t *all_infos;
1249 1.1 mrg
1250 1.1 mrg for (gi_ptr = gcov_list1; gi_ptr; gi_ptr = gi_ptr->next)
1251 1.1 mrg list1_cnt++;
1252 1.1 mrg for (gi_ptr = gcov_list2; gi_ptr; gi_ptr = gi_ptr->next)
1253 1.1 mrg list2_cnt++;
1254 1.1 mrg all_cnt = list1_cnt + list2_cnt;
1255 1.1 mrg all_infos = (struct overlap_t *) xmalloc (sizeof (struct overlap_t)
1256 1.1 mrg * all_cnt * 2);
1257 1.1 mrg gcc_assert (all_infos);
1258 1.1 mrg
1259 1.1 mrg i = 0;
1260 1.1 mrg for (gi_ptr = gcov_list1; gi_ptr; gi_ptr = gi_ptr->next, i++)
1261 1.1 mrg {
1262 1.1 mrg all_infos[i].obj1 = gi_ptr;
1263 1.1 mrg all_infos[i].obj2 = 0;
1264 1.1 mrg }
1265 1.1 mrg
1266 1.1 mrg for (gi_ptr = gcov_list2; gi_ptr; gi_ptr = gi_ptr->next, i++)
1267 1.1 mrg {
1268 1.1 mrg all_infos[i].obj1 = 0;
1269 1.1 mrg all_infos[i].obj2 = gi_ptr;
1270 1.1 mrg }
1271 1.1 mrg
1272 1.1 mrg for (i = list1_cnt; i < all_cnt; i++)
1273 1.1 mrg {
1274 1.1 mrg if (all_infos[i].obj2 == 0)
1275 1.1 mrg continue;
1276 1.1 mrg for (j = 0; j < list1_cnt; j++)
1277 1.1 mrg {
1278 1.1 mrg if (all_infos[j].obj2 != 0)
1279 1.1 mrg continue;
1280 1.1 mrg if (matched_gcov_info (all_infos[i].obj2, all_infos[j].obj1))
1281 1.1 mrg {
1282 1.1 mrg all_infos[j].obj2 = all_infos[i].obj2;
1283 1.1 mrg all_infos[i].obj2 = 0;
1284 1.1 mrg break;
1285 1.1 mrg }
1286 1.1 mrg }
1287 1.1 mrg }
1288 1.1 mrg
1289 1.1 mrg for (i = 0; i < all_cnt; i++)
1290 1.1 mrg if (all_infos[i].obj1 || all_infos[i].obj2)
1291 1.1 mrg {
1292 1.1 mrg set_flag (all_infos + i);
1293 1.1 mrg if (FLAG_ONE_HOT (all_infos[i].flag))
1294 1.1 mrg both_hot_cnt++;
1295 1.1 mrg if (FLAG_BOTH_COLD(all_infos[i].flag))
1296 1.1 mrg both_cold_cnt++;
1297 1.1 mrg if (FLAG_BOTH_ZERO(all_infos[i].flag))
1298 1.1 mrg both_zero_cnt++;
1299 1.1 mrg }
1300 1.1 mrg
1301 1.1 mrg double prg_val = 0;
1302 1.1 mrg double sum_val = 0;
1303 1.1 mrg double sum_cum_1 = 0;
1304 1.1 mrg double sum_cum_2 = 0;
1305 1.1 mrg
1306 1.1 mrg for (i = 0; i < all_cnt; i++)
1307 1.1 mrg {
1308 1.1 mrg double val;
1309 1.1 mrg double cum_1, cum_2;
1310 1.1 mrg const char *filename;
1311 1.1 mrg
1312 1.1 mrg if (all_infos[i].obj1 == 0 && all_infos[i].obj2 == 0)
1313 1.1 mrg continue;
1314 1.1 mrg if (FLAG_BOTH_ZERO (all_infos[i].flag))
1315 1.1 mrg continue;
1316 1.1 mrg
1317 1.1 mrg if (all_infos[i].obj1)
1318 1.1 mrg filename = get_file_basename (all_infos[i].obj1->filename);
1319 1.1 mrg else
1320 1.1 mrg filename = get_file_basename (all_infos[i].obj2->filename);
1321 1.1 mrg
1322 1.1 mrg if (overlap_func_level)
1323 1.1 mrg printf("\n processing %36s:\n", filename);
1324 1.1 mrg
1325 1.1 mrg val = compute_one_gcov (all_infos[i].obj1, all_infos[i].obj2,
1326 1.1 mrg overlap_sum_1, overlap_sum_2, &cum_1, &cum_2);
1327 1.1 mrg
1328 1.1 mrg if (overlap_obj_level && (!overlap_hot_only || FLAG_ONE_HOT (all_infos[i].flag)))
1329 1.1 mrg {
1330 1.1 mrg printf(" obj=%36s overlap = %6.2f%% (%5.2f%% %5.2f%%)\n",
1331 1.1 mrg filename, val*100, cum_1*100, cum_2*100);
1332 1.1 mrg sum_val += val;
1333 1.1 mrg sum_cum_1 += cum_1;
1334 1.1 mrg sum_cum_2 += cum_2;
1335 1.1 mrg }
1336 1.1 mrg
1337 1.1 mrg prg_val += val;
1338 1.1 mrg
1339 1.1 mrg }
1340 1.1 mrg
1341 1.1.1.8 mrg free (all_infos);
1342 1.1.1.8 mrg
1343 1.1 mrg if (overlap_obj_level)
1344 1.1 mrg printf(" SUM:%36s overlap = %6.2f%% (%5.2f%% %5.2f%%)\n",
1345 1.1 mrg "", sum_val*100, sum_cum_1*100, sum_cum_2*100);
1346 1.1 mrg
1347 1.1 mrg printf (" Statistics:\n"
1348 1.1 mrg " profile1_# profile2_# overlap_#\n");
1349 1.1 mrg printf (" gcda files: %12u\t%12u\t%12u\n", gcda_files[0], gcda_files[1],
1350 1.1.1.2 mrg gcda_files[0]-unique_gcda_files[0]);
1351 1.1 mrg printf (" unique files: %12u\t%12u\n", unique_gcda_files[0],
1352 1.1.1.2 mrg unique_gcda_files[1]);
1353 1.1 mrg printf (" hot files: %12u\t%12u\t%12u\n", hot_gcda_files[0],
1354 1.1.1.2 mrg hot_gcda_files[1], both_hot_cnt);
1355 1.1 mrg printf (" cold files: %12u\t%12u\t%12u\n", cold_gcda_files[0],
1356 1.1.1.2 mrg cold_gcda_files[1], both_cold_cnt);
1357 1.1 mrg printf (" zero files: %12u\t%12u\t%12u\n", zero_gcda_files[0],
1358 1.1.1.2 mrg zero_gcda_files[1], both_zero_cnt);
1359 1.1 mrg
1360 1.1 mrg return prg_val;
1361 1.1 mrg }
1362 1.1 mrg
1363 1.1.1.3 mrg /* Compute the overlap score of two lists of gcov_info objects PROFILE1 and
1364 1.1.1.3 mrg PROFILE2.
1365 1.1 mrg Return 0 on success: without mismatch. Reutrn 1 on error. */
1366 1.1 mrg
1367 1.1 mrg int
1368 1.1 mrg gcov_profile_overlap (struct gcov_info *profile1, struct gcov_info *profile2)
1369 1.1 mrg {
1370 1.1 mrg double result;
1371 1.1 mrg
1372 1.1 mrg result = calculate_overlap (profile1, profile2);
1373 1.1 mrg
1374 1.1 mrg if (result > 0)
1375 1.1 mrg {
1376 1.1 mrg printf("\nProgram level overlap result is %3.2f%%\n\n", result*100);
1377 1.1 mrg return 0;
1378 1.1 mrg }
1379 1.1 mrg return 1;
1380 1.1 mrg }
1381