1 /* File format for coverage information
2 Copyright (C) 1996-2016 Free Software Foundation, Inc.
3 Contributed by Bob Manson <manson@cygnus.com>.
4 Completely remangled by Nathan Sidwell <nathan@codesourcery.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
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
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/>. */
27 /* Routines declared in gcov-io.h. This file should be #included by
28 another source file, after having #included gcov-io.h. */
31 static void gcov_write_block (unsigned);
32 static gcov_unsigned_t
*gcov_write_words (unsigned);
34 static const gcov_unsigned_t
*gcov_read_words (unsigned);
36 static void gcov_allocate (unsigned);
39 /* Optimum number of gcov_unsigned_t's read from or written to disk. */
40 #define GCOV_BLOCK_SIZE (1 << 10)
45 gcov_position_t start
; /* Position of first byte of block */
46 unsigned offset
; /* Read/write position within the block. */
47 unsigned length
; /* Read limit in the block. */
48 unsigned overread
; /* Number of words overread. */
49 int error
; /* < 0 overflow, > 0 disk error. */
50 int mode
; /* < 0 writing, > 0 reading */
52 /* Holds one block plus 4 bytes, thus all coverage reads & writes
53 fit within this buffer and we always can transfer GCOV_BLOCK_SIZE
54 to and from the disk. libgcov never backtracks and only writes 4
56 gcov_unsigned_t buffer
[GCOV_BLOCK_SIZE
+ 1];
58 int endian
; /* Swap endianness. */
59 /* Holds a variable length block, as the compiler can write
60 strings and needs to backtrack. */
62 gcov_unsigned_t
*buffer
;
66 /* Save the current position in the gcov file. */
67 /* We need to expose this function when compiling for gcov-tool. */
74 gcov_nonruntime_assert (gcov_var
.mode
> 0);
75 return gcov_var
.start
+ gcov_var
.offset
;
78 /* Return nonzero if the error flag is set. */
79 /* We need to expose this function when compiling for gcov-tool. */
86 return gcov_var
.file
? gcov_var
.error
: 1;
90 /* Move to beginning of file and initialize for writing. */
91 GCOV_LINKAGE
inline void
97 fseek (gcov_var
.file
, 0L, SEEK_SET
);
101 static inline gcov_unsigned_t
from_file (gcov_unsigned_t value
)
106 value
= (value
>> 16) | (value
<< 16);
107 value
= ((value
& 0xff00ff) << 8) | ((value
>> 8) & 0xff00ff);
113 /* Open a gcov file. NAME is the name of the file to open and MODE
114 indicates whether a new file should be created, or an existing file
115 opened. If MODE is >= 0 an existing file will be opened, if
116 possible, and if MODE is <= 0, a new file will be created. Use
117 MODE=0 to attempt to reopen an existing file and then fall back on
118 creating a new one. If MODE > 0, the file will be opened in
119 read-only mode. Otherwise it will be opened for modification.
120 Return zero on failure, non-zero on success. */
124 gcov_open (const char *name
)
126 gcov_open (const char *name
, int mode
)
133 struct flock s_flock
;
136 s_flock
.l_whence
= SEEK_SET
;
138 s_flock
.l_len
= 0; /* Until EOF. */
139 s_flock
.l_pid
= getpid ();
142 gcov_nonruntime_assert (!gcov_var
.file
);
144 gcov_var
.offset
= gcov_var
.length
= 0;
145 gcov_var
.overread
= -1u;
153 /* Read-only mode - acquire a read-lock. */
154 s_flock
.l_type
= F_RDLCK
;
155 /* pass mode (ignored) for compatibility */
156 fd
= open (name
, O_RDONLY
, S_IRUSR
| S_IWUSR
);
160 /* Write mode - acquire a write-lock. */
161 s_flock
.l_type
= F_WRLCK
;
162 /* Truncate if force new mode. */
163 fd
= open (name
, O_RDWR
| O_CREAT
| (mode
< 0 ? O_TRUNC
: 0), 0666);
168 while (fcntl (fd
, F_SETLKW
, &s_flock
) && errno
== EINTR
)
171 gcov_var
.file
= fdopen (fd
, (mode
> 0) ? "rb" : "r+b");
180 /* Open an existing file. */
181 gcov_var
.file
= fopen (name
, (mode
> 0) ? "rb" : "r+b");
186 /* Create a new file. */
187 gcov_var
.file
= fopen (name
, "w+b");
193 gcov_var
.mode
= mode
? mode
: 1;
195 setbuf (gcov_var
.file
, (char *)0);
200 /* Close the current gcov file. Flushes data to disk. Returns nonzero
201 on failure or error flag set. */
209 if (gcov_var
.offset
&& gcov_var
.mode
< 0)
210 gcov_write_block (gcov_var
.offset
);
212 fclose (gcov_var
.file
);
217 free (gcov_var
.buffer
);
222 return gcov_var
.error
;
226 /* Check if MAGIC is EXPECTED. Use it to determine endianness of the
227 file. Returns +1 for same endian, -1 for other endian and zero for
231 gcov_magic (gcov_unsigned_t magic
, gcov_unsigned_t expected
)
233 if (magic
== expected
)
235 magic
= (magic
>> 16) | (magic
<< 16);
236 magic
= ((magic
& 0xff00ff) << 8) | ((magic
>> 8) & 0xff00ff);
237 if (magic
== expected
)
248 gcov_allocate (unsigned length
)
250 size_t new_size
= gcov_var
.alloc
;
253 new_size
= GCOV_BLOCK_SIZE
;
257 gcov_var
.alloc
= new_size
;
258 gcov_var
.buffer
= XRESIZEVAR (gcov_unsigned_t
, gcov_var
.buffer
, new_size
<< 2);
263 /* Write out the current block, if needs be. */
266 gcov_write_block (unsigned size
)
268 if (fwrite (gcov_var
.buffer
, size
<< 2, 1, gcov_var
.file
) != 1)
270 gcov_var
.start
+= size
;
271 gcov_var
.offset
-= size
;
274 /* Allocate space to write BYTES bytes to the gcov file. Return a
275 pointer to those bytes, or NULL on failure. */
277 static gcov_unsigned_t
*
278 gcov_write_words (unsigned words
)
280 gcov_unsigned_t
*result
;
282 gcov_nonruntime_assert (gcov_var
.mode
< 0);
284 if (gcov_var
.offset
>= GCOV_BLOCK_SIZE
)
286 gcov_write_block (GCOV_BLOCK_SIZE
);
289 memcpy (gcov_var
.buffer
, gcov_var
.buffer
+ GCOV_BLOCK_SIZE
, 4);
293 if (gcov_var
.offset
+ words
> gcov_var
.alloc
)
294 gcov_allocate (gcov_var
.offset
+ words
);
296 result
= &gcov_var
.buffer
[gcov_var
.offset
];
297 gcov_var
.offset
+= words
;
302 /* Write unsigned VALUE to coverage file. Sets error flag
306 gcov_write_unsigned (gcov_unsigned_t value
)
308 gcov_unsigned_t
*buffer
= gcov_write_words (1);
313 /* Write counter VALUE to coverage file. Sets error flag
318 gcov_write_counter (gcov_type value
)
320 gcov_unsigned_t
*buffer
= gcov_write_words (2);
322 buffer
[0] = (gcov_unsigned_t
) value
;
323 if (sizeof (value
) > sizeof (gcov_unsigned_t
))
324 buffer
[1] = (gcov_unsigned_t
) (value
>> 32);
328 #endif /* IN_LIBGCOV */
331 /* Write STRING to coverage file. Sets error flag on file
332 error, overflow flag on overflow */
335 gcov_write_string (const char *string
)
339 gcov_unsigned_t
*buffer
;
343 length
= strlen (string
);
344 alloc
= (length
+ 4) >> 2;
347 buffer
= gcov_write_words (1 + alloc
);
351 memcpy (&buffer
[1], string
, length
);
356 /* Write a tag TAG and reserve space for the record length. Return a
357 value to be used for gcov_write_length. */
359 GCOV_LINKAGE gcov_position_t
360 gcov_write_tag (gcov_unsigned_t tag
)
362 gcov_position_t result
= gcov_var
.start
+ gcov_var
.offset
;
363 gcov_unsigned_t
*buffer
= gcov_write_words (2);
371 /* Write a record length using POSITION, which was returned by
372 gcov_write_tag. The current file position is the end of the
373 record, and is restored before returning. Returns nonzero on
377 gcov_write_length (gcov_position_t position
)
380 gcov_unsigned_t length
;
381 gcov_unsigned_t
*buffer
;
383 gcov_nonruntime_assert (gcov_var
.mode
< 0);
384 gcov_nonruntime_assert (position
+ 2 <= gcov_var
.start
+ gcov_var
.offset
);
385 gcov_nonruntime_assert (position
>= gcov_var
.start
);
386 offset
= position
- gcov_var
.start
;
387 length
= gcov_var
.offset
- offset
- 2;
388 buffer
= (gcov_unsigned_t
*) &gcov_var
.buffer
[offset
];
390 if (gcov_var
.offset
>= GCOV_BLOCK_SIZE
)
391 gcov_write_block (gcov_var
.offset
);
394 #else /* IN_LIBGCOV */
396 /* Write a tag TAG and length LENGTH. */
399 gcov_write_tag_length (gcov_unsigned_t tag
, gcov_unsigned_t length
)
401 gcov_unsigned_t
*buffer
= gcov_write_words (2);
407 /* Write a summary structure to the gcov file. Return nonzero on
411 gcov_write_summary (gcov_unsigned_t tag
, const struct gcov_summary
*summary
)
413 unsigned ix
, h_ix
, bv_ix
, h_cnt
= 0;
414 const struct gcov_ctr_summary
*csum
;
415 unsigned histo_bitvector
[GCOV_HISTOGRAM_BITVECTOR_SIZE
];
417 /* Count number of non-zero histogram entries, and fill in a bit vector
418 of non-zero indices. The histogram is only currently computed for arc
420 for (bv_ix
= 0; bv_ix
< GCOV_HISTOGRAM_BITVECTOR_SIZE
; bv_ix
++)
421 histo_bitvector
[bv_ix
] = 0;
422 csum
= &summary
->ctrs
[GCOV_COUNTER_ARCS
];
423 for (h_ix
= 0; h_ix
< GCOV_HISTOGRAM_SIZE
; h_ix
++)
425 if (csum
->histogram
[h_ix
].num_counters
> 0)
427 histo_bitvector
[h_ix
/ 32] |= 1 << (h_ix
% 32);
431 gcov_write_tag_length (tag
, GCOV_TAG_SUMMARY_LENGTH (h_cnt
));
432 gcov_write_unsigned (summary
->checksum
);
433 for (csum
= summary
->ctrs
, ix
= GCOV_COUNTERS_SUMMABLE
; ix
--; csum
++)
435 gcov_write_unsigned (csum
->num
);
436 gcov_write_unsigned (csum
->runs
);
437 gcov_write_counter (csum
->sum_all
);
438 gcov_write_counter (csum
->run_max
);
439 gcov_write_counter (csum
->sum_max
);
440 if (ix
!= GCOV_COUNTER_ARCS
)
442 for (bv_ix
= 0; bv_ix
< GCOV_HISTOGRAM_BITVECTOR_SIZE
; bv_ix
++)
443 gcov_write_unsigned (0);
446 for (bv_ix
= 0; bv_ix
< GCOV_HISTOGRAM_BITVECTOR_SIZE
; bv_ix
++)
447 gcov_write_unsigned (histo_bitvector
[bv_ix
]);
448 for (h_ix
= 0; h_ix
< GCOV_HISTOGRAM_SIZE
; h_ix
++)
450 if (!csum
->histogram
[h_ix
].num_counters
)
452 gcov_write_unsigned (csum
->histogram
[h_ix
].num_counters
);
453 gcov_write_counter (csum
->histogram
[h_ix
].min_value
);
454 gcov_write_counter (csum
->histogram
[h_ix
].cum_value
);
458 #endif /* IN_LIBGCOV */
462 /* Return a pointer to read BYTES bytes from the gcov file. Returns
463 NULL on failure (read past EOF). */
465 static const gcov_unsigned_t
*
466 gcov_read_words (unsigned words
)
468 const gcov_unsigned_t
*result
;
469 unsigned excess
= gcov_var
.length
- gcov_var
.offset
;
471 if (gcov_var
.mode
<= 0)
476 gcov_var
.start
+= gcov_var
.offset
;
480 memcpy (gcov_var
.buffer
, gcov_var
.buffer
+ gcov_var
.offset
, 4);
482 memmove (gcov_var
.buffer
, gcov_var
.buffer
+ gcov_var
.offset
,
487 gcov_var
.length
= excess
;
489 excess
= GCOV_BLOCK_SIZE
;
491 if (gcov_var
.length
+ words
> gcov_var
.alloc
)
492 gcov_allocate (gcov_var
.length
+ words
);
493 excess
= gcov_var
.alloc
- gcov_var
.length
;
495 excess
= fread (gcov_var
.buffer
+ gcov_var
.length
,
496 1, excess
<< 2, gcov_var
.file
) >> 2;
497 gcov_var
.length
+= excess
;
498 if (gcov_var
.length
< words
)
500 gcov_var
.overread
+= words
- gcov_var
.length
;
505 result
= &gcov_var
.buffer
[gcov_var
.offset
];
506 gcov_var
.offset
+= words
;
510 /* Read unsigned value from a coverage file. Sets error flag on file
511 error, overflow flag on overflow */
513 GCOV_LINKAGE gcov_unsigned_t
514 gcov_read_unsigned (void)
516 gcov_unsigned_t value
;
517 const gcov_unsigned_t
*buffer
= gcov_read_words (1);
521 value
= from_file (buffer
[0]);
525 /* Read counter value from a coverage file. Sets error flag on file
526 error, overflow flag on overflow */
528 GCOV_LINKAGE gcov_type
529 gcov_read_counter (void)
532 const gcov_unsigned_t
*buffer
= gcov_read_words (2);
536 value
= from_file (buffer
[0]);
537 if (sizeof (value
) > sizeof (gcov_unsigned_t
))
538 value
|= ((gcov_type
) from_file (buffer
[1])) << 32;
545 /* We need to expose the below function when compiling for gcov-tool. */
547 #if !IN_LIBGCOV || defined (IN_GCOV_TOOL)
548 /* Read string from coverage file. Returns a pointer to a static
549 buffer, or NULL on empty string. You must copy the string before
550 calling another gcov function. */
552 GCOV_LINKAGE
const char *
553 gcov_read_string (void)
555 unsigned length
= gcov_read_unsigned ();
560 return (const char *) gcov_read_words (length
);
565 gcov_read_summary (struct gcov_summary
*summary
)
567 unsigned ix
, h_ix
, bv_ix
, h_cnt
= 0;
568 struct gcov_ctr_summary
*csum
;
569 unsigned histo_bitvector
[GCOV_HISTOGRAM_BITVECTOR_SIZE
];
570 unsigned cur_bitvector
;
572 summary
->checksum
= gcov_read_unsigned ();
573 for (csum
= summary
->ctrs
, ix
= GCOV_COUNTERS_SUMMABLE
; ix
--; csum
++)
575 csum
->num
= gcov_read_unsigned ();
576 csum
->runs
= gcov_read_unsigned ();
577 csum
->sum_all
= gcov_read_counter ();
578 csum
->run_max
= gcov_read_counter ();
579 csum
->sum_max
= gcov_read_counter ();
580 memset (csum
->histogram
, 0,
581 sizeof (gcov_bucket_type
) * GCOV_HISTOGRAM_SIZE
);
582 for (bv_ix
= 0; bv_ix
< GCOV_HISTOGRAM_BITVECTOR_SIZE
; bv_ix
++)
584 histo_bitvector
[bv_ix
] = gcov_read_unsigned ();
586 /* When building libgcov we don't include system.h, which includes
587 hwint.h (where popcount_hwi is declared). However, libgcov.a
588 is built by the bootstrapped compiler and therefore the builtins
589 are always available. */
590 h_cnt
+= __builtin_popcount (histo_bitvector
[bv_ix
]);
592 h_cnt
+= popcount_hwi (histo_bitvector
[bv_ix
]);
600 /* Find the index corresponding to the next entry we will read in.
601 First find the next non-zero bitvector and re-initialize
602 the histogram index accordingly, then right shift and increment
603 the index until we find a set bit. */
604 while (!cur_bitvector
)
607 if (bv_ix
>= GCOV_HISTOGRAM_BITVECTOR_SIZE
)
608 gcov_error ("corrupted profile info: summary histogram "
609 "bitvector is corrupt");
610 cur_bitvector
= histo_bitvector
[bv_ix
++];
612 while (!(cur_bitvector
& 0x1))
617 if (h_ix
>= GCOV_HISTOGRAM_SIZE
)
618 gcov_error ("corrupted profile info: summary histogram "
621 csum
->histogram
[h_ix
].num_counters
= gcov_read_unsigned ();
622 csum
->histogram
[h_ix
].min_value
= gcov_read_counter ();
623 csum
->histogram
[h_ix
].cum_value
= gcov_read_counter ();
624 /* Shift off the index we are done with and increment to the
625 corresponding next histogram entry. */
632 /* We need to expose the below function when compiling for gcov-tool. */
634 #if !IN_LIBGCOV || defined (IN_GCOV_TOOL)
635 /* Reset to a known position. BASE should have been obtained from
636 gcov_position, LENGTH should be a record length. */
639 gcov_sync (gcov_position_t base
, gcov_unsigned_t length
)
641 gcov_nonruntime_assert (gcov_var
.mode
> 0);
643 if (base
- gcov_var
.start
<= gcov_var
.length
)
644 gcov_var
.offset
= base
- gcov_var
.start
;
647 gcov_var
.offset
= gcov_var
.length
= 0;
648 fseek (gcov_var
.file
, base
<< 2, SEEK_SET
);
649 gcov_var
.start
= ftell (gcov_var
.file
) >> 2;
655 /* Move to a given position in a gcov file. */
658 gcov_seek (gcov_position_t base
)
661 gcov_write_block (gcov_var
.offset
);
662 fseek (gcov_var
.file
, base
<< 2, SEEK_SET
);
663 gcov_var
.start
= ftell (gcov_var
.file
) >> 2;
668 /* Return the modification time of the current gcov file. */
675 if (fstat (fileno (gcov_var
.file
), &status
))
678 return status
.st_mtime
;
683 /* Determine the index into histogram for VALUE. */
688 GCOV_LINKAGE
unsigned
690 gcov_histo_index (gcov_type value
)
692 gcov_type_unsigned v
= (gcov_type_unsigned
)value
;
694 unsigned prev2bits
= 0;
696 /* Find index into log2 scale histogram, where each of the log2
697 sized buckets is divided into 4 linear sub-buckets for better
698 focus in the higher buckets. */
700 /* Find the place of the most-significant bit set. */
704 /* When building libgcov we don't include system.h, which includes
705 hwint.h (where floor_log2 is declared). However, libgcov.a
706 is built by the bootstrapped compiler and therefore the builtins
707 are always available. */
708 r
= sizeof (long long) * __CHAR_BIT__
- 1 - __builtin_clzll (v
);
710 /* We use floor_log2 from hwint.c, which takes a HOST_WIDE_INT
711 that is 64 bits and gcov_type_unsigned is 64 bits. */
716 /* If at most the 2 least significant bits are set (value is
717 0 - 3) then that value is our index into the lowest set of
720 return (unsigned)value
;
722 gcov_nonruntime_assert (r
< 64);
724 /* Find the two next most significant bits to determine which
725 of the four linear sub-buckets to select. */
726 prev2bits
= (v
>> (r
- 2)) & 0x3;
727 /* Finally, compose the final bucket index from the log2 index and
728 the next 2 bits. The minimum r value at this point is 2 since we
729 returned above if r was 2 or more, so the minimum bucket at this
731 return (r
- 1) * 4 + prev2bits
;
734 /* Merge SRC_HISTO into TGT_HISTO. The counters are assumed to be in
735 the same relative order in both histograms, and are matched up
736 and merged in reverse order. Each counter is assigned an equal portion of
737 its entry's original cumulative counter value when computing the
738 new merged cum_value. */
740 static void gcov_histogram_merge (gcov_bucket_type
*tgt_histo
,
741 gcov_bucket_type
*src_histo
)
743 int src_i
, tgt_i
, tmp_i
= 0;
744 unsigned src_num
, tgt_num
, merge_num
;
745 gcov_type src_cum
, tgt_cum
, merge_src_cum
, merge_tgt_cum
, merge_cum
;
747 gcov_bucket_type tmp_histo
[GCOV_HISTOGRAM_SIZE
];
750 memset (tmp_histo
, 0, sizeof (gcov_bucket_type
) * GCOV_HISTOGRAM_SIZE
);
752 /* Assume that the counters are in the same relative order in both
753 histograms. Walk the histograms from largest to smallest entry,
754 matching up and combining counters in order. */
757 src_i
= GCOV_HISTOGRAM_SIZE
- 1;
758 for (tgt_i
= GCOV_HISTOGRAM_SIZE
- 1; tgt_i
>= 0 && !src_done
; tgt_i
--)
760 tgt_num
= tgt_histo
[tgt_i
].num_counters
;
761 tgt_cum
= tgt_histo
[tgt_i
].cum_value
;
762 /* Keep going until all of the target histogram's counters at this
763 position have been matched and merged with counters from the
765 while (tgt_num
> 0 && !src_done
)
767 /* If this is either the first time through this loop or we just
768 exhausted the previous non-zero source histogram entry, look
769 for the next non-zero source histogram entry. */
772 /* Locate the next non-zero entry. */
773 while (src_i
>= 0 && !src_histo
[src_i
].num_counters
)
775 /* If source histogram has fewer counters, then just copy over the
776 remaining target counters and quit. */
779 tmp_histo
[tgt_i
].num_counters
+= tgt_num
;
780 tmp_histo
[tgt_i
].cum_value
+= tgt_cum
;
781 if (!tmp_histo
[tgt_i
].min_value
||
782 tgt_histo
[tgt_i
].min_value
< tmp_histo
[tgt_i
].min_value
)
783 tmp_histo
[tgt_i
].min_value
= tgt_histo
[tgt_i
].min_value
;
786 tmp_histo
[tgt_i
].num_counters
787 += tgt_histo
[tgt_i
].num_counters
;
788 tmp_histo
[tgt_i
].cum_value
+= tgt_histo
[tgt_i
].cum_value
;
789 if (!tmp_histo
[tgt_i
].min_value
||
790 tgt_histo
[tgt_i
].min_value
791 < tmp_histo
[tgt_i
].min_value
)
792 tmp_histo
[tgt_i
].min_value
= tgt_histo
[tgt_i
].min_value
;
799 src_num
= src_histo
[src_i
].num_counters
;
800 src_cum
= src_histo
[src_i
].cum_value
;
803 /* The number of counters to merge on this pass is the minimum
804 of the remaining counters from the current target and source
805 histogram entries. */
807 if (src_num
< merge_num
)
810 /* The merged min_value is the sum of the min_values from target
812 merge_min
= tgt_histo
[tgt_i
].min_value
+ src_histo
[src_i
].min_value
;
814 /* Compute the portion of source and target entries' cum_value
815 that will be apportioned to the counters being merged.
816 The total remaining cum_value from each entry is divided
817 equally among the counters from that histogram entry if we
818 are not merging all of them. */
819 merge_src_cum
= src_cum
;
820 if (merge_num
< src_num
)
821 merge_src_cum
= merge_num
* src_cum
/ src_num
;
822 merge_tgt_cum
= tgt_cum
;
823 if (merge_num
< tgt_num
)
824 merge_tgt_cum
= merge_num
* tgt_cum
/ tgt_num
;
825 /* The merged cum_value is the sum of the source and target
827 merge_cum
= merge_src_cum
+ merge_tgt_cum
;
829 /* Update the remaining number of counters and cum_value left
830 to be merged from this source and target entry. */
831 src_cum
-= merge_src_cum
;
832 tgt_cum
-= merge_tgt_cum
;
833 src_num
-= merge_num
;
834 tgt_num
-= merge_num
;
836 /* The merged counters get placed in the new merged histogram
837 at the entry for the merged min_value. */
838 tmp_i
= gcov_histo_index (merge_min
);
839 gcov_nonruntime_assert (tmp_i
< GCOV_HISTOGRAM_SIZE
);
840 tmp_histo
[tmp_i
].num_counters
+= merge_num
;
841 tmp_histo
[tmp_i
].cum_value
+= merge_cum
;
842 if (!tmp_histo
[tmp_i
].min_value
||
843 merge_min
< tmp_histo
[tmp_i
].min_value
)
844 tmp_histo
[tmp_i
].min_value
= merge_min
;
846 /* Ensure the search for the next non-zero src_histo entry starts
847 at the next smallest histogram bucket. */
853 gcov_nonruntime_assert (tgt_i
< 0);
855 /* In the case where there were more counters in the source histogram,
856 accumulate the remaining unmerged cumulative counter values. Add
857 those to the smallest non-zero target histogram entry. Otherwise,
858 the total cumulative counter values in the histogram will be smaller
859 than the sum_all stored in the summary, which will complicate
860 computing the working set information from the histogram later on. */
865 src_cum
+= src_histo
[src_i
].cum_value
;
868 /* At this point, tmp_i should be the smallest non-zero entry in the
870 gcov_nonruntime_assert (tmp_i
>= 0 && tmp_i
< GCOV_HISTOGRAM_SIZE
871 && tmp_histo
[tmp_i
].num_counters
> 0);
872 tmp_histo
[tmp_i
].cum_value
+= src_cum
;
874 /* Finally, copy the merged histogram into tgt_histo. */
875 memcpy (tgt_histo
, tmp_histo
,
876 sizeof (gcov_bucket_type
) * GCOV_HISTOGRAM_SIZE
);
878 #endif /* !IN_GCOV */
880 /* This is used by gcov-dump (IN_GCOV == -1) and in the compiler
881 (!IN_GCOV && !IN_LIBGCOV). */
882 #if IN_GCOV <= 0 && !IN_LIBGCOV
883 /* Compute the working set information from the counter histogram in
884 the profile summary. This is an array of information corresponding to a
885 range of percentages of the total execution count (sum_all), and includes
886 the number of counters required to cover that working set percentage and
887 the minimum counter value in that working set. */
890 compute_working_sets (const struct gcov_ctr_summary
*summary
,
891 gcov_working_set_t
*gcov_working_sets
)
893 gcov_type working_set_cum_values
[NUM_GCOV_WORKING_SETS
];
894 gcov_type ws_cum_hotness_incr
;
895 gcov_type cum
, tmp_cum
;
896 const gcov_bucket_type
*histo_bucket
;
897 unsigned ws_ix
, c_num
, count
;
900 /* Compute the amount of sum_all that the cumulative hotness grows
901 by in each successive working set entry, which depends on the
902 number of working set entries. */
903 ws_cum_hotness_incr
= summary
->sum_all
/ NUM_GCOV_WORKING_SETS
;
905 /* Next fill in an array of the cumulative hotness values corresponding
906 to each working set summary entry we are going to compute below.
907 Skip 0% statistics, which can be extrapolated from the
908 rest of the summary data. */
909 cum
= ws_cum_hotness_incr
;
910 for (ws_ix
= 0; ws_ix
< NUM_GCOV_WORKING_SETS
;
911 ws_ix
++, cum
+= ws_cum_hotness_incr
)
912 working_set_cum_values
[ws_ix
] = cum
;
913 /* The last summary entry is reserved for (roughly) 99.9% of the
914 working set. Divide by 1024 so it becomes a shift, which gives
915 almost exactly 99.9%. */
916 working_set_cum_values
[NUM_GCOV_WORKING_SETS
-1]
917 = summary
->sum_all
- summary
->sum_all
/1024;
919 /* Next, walk through the histogram in decending order of hotness
920 and compute the statistics for the working set summary array.
921 As histogram entries are accumulated, we check to see which
922 working set entries have had their expected cum_value reached
923 and fill them in, walking the working set entries in increasing
924 size of cum_value. */
925 ws_ix
= 0; /* The current entry into the working set array. */
926 cum
= 0; /* The current accumulated counter sum. */
927 count
= 0; /* The current accumulated count of block counters. */
928 for (h_ix
= GCOV_HISTOGRAM_SIZE
- 1;
929 h_ix
>= 0 && ws_ix
< NUM_GCOV_WORKING_SETS
; h_ix
--)
931 histo_bucket
= &summary
->histogram
[h_ix
];
933 /* If we haven't reached the required cumulative counter value for
934 the current working set percentage, simply accumulate this histogram
935 entry into the running sums and continue to the next histogram
937 if (cum
+ histo_bucket
->cum_value
< working_set_cum_values
[ws_ix
])
939 cum
+= histo_bucket
->cum_value
;
940 count
+= histo_bucket
->num_counters
;
944 /* If adding the current histogram entry's cumulative counter value
945 causes us to exceed the current working set size, then estimate
946 how many of this histogram entry's counter values are required to
947 reach the working set size, and fill in working set entries
948 as we reach their expected cumulative value. */
949 for (c_num
= 0, tmp_cum
= cum
;
950 c_num
< histo_bucket
->num_counters
&& ws_ix
< NUM_GCOV_WORKING_SETS
;
954 /* If we haven't reached the last histogram entry counter, add
955 in the minimum value again. This will underestimate the
956 cumulative sum so far, because many of the counter values in this
957 entry may have been larger than the minimum. We could add in the
958 average value every time, but that would require an expensive
960 if (c_num
+ 1 < histo_bucket
->num_counters
)
961 tmp_cum
+= histo_bucket
->min_value
;
962 /* If we have reached the last histogram entry counter, then add
963 in the entire cumulative value. */
965 tmp_cum
= cum
+ histo_bucket
->cum_value
;
967 /* Next walk through successive working set entries and fill in
968 the statistics for any whose size we have reached by accumulating
969 this histogram counter. */
970 while (ws_ix
< NUM_GCOV_WORKING_SETS
971 && tmp_cum
>= working_set_cum_values
[ws_ix
])
973 gcov_working_sets
[ws_ix
].num_counters
= count
;
974 gcov_working_sets
[ws_ix
].min_counter
975 = histo_bucket
->min_value
;
979 /* Finally, update the running cumulative value since we were
980 using a temporary above. */
981 cum
+= histo_bucket
->cum_value
;
983 gcov_nonruntime_assert (ws_ix
== NUM_GCOV_WORKING_SETS
);
985 #endif /* IN_GCOV <= 0 && !IN_LIBGCOV */