1 /* malloc.c 2 * 3 */ 4 5 /* 6 * 'The Chamber of Records,' said Gimli. 'I guess that is where we now stand.' 7 * 8 * [p.321 of _The Lord of the Rings_, II/v: "The Bridge of Khazad-Dûm"] 9 */ 10 11 /* This file contains Perl's own implementation of the malloc library. 12 * It is used if Configure decides that, on your platform, Perl's 13 * version is better than the OS's, or if you give Configure the 14 * -Dusemymalloc command-line option. 15 */ 16 17 /* 18 Here are some notes on configuring Perl's malloc. 19 20 There are two macros which serve as bulk disablers of advanced 21 features of this malloc: NO_FANCY_MALLOC, PLAIN_MALLOC (undef by 22 default). Look in the list of default values below to understand 23 their exact effect. Defining NO_FANCY_MALLOC returns malloc.c to the 24 state of the malloc in Perl 5.004. Additionally defining PLAIN_MALLOC 25 returns it to the state as of Perl 5.000. 26 27 Note that some of the settings below may be ignored in the code based 28 on values of other macros. The PERL_CORE symbol is only defined when 29 perl itself is being compiled (so malloc can make some assumptions 30 about perl's facilities being available to it). 31 32 Each config option has a short description, followed by its name, 33 default value, and a comment about the default (if applicable). Some 34 options take a precise value, while the others are just boolean. 35 The boolean ones are listed first. 36 37 # Read configuration settings from malloc_cfg.h 38 HAVE_MALLOC_CFG_H undef 39 40 # Enable code for an emergency memory pool in $^M. See perlvar.pod 41 # for a description of $^M. 42 PERL_EMERGENCY_SBRK !PLAIN_MALLOC 43 44 # Enable code for printing memory statistics. 45 DEBUGGING_MSTATS !PLAIN_MALLOC 46 47 # Move allocation info for small buckets into separate areas. 48 # Memory optimization (especially for small allocations, of the 49 # less than 64 bytes). Since perl usually makes a large number 50 # of small allocations, this is usually a win. 51 PACK_MALLOC (!PLAIN_MALLOC && !RCHECK) 52 53 # Add one page to big powers of two when calculating bucket size. 54 # This is targeted at big allocations, as are common in image 55 # processing. 56 TWO_POT_OPTIMIZE !PLAIN_MALLOC 57 58 # Use intermediate bucket sizes between powers-of-two. This is 59 # generally a memory optimization, and a (small) speed pessimization. 60 BUCKETS_ROOT2 !NO_FANCY_MALLOC 61 62 # Do not check small deallocations for bad free(). Memory 63 # and speed optimization, error reporting pessimization. 64 IGNORE_SMALL_BAD_FREE (!NO_FANCY_MALLOC && !RCHECK) 65 66 # Use table lookup to decide in which bucket a given allocation will go. 67 SMALL_BUCKET_VIA_TABLE !NO_FANCY_MALLOC 68 69 # Use a perl-defined sbrk() instead of the (presumably broken or 70 # missing) system-supplied sbrk(). 71 USE_PERL_SBRK undef 72 73 # Use system malloc() (or calloc() etc.) to emulate sbrk(). Normally 74 # only used with broken sbrk()s. 75 PERL_SBRK_VIA_MALLOC undef 76 77 # Which allocator to use if PERL_SBRK_VIA_MALLOC 78 SYSTEM_ALLOC(a) malloc(a) 79 80 # Minimal alignment (in bytes, should be a power of 2) of SYSTEM_ALLOC 81 SYSTEM_ALLOC_ALIGNMENT MEM_ALIGNBYTES 82 83 # Disable memory overwrite checking with DEBUGGING. Memory and speed 84 # optimization, error reporting pessimization. 85 NO_RCHECK undef 86 87 # Enable memory overwrite checking with DEBUGGING. Memory and speed 88 # pessimization, error reporting optimization 89 RCHECK (DEBUGGING && !NO_RCHECK) 90 91 # Do not overwrite uninit areas with DEBUGGING. Speed 92 # optimization, error reporting pessimization 93 NO_MFILL undef 94 95 # Overwrite uninit areas with DEBUGGING. Speed 96 # pessimization, error reporting optimization 97 MALLOC_FILL (DEBUGGING && !NO_RCHECK && !NO_MFILL) 98 99 # Do not check overwritten uninit areas with DEBUGGING. Speed 100 # optimization, error reporting pessimization 101 NO_FILL_CHECK undef 102 103 # Check overwritten uninit areas with DEBUGGING. Speed 104 # pessimization, error reporting optimization 105 MALLOC_FILL_CHECK (DEBUGGING && !NO_RCHECK && !NO_FILL_CHECK) 106 107 # Failed allocations bigger than this size croak (if 108 # PERL_EMERGENCY_SBRK is enabled) without touching $^M. See 109 # perlvar.pod for a description of $^M. 110 BIG_SIZE (1<<16) # 64K 111 112 # Starting from this power of two, add an extra page to the 113 # size of the bucket. This enables optimized allocations of sizes 114 # close to powers of 2. Note that the value is indexed at 0. 115 FIRST_BIG_POW2 15 # 32K, 16K is used too often 116 117 # Estimate of minimal memory footprint. malloc uses this value to 118 # request the most reasonable largest blocks of memory from the system. 119 FIRST_SBRK (48*1024) 120 121 # Round up sbrk()s to multiples of this. 122 MIN_SBRK 2048 123 124 # Round up sbrk()s to multiples of this percent of footprint. 125 MIN_SBRK_FRAC 3 126 127 # Round up sbrk()s to multiples of this multiple of 1/1000 of footprint. 128 MIN_SBRK_FRAC1000 (10 * MIN_SBRK_FRAC) 129 130 # Add this much memory to big powers of two to get the bucket size. 131 PERL_PAGESIZE 4096 132 133 # This many sbrk() discontinuities should be tolerated even 134 # from the start without deciding that sbrk() is usually 135 # discontinuous. 136 SBRK_ALLOW_FAILURES 3 137 138 # This many continuous sbrk()s compensate for one discontinuous one. 139 SBRK_FAILURE_PRICE 50 140 141 # Some configurations may ask for 12-byte-or-so allocations which 142 # require 8-byte alignment (?!). In such situation one needs to 143 # define this to disable 12-byte bucket (will increase memory footprint) 144 STRICT_ALIGNMENT undef 145 146 # Do not allow configuration of runtime options at runtime 147 NO_MALLOC_DYNAMIC_CFG undef 148 149 # Do not allow configuration of runtime options via $ENV{PERL_MALLOC_OPT} 150 NO_PERL_MALLOC_ENV undef 151 152 [The variable consists of ;-separated parts of the form CODE=VALUE 153 with 1-character codes F, M, f, A, P, G, d, a, c for runtime 154 configuration of FIRST_SBRK, MIN_SBRK, MIN_SBRK_FRAC1000, 155 SBRK_ALLOW_FAILURES, SBRK_FAILURE_PRICE, sbrk_goodness, 156 filldead, fillalive, fillcheck. The last 3 are for DEBUGGING 157 build, and allow switching the tests for free()ed memory read, 158 uninit memory reads, and free()ed memory write.] 159 160 This implementation assumes that calling PerlIO_printf() does not 161 result in any memory allocation calls (used during a panic). 162 163 */ 164 165 166 #ifdef HAVE_MALLOC_CFG_H 167 # include "malloc_cfg.h" 168 #endif 169 170 #ifndef NO_FANCY_MALLOC 171 # ifndef SMALL_BUCKET_VIA_TABLE 172 # define SMALL_BUCKET_VIA_TABLE 173 # endif 174 # ifndef BUCKETS_ROOT2 175 # define BUCKETS_ROOT2 176 # endif 177 # ifndef IGNORE_SMALL_BAD_FREE 178 # define IGNORE_SMALL_BAD_FREE 179 # endif 180 #endif 181 182 #ifndef PLAIN_MALLOC /* Bulk enable features */ 183 # ifndef PACK_MALLOC 184 # define PACK_MALLOC 185 # endif 186 # ifndef TWO_POT_OPTIMIZE 187 # define TWO_POT_OPTIMIZE 188 # endif 189 # ifndef PERL_EMERGENCY_SBRK 190 # define PERL_EMERGENCY_SBRK 191 # endif 192 # ifndef DEBUGGING_MSTATS 193 # define DEBUGGING_MSTATS 194 # endif 195 #endif 196 197 #define MIN_BUC_POW2 (sizeof(void*) > 4 ? 3 : 2) /* Allow for 4-byte arena. */ 198 #define MIN_BUCKET (MIN_BUC_POW2 * BUCKETS_PER_POW2) 199 200 #define LOG_OF_MIN_ARENA 11 201 202 #if defined(DEBUGGING) && !defined(NO_RCHECK) 203 # define RCHECK 204 #endif 205 #if defined(DEBUGGING) && !defined(NO_RCHECK) && !defined(NO_MFILL) && !defined(MALLOC_FILL) 206 # define MALLOC_FILL 207 #endif 208 #if defined(DEBUGGING) && !defined(NO_RCHECK) && !defined(NO_FILL_CHECK) && !defined(MALLOC_FILL_CHECK) 209 # define MALLOC_FILL_CHECK 210 #endif 211 #if defined(RCHECK) && defined(IGNORE_SMALL_BAD_FREE) 212 # undef IGNORE_SMALL_BAD_FREE 213 #endif 214 /* 215 * malloc.c (Caltech) 2/21/82 216 * Chris Kingsley, kingsley@cit-20. 217 * 218 * This is a very fast storage allocator. It allocates blocks of a small 219 * number of different sizes, and keeps free lists of each size. Blocks that 220 * don't exactly fit are passed up to the next larger size. In this 221 * implementation, the available sizes are 2^n-4 (or 2^n-12) bytes long. 222 * If PACK_MALLOC is defined, small blocks are 2^n bytes long. 223 * This is designed for use in a program that uses vast quantities of memory, 224 * but bombs when it runs out. 225 * 226 * Modifications Copyright Ilya Zakharevich 1996-99. 227 * 228 * Still very quick, but much more thrifty. (Std config is 10% slower 229 * than it was, and takes 67% of old heap size for typical usage.) 230 * 231 * Allocations of small blocks are now table-driven to many different 232 * buckets. Sizes of really big buckets are increased to accommodate 233 * common size=power-of-2 blocks. Running-out-of-memory is made into 234 * an exception. Deeply configurable and thread-safe. 235 * 236 */ 237 238 #include "EXTERN.h" 239 #define PERL_IN_MALLOC_C 240 #include "perl.h" 241 #if defined(PERL_IMPLICIT_CONTEXT) 242 # define croak Perl_croak_nocontext 243 # define croak2 Perl_croak_nocontext 244 # define warn Perl_warn_nocontext 245 # define warn2 Perl_warn_nocontext 246 #else 247 # define croak2 croak 248 # define warn2 warn 249 #endif 250 #ifdef USE_ITHREADS 251 # define PERL_MAYBE_ALIVE PL_thr_key 252 #else 253 # define PERL_MAYBE_ALIVE 1 254 #endif 255 256 #ifndef MYMALLOC 257 # error "MYMALLOC is not defined" 258 #endif 259 260 #ifndef MUTEX_LOCK 261 # define MUTEX_LOCK(l) 262 #endif 263 264 #ifndef MUTEX_UNLOCK 265 # define MUTEX_UNLOCK(l) 266 #endif 267 268 #ifndef MALLOC_LOCK 269 # define MALLOC_LOCK MUTEX_LOCK(&PL_malloc_mutex) 270 #endif 271 272 #ifndef MALLOC_UNLOCK 273 # define MALLOC_UNLOCK MUTEX_UNLOCK(&PL_malloc_mutex) 274 #endif 275 276 # ifndef fatalcroak /* make depend */ 277 # define fatalcroak(mess) (write(2, (mess), strlen(mess)), exit(2)) 278 # endif 279 280 #ifdef DEBUGGING 281 # undef DEBUG_m 282 # define DEBUG_m(a) \ 283 STMT_START { \ 284 if (PERL_MAYBE_ALIVE && PERL_GET_THX) { \ 285 dTHX; \ 286 if (DEBUG_m_TEST) { \ 287 PL_debug &= ~DEBUG_m_FLAG; \ 288 a; \ 289 PL_debug |= DEBUG_m_FLAG; \ 290 } \ 291 } \ 292 } STMT_END 293 #endif 294 295 #ifdef PERL_IMPLICIT_CONTEXT 296 # define PERL_IS_ALIVE aTHX 297 #else 298 # define PERL_IS_ALIVE TRUE 299 #endif 300 301 302 /* 303 * Layout of memory: 304 * ~~~~~~~~~~~~~~~~ 305 * The memory is broken into "blocks" which occupy multiples of 2K (and 306 * generally speaking, have size "close" to a power of 2). The addresses 307 * of such *unused* blocks are kept in nextf[i] with big enough i. (nextf 308 * is an array of linked lists.) (Addresses of used blocks are not known.) 309 * 310 * Moreover, since the algorithm may try to "bite" smaller blocks out 311 * of unused bigger ones, there are also regions of "irregular" size, 312 * managed separately, by a linked list chunk_chain. 313 * 314 * The third type of storage is the sbrk()ed-but-not-yet-used space, its 315 * end and size are kept in last_sbrk_top and sbrked_remains. 316 * 317 * Growing blocks "in place": 318 * ~~~~~~~~~~~~~~~~~~~~~~~~~ 319 * The address of the block with the greatest address is kept in last_op 320 * (if not known, last_op is 0). If it is known that the memory above 321 * last_op is not continuous, or contains a chunk from chunk_chain, 322 * last_op is set to 0. 323 * 324 * The chunk with address last_op may be grown by expanding into 325 * sbrk()ed-but-not-yet-used space, or trying to sbrk() more continuous 326 * memory. 327 * 328 * Management of last_op: 329 * ~~~~~~~~~~~~~~~~~~~~~ 330 * 331 * free() never changes the boundaries of blocks, so is not relevant. 332 * 333 * The only way realloc() may change the boundaries of blocks is if it 334 * grows a block "in place". However, in the case of success such a 335 * chunk is automatically last_op, and it remains last_op. In the case 336 * of failure getpages_adjacent() clears last_op. 337 * 338 * malloc() may change blocks by calling morecore() only. 339 * 340 * morecore() may create new blocks by: 341 * a) biting pieces from chunk_chain (cannot create one above last_op); 342 * b) biting a piece from an unused block (if block was last_op, this 343 * may create a chunk from chain above last_op, thus last_op is 344 * invalidated in such a case). 345 * c) biting of sbrk()ed-but-not-yet-used space. This creates 346 * a block which is last_op. 347 * d) Allocating new pages by calling getpages(); 348 * 349 * getpages() creates a new block. It marks last_op at the bottom of 350 * the chunk of memory it returns. 351 * 352 * Active pages footprint: 353 * ~~~~~~~~~~~~~~~~~~~~~~ 354 * Note that we do not need to traverse the lists in nextf[i], just take 355 * the first element of this list. However, we *need* to traverse the 356 * list in chunk_chain, but most the time it should be a very short one, 357 * so we do not step on a lot of pages we are not going to use. 358 * 359 * Flaws: 360 * ~~~~~ 361 * get_from_bigger_buckets(): forget to increment price => Quite 362 * aggressive. 363 */ 364 365 /* I don't much care whether these are defined in sys/types.h--LAW */ 366 367 #define u_char unsigned char 368 #define u_int unsigned int 369 /* 370 * I removed the definition of u_bigint which appeared to be u_bigint = UV 371 * u_bigint was only used in TWOK_MASKED and TWOK_SHIFT 372 * where I have used PTR2UV. RMB 373 */ 374 #define u_short unsigned short 375 376 #if defined(RCHECK) && defined(PACK_MALLOC) 377 # undef PACK_MALLOC 378 #endif 379 380 /* 381 * The description below is applicable if PACK_MALLOC is not defined. 382 * 383 * The overhead on a block is at least 4 bytes. When free, this space 384 * contains a pointer to the next free block, and the bottom two bits must 385 * be zero. When in use, the first byte is set to MAGIC, and the second 386 * byte is the size index. The remaining bytes are for alignment. 387 * If range checking is enabled and the size of the block fits 388 * in two bytes, then the top two bytes hold the size of the requested block 389 * plus the range checking words, and the header word MINUS ONE. 390 */ 391 union overhead { 392 union overhead *ov_next; /* when free */ 393 #if MEM_ALIGNBYTES > 4 394 double strut; /* alignment problems */ 395 # if MEM_ALIGNBYTES > 8 396 char sstrut[MEM_ALIGNBYTES]; /* for the sizing */ 397 # endif 398 #endif 399 struct { 400 /* 401 * Keep the ovu_index and ovu_magic in this order, having a char 402 * field first gives alignment indigestion in some systems, such as 403 * MachTen. 404 */ 405 u_char ovu_index; /* bucket # */ 406 u_char ovu_magic; /* magic number */ 407 #ifdef RCHECK 408 /* Subtract one to fit into u_short for an extra bucket */ 409 u_short ovu_size; /* block size (requested + overhead - 1) */ 410 u_int ovu_rmagic; /* range magic number */ 411 #endif 412 } ovu; 413 #define ov_magic ovu.ovu_magic 414 #define ov_index ovu.ovu_index 415 #define ov_size ovu.ovu_size 416 #define ov_rmagic ovu.ovu_rmagic 417 }; 418 419 #define MAGIC 0xff /* magic # on accounting info */ 420 #define RMAGIC 0x55555555 /* magic # on range info */ 421 #define RMAGIC_C 0x55 /* magic # on range info */ 422 423 #ifdef RCHECK 424 # define RMAGIC_SZ sizeof (u_int) /* Overhead at end of bucket */ 425 # ifdef TWO_POT_OPTIMIZE 426 # define MAX_SHORT_BUCKET (12 * BUCKETS_PER_POW2) /* size-1 fits in short */ 427 # else 428 # define MAX_SHORT_BUCKET (13 * BUCKETS_PER_POW2) 429 # endif 430 #else 431 # define RMAGIC_SZ 0 432 #endif 433 434 #if !defined(PACK_MALLOC) && defined(BUCKETS_ROOT2) 435 # undef BUCKETS_ROOT2 436 #endif 437 438 #ifdef BUCKETS_ROOT2 439 # define BUCKET_TABLE_SHIFT 2 440 # define BUCKET_POW2_SHIFT 1 441 # define BUCKETS_PER_POW2 2 442 #else 443 # define BUCKET_TABLE_SHIFT MIN_BUC_POW2 444 # define BUCKET_POW2_SHIFT 0 445 # define BUCKETS_PER_POW2 1 446 #endif 447 448 #if !defined(MEM_ALIGNBYTES) || ((MEM_ALIGNBYTES > 4) && !defined(STRICT_ALIGNMENT)) 449 /* Figure out the alignment of void*. */ 450 struct aligner { 451 char c; 452 void *p; 453 }; 454 # define ALIGN_SMALL ((IV)((caddr_t)&(((struct aligner*)0)->p))) 455 #else 456 # define ALIGN_SMALL MEM_ALIGNBYTES 457 #endif 458 459 #define IF_ALIGN_8(yes,no) ((ALIGN_SMALL>4) ? (yes) : (no)) 460 461 #ifdef BUCKETS_ROOT2 462 # define MAX_BUCKET_BY_TABLE 13 463 static const u_short buck_size[MAX_BUCKET_BY_TABLE + 1] = 464 { 465 0, 0, 0, 0, 4, 4, 8, 12, 16, 24, 32, 48, 64, 80, 466 }; 467 # define BUCKET_SIZE_NO_SURPLUS(i) ((i) % 2 ? buck_size[i] : (1 << ((i) >> BUCKET_POW2_SHIFT))) 468 # define BUCKET_SIZE_REAL(i) ((i) <= MAX_BUCKET_BY_TABLE \ 469 ? buck_size[i] \ 470 : ((1 << ((i) >> BUCKET_POW2_SHIFT)) \ 471 - MEM_OVERHEAD(i) \ 472 + POW2_OPTIMIZE_SURPLUS(i))) 473 #else 474 # define BUCKET_SIZE_NO_SURPLUS(i) (1 << ((i) >> BUCKET_POW2_SHIFT)) 475 # define BUCKET_SIZE(i) (BUCKET_SIZE_NO_SURPLUS(i) + POW2_OPTIMIZE_SURPLUS(i)) 476 # define BUCKET_SIZE_REAL(i) (BUCKET_SIZE(i) - MEM_OVERHEAD(i)) 477 #endif 478 479 480 #ifdef PACK_MALLOC 481 /* In this case there are several possible layout of arenas depending 482 * on the size. Arenas are of sizes multiple to 2K, 2K-aligned, and 483 * have a size close to a power of 2. 484 * 485 * Arenas of the size >= 4K keep one chunk only. Arenas of size 2K 486 * may keep one chunk or multiple chunks. Here are the possible 487 * layouts of arenas: 488 * 489 * # One chunk only, chunksize 2^k + SOMETHING - ALIGN, k >= 11 490 * 491 * INDEX MAGIC1 UNUSED CHUNK1 492 * 493 * # Multichunk with sanity checking and chunksize 2^k-ALIGN, k>7 494 * 495 * INDEX MAGIC1 MAGIC2 MAGIC3 UNUSED CHUNK1 CHUNK2 CHUNK3 ... 496 * 497 * # Multichunk with sanity checking and size 2^k-ALIGN, k=7 498 * 499 * INDEX MAGIC1 MAGIC2 MAGIC3 UNUSED CHUNK1 UNUSED CHUNK2 CHUNK3 ... 500 * 501 * # Multichunk with sanity checking and size up to 80 502 * 503 * INDEX UNUSED MAGIC1 UNUSED MAGIC2 UNUSED ... CHUNK1 CHUNK2 CHUNK3 ... 504 * 505 * # No sanity check (usually up to 48=byte-long buckets) 506 * INDEX UNUSED CHUNK1 CHUNK2 ... 507 * 508 * Above INDEX and MAGIC are one-byte-long. Sizes of UNUSED are 509 * appropriate to keep algorithms simple and memory aligned. INDEX 510 * encodes the size of the chunk, while MAGICn encodes state (used, 511 * free or non-managed-by-us-so-it-indicates-a-bug) of CHUNKn. MAGIC 512 * is used for sanity checking purposes only. SOMETHING is 0 or 4K 513 * (to make size of big CHUNK accommodate allocations for powers of two 514 * better). 515 * 516 * [There is no need to alignment between chunks, since C rules ensure 517 * that structs which need 2^k alignment have sizeof which is 518 * divisible by 2^k. Thus as far as the last chunk is aligned at the 519 * end of the arena, and 2K-alignment does not contradict things, 520 * everything is going to be OK for sizes of chunks 2^n and 2^n + 521 * 2^k. Say, 80-bit buckets will be 16-bit aligned, and as far as we 522 * put allocations for requests in 65..80 range, all is fine. 523 * 524 * Note, however, that standard malloc() puts more strict 525 * requirements than the above C rules. Moreover, our algorithms of 526 * realloc() may break this idyll, but we suppose that realloc() does 527 * need not change alignment.] 528 * 529 * Is very important to make calculation of the offset of MAGICm as 530 * quick as possible, since it is done on each malloc()/free(). In 531 * fact it is so quick that it has quite little effect on the speed of 532 * doing malloc()/free(). [By default] We forego such calculations 533 * for small chunks, but only to save extra 3% of memory, not because 534 * of speed considerations. 535 * 536 * Here is the algorithm [which is the same for all the allocations 537 * schemes above], see OV_MAGIC(block,bucket). Let OFFSETm be the 538 * offset of the CHUNKm from the start of ARENA. Then offset of 539 * MAGICm is (OFFSET1 >> SHIFT) + ADDOFFSET. Here SHIFT and ADDOFFSET 540 * are numbers which depend on the size of the chunks only. 541 * 542 * Let as check some sanity conditions. Numbers OFFSETm>>SHIFT are 543 * different for all the chunks in the arena if 2^SHIFT is not greater 544 * than size of the chunks in the arena. MAGIC1 will not overwrite 545 * INDEX provided ADDOFFSET is >0 if OFFSET1 < 2^SHIFT. MAGIClast 546 * will not overwrite CHUNK1 if OFFSET1 > (OFFSETlast >> SHIFT) + 547 * ADDOFFSET. 548 * 549 * Make SHIFT the maximal possible (there is no point in making it 550 * smaller). Since OFFSETlast is 2K - CHUNKSIZE, above restrictions 551 * give restrictions on OFFSET1 and on ADDOFFSET. 552 * 553 * In particular, for chunks of size 2^k with k>=6 we can put 554 * ADDOFFSET to be from 0 to 2^k - 2^(11-k), and have 555 * OFFSET1==chunksize. For chunks of size 80 OFFSET1 of 2K%80=48 is 556 * large enough to have ADDOFFSET between 1 and 16 (similarly for 96, 557 * when ADDOFFSET should be 1). In particular, keeping MAGICs for 558 * these sizes gives no additional size penalty. 559 * 560 * However, for chunks of size 2^k with k<=5 this gives OFFSET1 >= 561 * ADDOFSET + 2^(11-k). Keeping ADDOFFSET 0 allows for 2^(11-k)-2^(11-2k) 562 * chunks per arena. This is smaller than 2^(11-k) - 1 which are 563 * needed if no MAGIC is kept. [In fact, having a negative ADDOFFSET 564 * would allow for slightly more buckets per arena for k=2,3.] 565 * 566 * Similarly, for chunks of size 3/2*2^k with k<=5 MAGICs would span 567 * the area up to 2^(11-k)+ADDOFFSET. For k=4 this give optimal 568 * ADDOFFSET as -7..0. For k=3 ADDOFFSET can go up to 4 (with tiny 569 * savings for negative ADDOFFSET). For k=5 ADDOFFSET can go -1..16 570 * (with no savings for negative values). 571 * 572 * In particular, keeping ADDOFFSET 0 for sizes of chunks up to 2^6 573 * leads to tiny pessimizations in case of sizes 4, 8, 12, 24, and 574 * leads to no contradictions except for size=80 (or 96.) 575 * 576 * However, it also makes sense to keep no magic for sizes 48 or less. 577 * This is what we do. In this case one needs ADDOFFSET>=1 also for 578 * chunksizes 12, 24, and 48, unless one gets one less chunk per 579 * arena. 580 * 581 * The algo of OV_MAGIC(block,bucket) keeps ADDOFFSET 0 until 582 * chunksize of 64, then makes it 1. 583 * 584 * This allows for an additional optimization: the above scheme leads 585 * to giant overheads for sizes 128 or more (one whole chunk needs to 586 * be sacrifised to keep INDEX). Instead we use chunks not of size 587 * 2^k, but of size 2^k-ALIGN. If we pack these chunks at the end of 588 * the arena, then the beginnings are still in different 2^k-long 589 * sections of the arena if k>=7 for ALIGN==4, and k>=8 if ALIGN=8. 590 * Thus for k>7 the above algo of calculating the offset of the magic 591 * will still give different answers for different chunks. And to 592 * avoid the overrun of MAGIC1 into INDEX, one needs ADDOFFSET of >=1. 593 * In the case k=7 we just move the first chunk an extra ALIGN 594 * backward inside the ARENA (this is done once per arena lifetime, 595 * thus is not a big overhead). */ 596 # define MAX_PACKED_POW2 6 597 # define MAX_PACKED (MAX_PACKED_POW2 * BUCKETS_PER_POW2 + BUCKET_POW2_SHIFT) 598 # define MAX_POW2_ALGO ((1<<(MAX_PACKED_POW2 + 1)) - M_OVERHEAD) 599 # define TWOK_MASK ((1<<LOG_OF_MIN_ARENA) - 1) 600 # define TWOK_MASKED(x) (PTR2UV(x) & ~TWOK_MASK) 601 # define TWOK_SHIFT(x) (PTR2UV(x) & TWOK_MASK) 602 # define OV_INDEXp(block) (INT2PTR(u_char*,TWOK_MASKED(block))) 603 # define OV_INDEX(block) (*OV_INDEXp(block)) 604 # define OV_MAGIC(block,bucket) (*(OV_INDEXp(block) + \ 605 (TWOK_SHIFT(block)>> \ 606 (bucket>>BUCKET_POW2_SHIFT)) + \ 607 (bucket >= MIN_NEEDS_SHIFT ? 1 : 0))) 608 /* A bucket can have a shift smaller than it size, we need to 609 shift its magic number so it will not overwrite index: */ 610 # ifdef BUCKETS_ROOT2 611 # define MIN_NEEDS_SHIFT (7*BUCKETS_PER_POW2 - 1) /* Shift 80 greater than chunk 64. */ 612 # else 613 # define MIN_NEEDS_SHIFT (7*BUCKETS_PER_POW2) /* Shift 128 greater than chunk 32. */ 614 # endif 615 # define CHUNK_SHIFT 0 616 617 /* Number of active buckets of given ordinal. */ 618 #ifdef IGNORE_SMALL_BAD_FREE 619 #define FIRST_BUCKET_WITH_CHECK (6 * BUCKETS_PER_POW2) /* 64 */ 620 # define N_BLKS(bucket) ( (bucket) < FIRST_BUCKET_WITH_CHECK \ 621 ? ((1<<LOG_OF_MIN_ARENA) - 1)/BUCKET_SIZE_NO_SURPLUS(bucket) \ 622 : n_blks[bucket] ) 623 #else 624 # define N_BLKS(bucket) n_blks[bucket] 625 #endif 626 627 static const u_short n_blks[LOG_OF_MIN_ARENA * BUCKETS_PER_POW2] = 628 { 629 # if BUCKETS_PER_POW2==1 630 0, 0, 631 (MIN_BUC_POW2==2 ? 384 : 0), 632 224, 120, 62, 31, 16, 8, 4, 2 633 # else 634 0, 0, 0, 0, 635 (MIN_BUC_POW2==2 ? 384 : 0), (MIN_BUC_POW2==2 ? 384 : 0), /* 4, 4 */ 636 224, 149, 120, 80, 62, 41, 31, 25, 16, 16, 8, 8, 4, 4, 2, 2 637 # endif 638 }; 639 640 /* Shift of the first bucket with the given ordinal inside 2K chunk. */ 641 #ifdef IGNORE_SMALL_BAD_FREE 642 # define BLK_SHIFT(bucket) ( (bucket) < FIRST_BUCKET_WITH_CHECK \ 643 ? ((1<<LOG_OF_MIN_ARENA) \ 644 - BUCKET_SIZE_NO_SURPLUS(bucket) * N_BLKS(bucket)) \ 645 : blk_shift[bucket]) 646 #else 647 # define BLK_SHIFT(bucket) blk_shift[bucket] 648 #endif 649 650 static const u_short blk_shift[LOG_OF_MIN_ARENA * BUCKETS_PER_POW2] = 651 { 652 # if BUCKETS_PER_POW2==1 653 0, 0, 654 (MIN_BUC_POW2==2 ? 512 : 0), 655 256, 128, 64, 64, /* 8 to 64 */ 656 16*sizeof(union overhead), 657 8*sizeof(union overhead), 658 4*sizeof(union overhead), 659 2*sizeof(union overhead), 660 # else 661 0, 0, 0, 0, 662 (MIN_BUC_POW2==2 ? 512 : 0), (MIN_BUC_POW2==2 ? 512 : 0), 663 256, 260, 128, 128, 64, 80, 64, 48, /* 8 to 96 */ 664 16*sizeof(union overhead), 16*sizeof(union overhead), 665 8*sizeof(union overhead), 8*sizeof(union overhead), 666 4*sizeof(union overhead), 4*sizeof(union overhead), 667 2*sizeof(union overhead), 2*sizeof(union overhead), 668 # endif 669 }; 670 671 # define NEEDED_ALIGNMENT 0x800 /* 2k boundaries */ 672 # define WANTED_ALIGNMENT 0x800 /* 2k boundaries */ 673 674 #else /* !PACK_MALLOC */ 675 676 # define OV_MAGIC(block,bucket) (block)->ov_magic 677 # define OV_INDEX(block) (block)->ov_index 678 # define CHUNK_SHIFT 1 679 # define MAX_PACKED -1 680 # define NEEDED_ALIGNMENT MEM_ALIGNBYTES 681 # define WANTED_ALIGNMENT 0x400 /* 1k boundaries */ 682 683 #endif /* !PACK_MALLOC */ 684 685 #define M_OVERHEAD (sizeof(union overhead) + RMAGIC_SZ) /* overhead at start+end */ 686 687 #ifdef PACK_MALLOC 688 # define MEM_OVERHEAD(bucket) \ 689 (bucket <= MAX_PACKED ? 0 : M_OVERHEAD) 690 # ifdef SMALL_BUCKET_VIA_TABLE 691 # define START_SHIFTS_BUCKET ((MAX_PACKED_POW2 + 1) * BUCKETS_PER_POW2) 692 # define START_SHIFT MAX_PACKED_POW2 693 # ifdef BUCKETS_ROOT2 /* Chunks of size 3*2^n. */ 694 # define SIZE_TABLE_MAX 80 695 # else 696 # define SIZE_TABLE_MAX 64 697 # endif 698 static const char bucket_of[] = 699 { 700 # ifdef BUCKETS_ROOT2 /* Chunks of size 3*2^n. */ 701 /* 0 to 15 in 4-byte increments. */ 702 (sizeof(void*) > 4 ? 6 : 5), /* 4/8, 5-th bucket for better reports */ 703 6, /* 8 */ 704 IF_ALIGN_8(8,7), 8, /* 16/12, 16 */ 705 9, 9, 10, 10, /* 24, 32 */ 706 11, 11, 11, 11, /* 48 */ 707 12, 12, 12, 12, /* 64 */ 708 13, 13, 13, 13, /* 80 */ 709 13, 13, 13, 13 /* 80 */ 710 # else /* !BUCKETS_ROOT2 */ 711 /* 0 to 15 in 4-byte increments. */ 712 (sizeof(void*) > 4 ? 3 : 2), 713 3, 714 4, 4, 715 5, 5, 5, 5, 716 6, 6, 6, 6, 717 6, 6, 6, 6 718 # endif /* !BUCKETS_ROOT2 */ 719 }; 720 # else /* !SMALL_BUCKET_VIA_TABLE */ 721 # define START_SHIFTS_BUCKET MIN_BUCKET 722 # define START_SHIFT (MIN_BUC_POW2 - 1) 723 # endif /* !SMALL_BUCKET_VIA_TABLE */ 724 #else /* !PACK_MALLOC */ 725 # define MEM_OVERHEAD(bucket) M_OVERHEAD 726 # ifdef SMALL_BUCKET_VIA_TABLE 727 # undef SMALL_BUCKET_VIA_TABLE 728 # endif 729 # define START_SHIFTS_BUCKET MIN_BUCKET 730 # define START_SHIFT (MIN_BUC_POW2 - 1) 731 #endif /* !PACK_MALLOC */ 732 733 /* 734 * Big allocations are often of the size 2^n bytes. To make them a 735 * little bit better, make blocks of size 2^n+pagesize for big n. 736 */ 737 738 #ifdef TWO_POT_OPTIMIZE 739 740 # ifndef PERL_PAGESIZE 741 # define PERL_PAGESIZE 4096 742 # endif 743 # ifndef FIRST_BIG_POW2 744 # define FIRST_BIG_POW2 15 /* 32K, 16K is used too often. */ 745 # endif 746 # define FIRST_BIG_BLOCK (1<<FIRST_BIG_POW2) 747 /* If this value or more, check against bigger blocks. */ 748 # define FIRST_BIG_BOUND (FIRST_BIG_BLOCK - M_OVERHEAD) 749 /* If less than this value, goes into 2^n-overhead-block. */ 750 # define LAST_SMALL_BOUND ((FIRST_BIG_BLOCK>>1) - M_OVERHEAD) 751 752 # define POW2_OPTIMIZE_ADJUST(nbytes) \ 753 ((nbytes >= FIRST_BIG_BOUND) ? nbytes -= PERL_PAGESIZE : 0) 754 # define POW2_OPTIMIZE_SURPLUS(bucket) \ 755 ((bucket >= FIRST_BIG_POW2 * BUCKETS_PER_POW2) ? PERL_PAGESIZE : 0) 756 757 #else /* !TWO_POT_OPTIMIZE */ 758 # define POW2_OPTIMIZE_ADJUST(nbytes) 759 # define POW2_OPTIMIZE_SURPLUS(bucket) 0 760 #endif /* !TWO_POT_OPTIMIZE */ 761 762 #define BARK_64K_LIMIT(what,nbytes,size) 763 764 #ifndef MIN_SBRK 765 # define MIN_SBRK 2048 766 #endif 767 768 #ifndef FIRST_SBRK 769 # define FIRST_SBRK (48*1024) 770 #endif 771 772 /* Minimal sbrk in percents of what is already alloced. */ 773 #ifndef MIN_SBRK_FRAC 774 # define MIN_SBRK_FRAC 3 775 #endif 776 777 #ifndef SBRK_ALLOW_FAILURES 778 # define SBRK_ALLOW_FAILURES 3 779 #endif 780 781 #ifndef SBRK_FAILURE_PRICE 782 # define SBRK_FAILURE_PRICE 50 783 #endif 784 785 static void morecore (int bucket); 786 # if defined(DEBUGGING) 787 static void botch (const char *diag, const char *s, const char *file, int line); 788 # endif 789 static void add_to_chain (void *p, MEM_SIZE size, MEM_SIZE chip); 790 static void* get_from_chain (MEM_SIZE size); 791 static void* get_from_bigger_buckets(int bucket, MEM_SIZE size); 792 static union overhead *getpages (MEM_SIZE needed, int *nblksp, int bucket); 793 static int getpages_adjacent(MEM_SIZE require); 794 795 #ifdef I_MACH_CTHREADS 796 # undef MUTEX_LOCK 797 # define MUTEX_LOCK(m) STMT_START { if (*m) mutex_lock(*m); } STMT_END 798 # undef MUTEX_UNLOCK 799 # define MUTEX_UNLOCK(m) STMT_START { if (*m) mutex_unlock(*m); } STMT_END 800 #endif 801 802 #ifndef PTRSIZE 803 # define PTRSIZE sizeof(void*) 804 #endif 805 806 #ifndef BITS_IN_PTR 807 # define BITS_IN_PTR (8*PTRSIZE) 808 #endif 809 810 /* 811 * nextf[i] is the pointer to the next free block of size 2^i. The 812 * smallest allocatable block is 8 bytes. The overhead information 813 * precedes the data area returned to the user. 814 */ 815 #define NBUCKETS (BITS_IN_PTR*BUCKETS_PER_POW2 + 1) 816 static union overhead *nextf[NBUCKETS]; 817 818 #if defined(PURIFY) && !defined(USE_PERL_SBRK) 819 # define USE_PERL_SBRK 820 #endif 821 822 #ifdef USE_PERL_SBRK 823 # define sbrk(a) Perl_sbrk(a) 824 Malloc_t Perl_sbrk (int size); 825 #else 826 # ifndef HAS_SBRK_PROTO /* <unistd.h> usually takes care of this */ 827 extern Malloc_t sbrk(int); 828 # endif 829 #endif 830 831 #ifndef MIN_SBRK_FRAC1000 /* Backward compatibility */ 832 # define MIN_SBRK_FRAC1000 (MIN_SBRK_FRAC * 10) 833 #endif 834 835 #ifndef START_EXTERN_C 836 # ifdef __cplusplus 837 # define START_EXTERN_C extern "C" { 838 # else 839 # define START_EXTERN_C 840 # endif 841 #endif 842 843 #ifndef END_EXTERN_C 844 # ifdef __cplusplus 845 # define END_EXTERN_C }; 846 # else 847 # define END_EXTERN_C 848 # endif 849 #endif 850 851 #include "malloc_ctl.h" 852 853 #ifndef NO_MALLOC_DYNAMIC_CFG 854 # define PERL_MALLOC_OPT_CHARS "FMfAPGdac" 855 856 # ifndef FILL_DEAD_DEFAULT 857 # define FILL_DEAD_DEFAULT 1 858 # endif 859 # ifndef FILL_ALIVE_DEFAULT 860 # define FILL_ALIVE_DEFAULT 1 861 # endif 862 # ifndef FILL_CHECK_DEFAULT 863 # define FILL_CHECK_DEFAULT 1 864 # endif 865 866 static IV MallocCfg[MallocCfg_last] = { 867 FIRST_SBRK, 868 MIN_SBRK, 869 MIN_SBRK_FRAC, 870 SBRK_ALLOW_FAILURES, 871 SBRK_FAILURE_PRICE, 872 SBRK_ALLOW_FAILURES * SBRK_FAILURE_PRICE, /* sbrk_goodness */ 873 FILL_DEAD_DEFAULT, /* FILL_DEAD */ 874 FILL_ALIVE_DEFAULT, /* FILL_ALIVE */ 875 FILL_CHECK_DEFAULT, /* FILL_CHECK */ 876 0, /* MallocCfg_skip_cfg_env */ 877 0, /* MallocCfg_cfg_env_read */ 878 0, /* MallocCfg_emergency_buffer_size */ 879 0, /* MallocCfg_emergency_buffer_prepared_size */ 880 0 /* MallocCfg_emergency_buffer_last_req */ 881 }; 882 IV *MallocCfg_ptr = MallocCfg; 883 884 static char* MallocCfgP[MallocCfg_last] = { 885 0, /* MallocCfgP_emergency_buffer */ 886 0, /* MallocCfgP_emergency_buffer_prepared */ 887 }; 888 char **MallocCfgP_ptr = MallocCfgP; 889 890 # undef MIN_SBRK 891 # undef FIRST_SBRK 892 # undef MIN_SBRK_FRAC1000 893 # undef SBRK_ALLOW_FAILURES 894 # undef SBRK_FAILURE_PRICE 895 896 # define MIN_SBRK MallocCfg[MallocCfg_MIN_SBRK] 897 # define FIRST_SBRK MallocCfg[MallocCfg_FIRST_SBRK] 898 # define MIN_SBRK_FRAC1000 MallocCfg[MallocCfg_MIN_SBRK_FRAC1000] 899 # define SBRK_ALLOW_FAILURES MallocCfg[MallocCfg_SBRK_ALLOW_FAILURES] 900 # define SBRK_FAILURE_PRICE MallocCfg[MallocCfg_SBRK_FAILURE_PRICE] 901 902 # define sbrk_goodness MallocCfg[MallocCfg_sbrk_goodness] 903 904 # define emergency_buffer_size MallocCfg[MallocCfg_emergency_buffer_size] 905 # define emergency_buffer_last_req MallocCfg[MallocCfg_emergency_buffer_last_req] 906 907 # define FILL_DEAD MallocCfg[MallocCfg_filldead] 908 # define FILL_ALIVE MallocCfg[MallocCfg_fillalive] 909 # define FILL_CHECK_CFG MallocCfg[MallocCfg_fillcheck] 910 # define FILL_CHECK (FILL_DEAD && FILL_CHECK_CFG) 911 912 # define emergency_buffer MallocCfgP[MallocCfgP_emergency_buffer] 913 # define emergency_buffer_prepared MallocCfgP[MallocCfgP_emergency_buffer_prepared] 914 915 #else /* defined(NO_MALLOC_DYNAMIC_CFG) */ 916 917 # define FILL_DEAD 1 918 # define FILL_ALIVE 1 919 # define FILL_CHECK 1 920 static int sbrk_goodness = SBRK_ALLOW_FAILURES * SBRK_FAILURE_PRICE; 921 922 # define NO_PERL_MALLOC_ENV 923 924 #endif 925 926 #ifdef DEBUGGING_MSTATS 927 /* 928 * nmalloc[i] is the difference between the number of mallocs and frees 929 * for a given block size. 930 */ 931 static u_int nmalloc[NBUCKETS]; 932 static u_int sbrk_slack; 933 static u_int start_slack; 934 #else /* !( defined DEBUGGING_MSTATS ) */ 935 # define sbrk_slack 0 936 #endif 937 938 static u_int goodsbrk; 939 940 #ifdef PERL_EMERGENCY_SBRK 941 942 # ifndef BIG_SIZE 943 # define BIG_SIZE (1<<16) /* 64K */ 944 # endif 945 946 # ifdef NO_MALLOC_DYNAMIC_CFG 947 static MEM_SIZE emergency_buffer_size; 948 /* 0 if the last request for more memory succeeded. 949 Otherwise the size of the failing request. */ 950 static MEM_SIZE emergency_buffer_last_req; 951 static char *emergency_buffer; 952 static char *emergency_buffer_prepared; 953 # endif 954 955 # ifndef emergency_sbrk_croak 956 # define emergency_sbrk_croak croak2 957 # endif 958 959 static char * 960 perl_get_emergency_buffer(IV *size) 961 { 962 dTHX; 963 /* First offense, give a possibility to recover by dieing. */ 964 /* No malloc involved here: */ 965 SV *sv; 966 char *pv; 967 GV **gvp = (GV**)hv_fetchs(PL_defstash, "^M", FALSE); 968 969 if (!gvp) gvp = (GV**)hv_fetchs(PL_defstash, "\015", FALSE); 970 if (!gvp || !(sv = GvSV(*gvp)) || !SvPOK(sv) 971 || (SvLEN(sv) < (1<<LOG_OF_MIN_ARENA) - M_OVERHEAD)) 972 return NULL; /* Now die die die... */ 973 /* Got it, now detach SvPV: */ 974 pv = SvPV_nolen(sv); 975 /* Check alignment: */ 976 if ((PTR2UV(pv) - sizeof(union overhead)) & (NEEDED_ALIGNMENT - 1)) { 977 PerlIO_puts(PerlIO_stderr(),"Bad alignment of $^M!\n"); 978 return NULL; /* die die die */ 979 } 980 981 SvPOK_off(sv); 982 SvPV_set(sv, NULL); 983 SvCUR_set(sv, 0); 984 SvLEN_set(sv, 0); 985 *size = malloced_size(pv) + M_OVERHEAD; 986 return pv - sizeof(union overhead); 987 } 988 # define PERL_GET_EMERGENCY_BUFFER(p) perl_get_emergency_buffer(p) 989 990 # ifndef NO_MALLOC_DYNAMIC_CFG 991 static char * 992 get_emergency_buffer(IV *size) 993 { 994 char *pv = emergency_buffer_prepared; 995 996 *size = MallocCfg[MallocCfg_emergency_buffer_prepared_size]; 997 emergency_buffer_prepared = 0; 998 MallocCfg[MallocCfg_emergency_buffer_prepared_size] = 0; 999 return pv; 1000 } 1001 1002 # define GET_EMERGENCY_BUFFER(p) get_emergency_buffer(p) 1003 # else /* NO_MALLOC_DYNAMIC_CFG */ 1004 # define GET_EMERGENCY_BUFFER(p) NULL 1005 # endif 1006 1007 static Malloc_t 1008 emergency_sbrk(MEM_SIZE size) 1009 { 1010 MEM_SIZE rsize = (((size - 1)>>LOG_OF_MIN_ARENA) + 1)<<LOG_OF_MIN_ARENA; 1011 1012 if (size >= BIG_SIZE 1013 && (!emergency_buffer_last_req || 1014 (size < (MEM_SIZE)emergency_buffer_last_req))) { 1015 /* Give the possibility to recover, but avoid an infinite cycle. */ 1016 MALLOC_UNLOCK; 1017 emergency_buffer_last_req = size; 1018 emergency_sbrk_croak("Out of memory during \"large\" request for %"UVuf" bytes, total sbrk() is %"UVuf" bytes", (UV)size, (UV)(goodsbrk + sbrk_slack)); 1019 } 1020 1021 if ((MEM_SIZE)emergency_buffer_size >= rsize) { 1022 char *old = emergency_buffer; 1023 1024 emergency_buffer_size -= rsize; 1025 emergency_buffer += rsize; 1026 return old; 1027 } else { 1028 /* First offense, give a possibility to recover by dieing. */ 1029 /* No malloc involved here: */ 1030 IV Size; 1031 char *pv = GET_EMERGENCY_BUFFER(&Size); 1032 int have = 0; 1033 1034 if (emergency_buffer_size) { 1035 add_to_chain(emergency_buffer, emergency_buffer_size, 0); 1036 emergency_buffer_size = 0; 1037 emergency_buffer = NULL; 1038 have = 1; 1039 } 1040 1041 if (!pv) 1042 pv = PERL_GET_EMERGENCY_BUFFER(&Size); 1043 if (!pv) { 1044 if (have) 1045 goto do_croak; 1046 return (char *)-1; /* Now die die die... */ 1047 } 1048 1049 /* Check alignment: */ 1050 if (PTR2UV(pv) & (NEEDED_ALIGNMENT - 1)) { 1051 dTHX; 1052 1053 PerlIO_puts(PerlIO_stderr(),"Bad alignment of $^M!\n"); 1054 return (char *)-1; /* die die die */ 1055 } 1056 1057 emergency_buffer = pv; 1058 emergency_buffer_size = Size; 1059 } 1060 do_croak: 1061 MALLOC_UNLOCK; 1062 emergency_sbrk_croak("Out of memory during request for %"UVuf" bytes, total sbrk() is %"UVuf" bytes", (UV)size, (UV)(goodsbrk + sbrk_slack)); 1063 NOT_REACHED; /* NOTREACHED */ 1064 return NULL; 1065 } 1066 1067 #else /* !defined(PERL_EMERGENCY_SBRK) */ 1068 # define emergency_sbrk(size) -1 1069 #endif /* defined PERL_EMERGENCY_SBRK */ 1070 1071 /* Don't use PerlIO buffered writes as they allocate memory. */ 1072 #define MYMALLOC_WRITE2STDERR(s) PERL_UNUSED_RESULT(PerlLIO_write(PerlIO_fileno(PerlIO_stderr()),s,strlen(s))) 1073 1074 #ifdef DEBUGGING 1075 #undef ASSERT 1076 #define ASSERT(p,diag) if (!(p)) botch(diag,STRINGIFY(p),__FILE__,__LINE__); 1077 1078 static void 1079 botch(const char *diag, const char *s, const char *file, int line) 1080 { 1081 dVAR; 1082 dTHX; 1083 if (!(PERL_MAYBE_ALIVE && PERL_GET_THX)) 1084 goto do_write; 1085 else { 1086 if (PerlIO_printf(PerlIO_stderr(), 1087 "assertion botched (%s?): %s %s:%d\n", 1088 diag, s, file, line) != 0) { 1089 do_write: /* Can be initializing interpreter */ 1090 MYMALLOC_WRITE2STDERR("assertion botched ("); 1091 MYMALLOC_WRITE2STDERR(diag); 1092 MYMALLOC_WRITE2STDERR("?): "); 1093 MYMALLOC_WRITE2STDERR(s); 1094 MYMALLOC_WRITE2STDERR(" ("); 1095 MYMALLOC_WRITE2STDERR(file); 1096 MYMALLOC_WRITE2STDERR(":"); 1097 { 1098 char linebuf[10]; 1099 char *s = linebuf + sizeof(linebuf) - 1; 1100 int n = line; 1101 *s = 0; 1102 do { 1103 *--s = '0' + (n % 10); 1104 } while (n /= 10); 1105 MYMALLOC_WRITE2STDERR(s); 1106 } 1107 MYMALLOC_WRITE2STDERR(")\n"); 1108 } 1109 PerlProc_abort(); 1110 } 1111 } 1112 #else 1113 #define ASSERT(p, diag) 1114 #endif 1115 1116 #ifdef MALLOC_FILL 1117 /* Fill should be long enough to cover long */ 1118 static void 1119 fill_pat_4bytes(unsigned char *s, size_t nbytes, const unsigned char *fill) 1120 { 1121 unsigned char *e = s + nbytes; 1122 long *lp; 1123 const long lfill = *(long*)fill; 1124 1125 if (PTR2UV(s) & (sizeof(long)-1)) { /* Align the pattern */ 1126 int shift = sizeof(long) - (PTR2UV(s) & (sizeof(long)-1)); 1127 unsigned const char *f = fill + sizeof(long) - shift; 1128 unsigned char *e1 = s + shift; 1129 1130 while (s < e1) 1131 *s++ = *f++; 1132 } 1133 lp = (long*)s; 1134 while ((unsigned char*)(lp + 1) <= e) 1135 *lp++ = lfill; 1136 s = (unsigned char*)lp; 1137 while (s < e) 1138 *s++ = *fill++; 1139 } 1140 /* Just malloc()ed */ 1141 static const unsigned char fill_feedadad[] = 1142 {0xFE, 0xED, 0xAD, 0xAD, 0xFE, 0xED, 0xAD, 0xAD, 1143 0xFE, 0xED, 0xAD, 0xAD, 0xFE, 0xED, 0xAD, 0xAD}; 1144 /* Just free()ed */ 1145 static const unsigned char fill_deadbeef[] = 1146 {0xDE, 0xAD, 0xBE, 0xEF, 0xDE, 0xAD, 0xBE, 0xEF, 1147 0xDE, 0xAD, 0xBE, 0xEF, 0xDE, 0xAD, 0xBE, 0xEF}; 1148 # define FILL_DEADBEEF(s, n) \ 1149 (void)(FILL_DEAD? (fill_pat_4bytes((s), (n), fill_deadbeef), 0) : 0) 1150 # define FILL_FEEDADAD(s, n) \ 1151 (void)(FILL_ALIVE? (fill_pat_4bytes((s), (n), fill_feedadad), 0) : 0) 1152 #else 1153 # define FILL_DEADBEEF(s, n) ((void)0) 1154 # define FILL_FEEDADAD(s, n) ((void)0) 1155 # undef MALLOC_FILL_CHECK 1156 #endif 1157 1158 #ifdef MALLOC_FILL_CHECK 1159 static int 1160 cmp_pat_4bytes(unsigned char *s, size_t nbytes, const unsigned char *fill) 1161 { 1162 unsigned char *e = s + nbytes; 1163 long *lp; 1164 const long lfill = *(long*)fill; 1165 1166 if (PTR2UV(s) & (sizeof(long)-1)) { /* Align the pattern */ 1167 int shift = sizeof(long) - (PTR2UV(s) & (sizeof(long)-1)); 1168 unsigned const char *f = fill + sizeof(long) - shift; 1169 unsigned char *e1 = s + shift; 1170 1171 while (s < e1) 1172 if (*s++ != *f++) 1173 return 1; 1174 } 1175 lp = (long*)s; 1176 while ((unsigned char*)(lp + 1) <= e) 1177 if (*lp++ != lfill) 1178 return 1; 1179 s = (unsigned char*)lp; 1180 while (s < e) 1181 if (*s++ != *fill++) 1182 return 1; 1183 return 0; 1184 } 1185 # define FILLCHECK_DEADBEEF(s, n) \ 1186 ASSERT(!FILL_CHECK || !cmp_pat_4bytes(s, n, fill_deadbeef), \ 1187 "free()ed/realloc()ed-away memory was overwritten") 1188 #else 1189 # define FILLCHECK_DEADBEEF(s, n) ((void)0) 1190 #endif 1191 1192 STATIC int 1193 S_adjust_size_and_find_bucket(size_t *nbytes_p) 1194 { 1195 MEM_SIZE shiftr; 1196 int bucket; 1197 size_t nbytes; 1198 1199 PERL_ARGS_ASSERT_ADJUST_SIZE_AND_FIND_BUCKET; 1200 1201 nbytes = *nbytes_p; 1202 1203 /* 1204 * Convert amount of memory requested into 1205 * closest block size stored in hash buckets 1206 * which satisfies request. Account for 1207 * space used per block for accounting. 1208 */ 1209 #ifdef PACK_MALLOC 1210 # ifdef SMALL_BUCKET_VIA_TABLE 1211 if (nbytes == 0) 1212 bucket = MIN_BUCKET; 1213 else if (nbytes <= SIZE_TABLE_MAX) { 1214 bucket = bucket_of[(nbytes - 1) >> BUCKET_TABLE_SHIFT]; 1215 } else 1216 # else 1217 if (nbytes == 0) 1218 nbytes = 1; 1219 if (nbytes <= MAX_POW2_ALGO) goto do_shifts; 1220 else 1221 # endif 1222 #endif 1223 { 1224 POW2_OPTIMIZE_ADJUST(nbytes); 1225 nbytes += M_OVERHEAD; 1226 nbytes = (nbytes + 3) &~ 3; 1227 #if defined(PACK_MALLOC) && !defined(SMALL_BUCKET_VIA_TABLE) 1228 do_shifts: 1229 #endif 1230 shiftr = (nbytes - 1) >> START_SHIFT; 1231 bucket = START_SHIFTS_BUCKET; 1232 /* apart from this loop, this is O(1) */ 1233 while (shiftr >>= 1) 1234 bucket += BUCKETS_PER_POW2; 1235 } 1236 *nbytes_p = nbytes; 1237 return bucket; 1238 } 1239 1240 Malloc_t 1241 Perl_malloc(size_t nbytes) 1242 { 1243 dVAR; 1244 union overhead *p; 1245 int bucket; 1246 1247 #if defined(DEBUGGING) || defined(RCHECK) 1248 MEM_SIZE size = nbytes; 1249 #endif 1250 1251 BARK_64K_LIMIT("Allocation",nbytes,nbytes); 1252 #ifdef DEBUGGING 1253 if ((long)nbytes < 0) 1254 croak("%s", "panic: malloc"); 1255 #endif 1256 1257 bucket = adjust_size_and_find_bucket(&nbytes); 1258 MALLOC_LOCK; 1259 /* 1260 * If nothing in hash bucket right now, 1261 * request more memory from the system. 1262 */ 1263 if (nextf[bucket] == NULL) 1264 morecore(bucket); 1265 if ((p = nextf[bucket]) == NULL) { 1266 MALLOC_UNLOCK; 1267 { 1268 dTHX; 1269 if (!PL_nomemok) { 1270 #if defined(PLAIN_MALLOC) && defined(NO_FANCY_MALLOC) 1271 MYMALLOC_WRITE2STDERR("Out of memory!\n"); 1272 #else 1273 char buff[80]; 1274 char *eb = buff + sizeof(buff) - 1; 1275 char *s = eb; 1276 size_t n = nbytes; 1277 1278 MYMALLOC_WRITE2STDERR("Out of memory during request for "); 1279 #if defined(DEBUGGING) || defined(RCHECK) 1280 n = size; 1281 #endif 1282 *s = 0; 1283 do { 1284 *--s = '0' + (n % 10); 1285 } while (n /= 10); 1286 MYMALLOC_WRITE2STDERR(s); 1287 MYMALLOC_WRITE2STDERR(" bytes, total sbrk() is "); 1288 s = eb; 1289 n = goodsbrk + sbrk_slack; 1290 do { 1291 *--s = '0' + (n % 10); 1292 } while (n /= 10); 1293 MYMALLOC_WRITE2STDERR(s); 1294 MYMALLOC_WRITE2STDERR(" bytes!\n"); 1295 #endif /* defined(PLAIN_MALLOC) && defined(NO_FANCY_MALLOC) */ 1296 my_exit(1); 1297 } 1298 } 1299 return (NULL); 1300 } 1301 1302 /* remove from linked list */ 1303 #ifdef DEBUGGING 1304 if ( (PTR2UV(p) & (MEM_ALIGNBYTES - 1)) 1305 /* Can't get this low */ 1306 || (p && PTR2UV(p) < (1<<LOG_OF_MIN_ARENA)) ) { 1307 dTHX; 1308 PerlIO_printf(PerlIO_stderr(), 1309 "Unaligned pointer in the free chain 0x%"UVxf"\n", 1310 PTR2UV(p)); 1311 } 1312 if ( (PTR2UV(p->ov_next) & (MEM_ALIGNBYTES - 1)) 1313 || (p->ov_next && PTR2UV(p->ov_next) < (1<<LOG_OF_MIN_ARENA)) ) { 1314 dTHX; 1315 PerlIO_printf(PerlIO_stderr(), 1316 "Unaligned \"next\" pointer in the free " 1317 "chain 0x%"UVxf" at 0x%"UVxf"\n", 1318 PTR2UV(p->ov_next), PTR2UV(p)); 1319 } 1320 #endif 1321 nextf[bucket] = p->ov_next; 1322 1323 MALLOC_UNLOCK; 1324 1325 DEBUG_m(PerlIO_printf(Perl_debug_log, 1326 "0x%"UVxf": (%05lu) malloc %ld bytes\n", 1327 PTR2UV((Malloc_t)(p + CHUNK_SHIFT)), (unsigned long)(PL_an++), 1328 (long)size)); 1329 1330 FILLCHECK_DEADBEEF((unsigned char*)(p + CHUNK_SHIFT), 1331 BUCKET_SIZE_REAL(bucket) + RMAGIC_SZ); 1332 1333 #ifdef IGNORE_SMALL_BAD_FREE 1334 if (bucket >= FIRST_BUCKET_WITH_CHECK) 1335 #endif 1336 OV_MAGIC(p, bucket) = MAGIC; 1337 #ifndef PACK_MALLOC 1338 OV_INDEX(p) = bucket; 1339 #endif 1340 #ifdef RCHECK 1341 /* 1342 * Record allocated size of block and 1343 * bound space with magic numbers. 1344 */ 1345 p->ov_rmagic = RMAGIC; 1346 if (bucket <= MAX_SHORT_BUCKET) { 1347 int i; 1348 1349 nbytes = size + M_OVERHEAD; 1350 p->ov_size = nbytes - 1; 1351 if ((i = nbytes & (RMAGIC_SZ-1))) { 1352 i = RMAGIC_SZ - i; 1353 while (i--) /* nbytes - RMAGIC_SZ is end of alloced area */ 1354 ((caddr_t)p + nbytes - RMAGIC_SZ)[i] = RMAGIC_C; 1355 } 1356 /* Same at RMAGIC_SZ-aligned RMAGIC */ 1357 nbytes = (nbytes + RMAGIC_SZ - 1) & ~(RMAGIC_SZ - 1); 1358 ((u_int *)((caddr_t)p + nbytes))[-1] = RMAGIC; 1359 } 1360 FILL_FEEDADAD((unsigned char *)(p + CHUNK_SHIFT), size); 1361 #endif 1362 return ((Malloc_t)(p + CHUNK_SHIFT)); 1363 } 1364 1365 static char *last_sbrk_top; 1366 static char *last_op; /* This arena can be easily extended. */ 1367 static MEM_SIZE sbrked_remains; 1368 1369 #ifdef DEBUGGING_MSTATS 1370 static int sbrks; 1371 #endif 1372 1373 struct chunk_chain_s { 1374 struct chunk_chain_s *next; 1375 MEM_SIZE size; 1376 }; 1377 static struct chunk_chain_s *chunk_chain; 1378 static int n_chunks; 1379 static char max_bucket; 1380 1381 /* Cutoff a piece of one of the chunks in the chain. Prefer smaller chunk. */ 1382 static void * 1383 get_from_chain(MEM_SIZE size) 1384 { 1385 struct chunk_chain_s *elt = chunk_chain, **oldp = &chunk_chain; 1386 struct chunk_chain_s **oldgoodp = NULL; 1387 long min_remain = LONG_MAX; 1388 1389 while (elt) { 1390 if (elt->size >= size) { 1391 long remains = elt->size - size; 1392 if (remains >= 0 && remains < min_remain) { 1393 oldgoodp = oldp; 1394 min_remain = remains; 1395 } 1396 if (remains == 0) { 1397 break; 1398 } 1399 } 1400 oldp = &( elt->next ); 1401 elt = elt->next; 1402 } 1403 if (!oldgoodp) return NULL; 1404 if (min_remain) { 1405 void *ret = *oldgoodp; 1406 struct chunk_chain_s *next = (*oldgoodp)->next; 1407 1408 *oldgoodp = (struct chunk_chain_s *)((char*)ret + size); 1409 (*oldgoodp)->size = min_remain; 1410 (*oldgoodp)->next = next; 1411 return ret; 1412 } else { 1413 void *ret = *oldgoodp; 1414 *oldgoodp = (*oldgoodp)->next; 1415 n_chunks--; 1416 return ret; 1417 } 1418 } 1419 1420 static void 1421 add_to_chain(void *p, MEM_SIZE size, MEM_SIZE chip) 1422 { 1423 struct chunk_chain_s *next = chunk_chain; 1424 char *cp = (char*)p; 1425 1426 cp += chip; 1427 chunk_chain = (struct chunk_chain_s *)cp; 1428 chunk_chain->size = size - chip; 1429 chunk_chain->next = next; 1430 n_chunks++; 1431 } 1432 1433 static void * 1434 get_from_bigger_buckets(int bucket, MEM_SIZE size) 1435 { 1436 int price = 1; 1437 static int bucketprice[NBUCKETS]; 1438 while (bucket <= max_bucket) { 1439 /* We postpone stealing from bigger buckets until we want it 1440 often enough. */ 1441 if (nextf[bucket] && bucketprice[bucket]++ >= price) { 1442 /* Steal it! */ 1443 void *ret = (void*)(nextf[bucket] - 1 + CHUNK_SHIFT); 1444 bucketprice[bucket] = 0; 1445 if (((char*)nextf[bucket]) - M_OVERHEAD == last_op) { 1446 last_op = NULL; /* Disable optimization */ 1447 } 1448 nextf[bucket] = nextf[bucket]->ov_next; 1449 #ifdef DEBUGGING_MSTATS 1450 nmalloc[bucket]--; 1451 start_slack -= M_OVERHEAD; 1452 #endif 1453 add_to_chain(ret, (BUCKET_SIZE_NO_SURPLUS(bucket) + 1454 POW2_OPTIMIZE_SURPLUS(bucket)), 1455 size); 1456 return ret; 1457 } 1458 bucket++; 1459 } 1460 return NULL; 1461 } 1462 1463 static union overhead * 1464 getpages(MEM_SIZE needed, int *nblksp, int bucket) 1465 { 1466 dVAR; 1467 /* Need to do (possibly expensive) system call. Try to 1468 optimize it for rare calling. */ 1469 MEM_SIZE require = needed - sbrked_remains; 1470 char *cp; 1471 union overhead *ovp; 1472 MEM_SIZE slack = 0; 1473 1474 if (sbrk_goodness > 0) { 1475 if (!last_sbrk_top && require < (MEM_SIZE)FIRST_SBRK) 1476 require = FIRST_SBRK; 1477 else if (require < (MEM_SIZE)MIN_SBRK) require = MIN_SBRK; 1478 1479 if (require < (Size_t)(goodsbrk * MIN_SBRK_FRAC1000 / 1000)) 1480 require = goodsbrk * MIN_SBRK_FRAC1000 / 1000; 1481 require = ((require - 1 + MIN_SBRK) / MIN_SBRK) * MIN_SBRK; 1482 } else { 1483 require = needed; 1484 last_sbrk_top = 0; 1485 sbrked_remains = 0; 1486 } 1487 1488 DEBUG_m(PerlIO_printf(Perl_debug_log, 1489 "sbrk(%ld) for %ld-byte-long arena\n", 1490 (long)require, (long) needed)); 1491 cp = (char *)sbrk(require); 1492 #ifdef DEBUGGING_MSTATS 1493 sbrks++; 1494 #endif 1495 if (cp == last_sbrk_top) { 1496 /* Common case, anything is fine. */ 1497 sbrk_goodness++; 1498 ovp = (union overhead *) (cp - sbrked_remains); 1499 last_op = cp - sbrked_remains; 1500 sbrked_remains = require - (needed - sbrked_remains); 1501 } else if (cp == (char *)-1) { /* no more room! */ 1502 ovp = (union overhead *)emergency_sbrk(needed); 1503 if (ovp == (union overhead *)-1) 1504 return 0; 1505 if (((char*)ovp) > last_op) { /* Cannot happen with current emergency_sbrk() */ 1506 last_op = 0; 1507 } 1508 return ovp; 1509 } else { /* Non-continuous or first sbrk(). */ 1510 long add = sbrked_remains; 1511 char *newcp; 1512 1513 if (sbrked_remains) { /* Put rest into chain, we 1514 cannot use it right now. */ 1515 add_to_chain((void*)(last_sbrk_top - sbrked_remains), 1516 sbrked_remains, 0); 1517 } 1518 1519 /* Second, check alignment. */ 1520 slack = 0; 1521 1522 /* WANTED_ALIGNMENT may be more than NEEDED_ALIGNMENT, but this may 1523 improve performance of memory access. */ 1524 if (PTR2UV(cp) & (WANTED_ALIGNMENT - 1)) { /* Not aligned. */ 1525 slack = WANTED_ALIGNMENT - (PTR2UV(cp) & (WANTED_ALIGNMENT - 1)); 1526 add += slack; 1527 } 1528 1529 if (add) { 1530 DEBUG_m(PerlIO_printf(Perl_debug_log, 1531 "sbrk(%ld) to fix non-continuous/off-page sbrk:\n\t%ld for alignment,\t%ld were assumed to come from the tail of the previous sbrk\n", 1532 (long)add, (long) slack, 1533 (long) sbrked_remains)); 1534 newcp = (char *)sbrk(add); 1535 #if defined(DEBUGGING_MSTATS) 1536 sbrks++; 1537 sbrk_slack += add; 1538 #endif 1539 if (newcp != cp + require) { 1540 /* Too bad: even rounding sbrk() is not continuous.*/ 1541 DEBUG_m(PerlIO_printf(Perl_debug_log, 1542 "failed to fix bad sbrk()\n")); 1543 #ifdef PACK_MALLOC 1544 if (slack) { 1545 MALLOC_UNLOCK; 1546 fatalcroak("panic: Off-page sbrk\n"); 1547 } 1548 #endif 1549 if (sbrked_remains) { 1550 /* Try again. */ 1551 #if defined(DEBUGGING_MSTATS) 1552 sbrk_slack += require; 1553 #endif 1554 require = needed; 1555 DEBUG_m(PerlIO_printf(Perl_debug_log, 1556 "straight sbrk(%ld)\n", 1557 (long)require)); 1558 cp = (char *)sbrk(require); 1559 #ifdef DEBUGGING_MSTATS 1560 sbrks++; 1561 #endif 1562 if (cp == (char *)-1) 1563 return 0; 1564 } 1565 sbrk_goodness = -1; /* Disable optimization! 1566 Continue with not-aligned... */ 1567 } else { 1568 cp += slack; 1569 require += sbrked_remains; 1570 } 1571 } 1572 1573 if (last_sbrk_top) { 1574 sbrk_goodness -= SBRK_FAILURE_PRICE; 1575 } 1576 1577 ovp = (union overhead *) cp; 1578 /* 1579 * Round up to minimum allocation size boundary 1580 * and deduct from block count to reflect. 1581 */ 1582 1583 # if NEEDED_ALIGNMENT > MEM_ALIGNBYTES 1584 if (PTR2UV(ovp) & (NEEDED_ALIGNMENT - 1)) 1585 fatalcroak("Misalignment of sbrk()\n"); 1586 else 1587 # endif 1588 if (PTR2UV(ovp) & (MEM_ALIGNBYTES - 1)) { 1589 DEBUG_m(PerlIO_printf(Perl_debug_log, 1590 "fixing sbrk(): %d bytes off machine alignment\n", 1591 (int)(PTR2UV(ovp) & (MEM_ALIGNBYTES - 1)))); 1592 ovp = INT2PTR(union overhead *,(PTR2UV(ovp) + MEM_ALIGNBYTES) & 1593 (MEM_ALIGNBYTES - 1)); 1594 (*nblksp)--; 1595 # if defined(DEBUGGING_MSTATS) 1596 /* This is only approx. if TWO_POT_OPTIMIZE: */ 1597 sbrk_slack += (1 << (bucket >> BUCKET_POW2_SHIFT)); 1598 # endif 1599 } 1600 ; /* Finish "else" */ 1601 sbrked_remains = require - needed; 1602 last_op = cp; 1603 } 1604 #if !defined(PLAIN_MALLOC) && !defined(NO_FANCY_MALLOC) 1605 emergency_buffer_last_req = 0; 1606 #endif 1607 last_sbrk_top = cp + require; 1608 #ifdef DEBUGGING_MSTATS 1609 goodsbrk += require; 1610 #endif 1611 return ovp; 1612 } 1613 1614 static int 1615 getpages_adjacent(MEM_SIZE require) 1616 { 1617 if (require <= sbrked_remains) { 1618 sbrked_remains -= require; 1619 } else { 1620 char *cp; 1621 1622 require -= sbrked_remains; 1623 /* We do not try to optimize sbrks here, we go for place. */ 1624 cp = (char*) sbrk(require); 1625 #ifdef DEBUGGING_MSTATS 1626 sbrks++; 1627 goodsbrk += require; 1628 #endif 1629 if (cp == last_sbrk_top) { 1630 sbrked_remains = 0; 1631 last_sbrk_top = cp + require; 1632 } else { 1633 if (cp == (char*)-1) { /* Out of memory */ 1634 #ifdef DEBUGGING_MSTATS 1635 goodsbrk -= require; 1636 #endif 1637 return 0; 1638 } 1639 /* Report the failure: */ 1640 if (sbrked_remains) 1641 add_to_chain((void*)(last_sbrk_top - sbrked_remains), 1642 sbrked_remains, 0); 1643 add_to_chain((void*)cp, require, 0); 1644 sbrk_goodness -= SBRK_FAILURE_PRICE; 1645 sbrked_remains = 0; 1646 last_sbrk_top = 0; 1647 last_op = 0; 1648 return 0; 1649 } 1650 } 1651 1652 return 1; 1653 } 1654 1655 /* 1656 * Allocate more memory to the indicated bucket. 1657 */ 1658 static void 1659 morecore(int bucket) 1660 { 1661 dVAR; 1662 union overhead *ovp; 1663 int rnu; /* 2^rnu bytes will be requested */ 1664 int nblks; /* become nblks blocks of the desired size */ 1665 MEM_SIZE siz, needed; 1666 static int were_called = 0; 1667 1668 if (nextf[bucket]) 1669 return; 1670 #ifndef NO_PERL_MALLOC_ENV 1671 if (!were_called) { 1672 /* It's the our first time. Initialize ourselves */ 1673 were_called = 1; /* Avoid a loop */ 1674 if (!MallocCfg[MallocCfg_skip_cfg_env]) { 1675 char *s = getenv("PERL_MALLOC_OPT"), *t = s, *off; 1676 const char *opts = PERL_MALLOC_OPT_CHARS; 1677 int changed = 0; 1678 1679 while ( t && t[0] && t[1] == '=' 1680 && ((off = strchr(opts, *t))) ) { 1681 IV val = 0; 1682 1683 t += 2; 1684 while (*t <= '9' && *t >= '0') 1685 val = 10*val + *t++ - '0'; 1686 if (!*t || *t == ';') { 1687 if (MallocCfg[off - opts] != val) 1688 changed = 1; 1689 MallocCfg[off - opts] = val; 1690 if (*t) 1691 t++; 1692 } 1693 } 1694 if (t && *t) { 1695 dTHX; 1696 MYMALLOC_WRITE2STDERR("Unrecognized part of PERL_MALLOC_OPT: \""); 1697 MYMALLOC_WRITE2STDERR(t); 1698 MYMALLOC_WRITE2STDERR("\"\n"); 1699 } 1700 if (changed) 1701 MallocCfg[MallocCfg_cfg_env_read] = 1; 1702 } 1703 } 1704 #endif 1705 if (bucket == sizeof(MEM_SIZE)*8*BUCKETS_PER_POW2) { 1706 MALLOC_UNLOCK; 1707 croak("%s", "Out of memory during ridiculously large request"); 1708 } 1709 if (bucket > max_bucket) 1710 max_bucket = bucket; 1711 1712 rnu = ( (bucket <= (LOG_OF_MIN_ARENA << BUCKET_POW2_SHIFT)) 1713 ? LOG_OF_MIN_ARENA 1714 : (bucket >> BUCKET_POW2_SHIFT) ); 1715 /* This may be overwritten later: */ 1716 nblks = 1 << (rnu - (bucket >> BUCKET_POW2_SHIFT)); /* how many blocks to get */ 1717 needed = ((MEM_SIZE)1 << rnu) + POW2_OPTIMIZE_SURPLUS(bucket); 1718 if (nextf[rnu << BUCKET_POW2_SHIFT]) { /* 2048b bucket. */ 1719 ovp = nextf[rnu << BUCKET_POW2_SHIFT] - 1 + CHUNK_SHIFT; 1720 nextf[rnu << BUCKET_POW2_SHIFT] 1721 = nextf[rnu << BUCKET_POW2_SHIFT]->ov_next; 1722 #ifdef DEBUGGING_MSTATS 1723 nmalloc[rnu << BUCKET_POW2_SHIFT]--; 1724 start_slack -= M_OVERHEAD; 1725 #endif 1726 DEBUG_m(PerlIO_printf(Perl_debug_log, 1727 "stealing %ld bytes from %ld arena\n", 1728 (long) needed, (long) rnu << BUCKET_POW2_SHIFT)); 1729 } else if (chunk_chain 1730 && (ovp = (union overhead*) get_from_chain(needed))) { 1731 DEBUG_m(PerlIO_printf(Perl_debug_log, 1732 "stealing %ld bytes from chain\n", 1733 (long) needed)); 1734 } else if ( (ovp = (union overhead*) 1735 get_from_bigger_buckets((rnu << BUCKET_POW2_SHIFT) + 1, 1736 needed)) ) { 1737 DEBUG_m(PerlIO_printf(Perl_debug_log, 1738 "stealing %ld bytes from bigger buckets\n", 1739 (long) needed)); 1740 } else if (needed <= sbrked_remains) { 1741 ovp = (union overhead *)(last_sbrk_top - sbrked_remains); 1742 sbrked_remains -= needed; 1743 last_op = (char*)ovp; 1744 } else 1745 ovp = getpages(needed, &nblks, bucket); 1746 1747 if (!ovp) 1748 return; 1749 FILL_DEADBEEF((unsigned char*)ovp, needed); 1750 1751 /* 1752 * Add new memory allocated to that on 1753 * free list for this hash bucket. 1754 */ 1755 siz = BUCKET_SIZE_NO_SURPLUS(bucket); /* No surplus if nblks > 1 */ 1756 #ifdef PACK_MALLOC 1757 *(u_char*)ovp = bucket; /* Fill index. */ 1758 if (bucket <= MAX_PACKED) { 1759 ovp = (union overhead *) ((char*)ovp + BLK_SHIFT(bucket)); 1760 nblks = N_BLKS(bucket); 1761 # ifdef DEBUGGING_MSTATS 1762 start_slack += BLK_SHIFT(bucket); 1763 # endif 1764 } else if (bucket < LOG_OF_MIN_ARENA * BUCKETS_PER_POW2) { 1765 ovp = (union overhead *) ((char*)ovp + BLK_SHIFT(bucket)); 1766 siz -= sizeof(union overhead); 1767 } else ovp++; /* One chunk per block. */ 1768 #endif /* PACK_MALLOC */ 1769 nextf[bucket] = ovp; 1770 #ifdef DEBUGGING_MSTATS 1771 nmalloc[bucket] += nblks; 1772 if (bucket > MAX_PACKED) { 1773 start_slack += M_OVERHEAD * nblks; 1774 } 1775 #endif 1776 1777 while (--nblks > 0) { 1778 ovp->ov_next = (union overhead *)((caddr_t)ovp + siz); 1779 ovp = (union overhead *)((caddr_t)ovp + siz); 1780 } 1781 /* Not all sbrks return zeroed memory.*/ 1782 ovp->ov_next = (union overhead *)NULL; 1783 #ifdef PACK_MALLOC 1784 if (bucket == 7*BUCKETS_PER_POW2) { /* Special case, explanation is above. */ 1785 union overhead *n_op = nextf[7*BUCKETS_PER_POW2]->ov_next; 1786 nextf[7*BUCKETS_PER_POW2] = 1787 (union overhead *)((caddr_t)nextf[7*BUCKETS_PER_POW2] 1788 - sizeof(union overhead)); 1789 nextf[7*BUCKETS_PER_POW2]->ov_next = n_op; 1790 } 1791 #endif /* !PACK_MALLOC */ 1792 } 1793 1794 Free_t 1795 Perl_mfree(Malloc_t where) 1796 { 1797 dVAR; 1798 MEM_SIZE size; 1799 union overhead *ovp; 1800 char *cp = (char*)where; 1801 #ifdef PACK_MALLOC 1802 u_char bucket; 1803 #endif 1804 1805 DEBUG_m(PerlIO_printf(Perl_debug_log, 1806 "0x%"UVxf": (%05lu) free\n", 1807 PTR2UV(cp), (unsigned long)(PL_an++))); 1808 1809 if (cp == NULL) 1810 return; 1811 #ifdef DEBUGGING 1812 if (PTR2UV(cp) & (MEM_ALIGNBYTES - 1)) 1813 croak("%s", "wrong alignment in free()"); 1814 #endif 1815 ovp = (union overhead *)((caddr_t)cp 1816 - sizeof (union overhead) * CHUNK_SHIFT); 1817 #ifdef PACK_MALLOC 1818 bucket = OV_INDEX(ovp); 1819 #endif 1820 #ifdef IGNORE_SMALL_BAD_FREE 1821 if ((bucket >= FIRST_BUCKET_WITH_CHECK) 1822 && (OV_MAGIC(ovp, bucket) != MAGIC)) 1823 #else 1824 if (OV_MAGIC(ovp, bucket) != MAGIC) 1825 #endif 1826 { 1827 static int bad_free_warn = -1; 1828 if (bad_free_warn == -1) { 1829 dTHX; 1830 char *pbf = PerlEnv_getenv("PERL_BADFREE"); 1831 bad_free_warn = (pbf) ? strNE("0", pbf) : 1; 1832 } 1833 if (!bad_free_warn) 1834 return; 1835 #ifdef RCHECK 1836 { 1837 dTHX; 1838 if (!PERL_IS_ALIVE || !PL_curcop) 1839 Perl_ck_warner_d(aTHX_ packWARN(WARN_MALLOC), "%s free() ignored (RMAGIC, PERL_CORE)", 1840 ovp->ov_rmagic == RMAGIC - 1 ? 1841 "Duplicate" : "Bad"); 1842 } 1843 #else 1844 { 1845 dTHX; 1846 if (!PERL_IS_ALIVE || !PL_curcop) 1847 Perl_ck_warner_d(aTHX_ packWARN(WARN_MALLOC), "%s", "Bad free() ignored (PERL_CORE)"); 1848 } 1849 #endif 1850 return; /* sanity */ 1851 } 1852 #ifdef RCHECK 1853 ASSERT(ovp->ov_rmagic == RMAGIC, "chunk's head overwrite"); 1854 if (OV_INDEX(ovp) <= MAX_SHORT_BUCKET) { 1855 int i; 1856 MEM_SIZE nbytes = ovp->ov_size + 1; 1857 1858 if ((i = nbytes & (RMAGIC_SZ-1))) { 1859 i = RMAGIC_SZ - i; 1860 while (i--) { /* nbytes - RMAGIC_SZ is end of alloced area */ 1861 ASSERT(((caddr_t)ovp + nbytes - RMAGIC_SZ)[i] == RMAGIC_C, 1862 "chunk's tail overwrite"); 1863 } 1864 } 1865 /* Same at RMAGIC_SZ-aligned RMAGIC */ 1866 nbytes = (nbytes + (RMAGIC_SZ-1)) & ~(RMAGIC_SZ-1); 1867 ASSERT(((u_int *)((caddr_t)ovp + nbytes))[-1] == RMAGIC, 1868 "chunk's tail overwrite"); 1869 FILLCHECK_DEADBEEF((unsigned char*)((caddr_t)ovp + nbytes), 1870 BUCKET_SIZE(OV_INDEX(ovp)) - nbytes); 1871 } 1872 FILL_DEADBEEF((unsigned char*)(ovp+CHUNK_SHIFT), 1873 BUCKET_SIZE_REAL(OV_INDEX(ovp)) + RMAGIC_SZ); 1874 ovp->ov_rmagic = RMAGIC - 1; 1875 #endif 1876 ASSERT(OV_INDEX(ovp) < NBUCKETS, "chunk's head overwrite"); 1877 size = OV_INDEX(ovp); 1878 1879 MALLOC_LOCK; 1880 ovp->ov_next = nextf[size]; 1881 nextf[size] = ovp; 1882 MALLOC_UNLOCK; 1883 } 1884 1885 /* There is no need to do any locking in realloc (with an exception of 1886 trying to grow in place if we are at the end of the chain). 1887 If somebody calls us from a different thread with the same address, 1888 we are sole anyway. */ 1889 1890 Malloc_t 1891 Perl_realloc(void *mp, size_t nbytes) 1892 { 1893 dVAR; 1894 MEM_SIZE onb; 1895 union overhead *ovp; 1896 char *res; 1897 int prev_bucket; 1898 int bucket; 1899 int incr; /* 1 if does not fit, -1 if "easily" fits in a 1900 smaller bucket, otherwise 0. */ 1901 char *cp = (char*)mp; 1902 1903 #ifdef DEBUGGING 1904 MEM_SIZE size = nbytes; 1905 1906 if ((long)nbytes < 0) 1907 croak("%s", "panic: realloc"); 1908 #endif 1909 1910 BARK_64K_LIMIT("Reallocation",nbytes,size); 1911 if (!cp) 1912 return Perl_malloc(nbytes); 1913 1914 ovp = (union overhead *)((caddr_t)cp 1915 - sizeof (union overhead) * CHUNK_SHIFT); 1916 bucket = OV_INDEX(ovp); 1917 1918 #ifdef IGNORE_SMALL_BAD_FREE 1919 if ((bucket >= FIRST_BUCKET_WITH_CHECK) 1920 && (OV_MAGIC(ovp, bucket) != MAGIC)) 1921 #else 1922 if (OV_MAGIC(ovp, bucket) != MAGIC) 1923 #endif 1924 { 1925 static int bad_free_warn = -1; 1926 if (bad_free_warn == -1) { 1927 dTHX; 1928 char *pbf = PerlEnv_getenv("PERL_BADFREE"); 1929 bad_free_warn = (pbf) ? strNE("0", pbf) : 1; 1930 } 1931 if (!bad_free_warn) 1932 return NULL; 1933 #ifdef RCHECK 1934 { 1935 dTHX; 1936 if (!PERL_IS_ALIVE || !PL_curcop) 1937 Perl_ck_warner_d(aTHX_ packWARN(WARN_MALLOC), "%srealloc() %signored", 1938 (ovp->ov_rmagic == RMAGIC - 1 ? "" : "Bad "), 1939 ovp->ov_rmagic == RMAGIC - 1 1940 ? "of freed memory " : ""); 1941 } 1942 #else 1943 { 1944 dTHX; 1945 if (!PERL_IS_ALIVE || !PL_curcop) 1946 Perl_ck_warner_d(aTHX_ packWARN(WARN_MALLOC), "%s", 1947 "Bad realloc() ignored"); 1948 } 1949 #endif 1950 return NULL; /* sanity */ 1951 } 1952 1953 onb = BUCKET_SIZE_REAL(bucket); 1954 /* 1955 * avoid the copy if same size block. 1956 * We are not aggressive with boundary cases. Note that it might 1957 * (for a small number of cases) give false negative if 1958 * both new size and old one are in the bucket for 1959 * FIRST_BIG_POW2, but the new one is near the lower end. 1960 * 1961 * We do not try to go to 1.5 times smaller bucket so far. 1962 */ 1963 if (nbytes > onb) incr = 1; 1964 else { 1965 #ifdef DO_NOT_TRY_HARDER_WHEN_SHRINKING 1966 if ( /* This is a little bit pessimal if PACK_MALLOC: */ 1967 nbytes > ( (onb >> 1) - M_OVERHEAD ) 1968 # ifdef TWO_POT_OPTIMIZE 1969 || (bucket == FIRST_BIG_POW2 && nbytes >= LAST_SMALL_BOUND ) 1970 # endif 1971 ) 1972 #else /* !DO_NOT_TRY_HARDER_WHEN_SHRINKING */ 1973 prev_bucket = ( (bucket > MAX_PACKED + 1) 1974 ? bucket - BUCKETS_PER_POW2 1975 : bucket - 1); 1976 if (nbytes > BUCKET_SIZE_REAL(prev_bucket)) 1977 #endif /* !DO_NOT_TRY_HARDER_WHEN_SHRINKING */ 1978 incr = 0; 1979 else incr = -1; 1980 } 1981 #ifdef STRESS_REALLOC 1982 goto hard_way; 1983 #endif 1984 if (incr == 0) { 1985 inplace_label: 1986 #ifdef RCHECK 1987 /* 1988 * Record new allocated size of block and 1989 * bound space with magic numbers. 1990 */ 1991 if (OV_INDEX(ovp) <= MAX_SHORT_BUCKET) { 1992 int i, nb = ovp->ov_size + 1; 1993 1994 if ((i = nb & (RMAGIC_SZ-1))) { 1995 i = RMAGIC_SZ - i; 1996 while (i--) { /* nb - RMAGIC_SZ is end of alloced area */ 1997 ASSERT(((caddr_t)ovp + nb - RMAGIC_SZ)[i] == RMAGIC_C, "chunk's tail overwrite"); 1998 } 1999 } 2000 /* Same at RMAGIC_SZ-aligned RMAGIC */ 2001 nb = (nb + (RMAGIC_SZ-1)) & ~(RMAGIC_SZ-1); 2002 ASSERT(((u_int *)((caddr_t)ovp + nb))[-1] == RMAGIC, 2003 "chunk's tail overwrite"); 2004 FILLCHECK_DEADBEEF((unsigned char*)((caddr_t)ovp + nb), 2005 BUCKET_SIZE(OV_INDEX(ovp)) - nb); 2006 if (nbytes > ovp->ov_size + 1 - M_OVERHEAD) 2007 FILL_FEEDADAD((unsigned char*)cp + ovp->ov_size + 1 - M_OVERHEAD, 2008 nbytes - (ovp->ov_size + 1 - M_OVERHEAD)); 2009 else 2010 FILL_DEADBEEF((unsigned char*)cp + nbytes, 2011 nb - M_OVERHEAD + RMAGIC_SZ - nbytes); 2012 /* 2013 * Convert amount of memory requested into 2014 * closest block size stored in hash buckets 2015 * which satisfies request. Account for 2016 * space used per block for accounting. 2017 */ 2018 nbytes += M_OVERHEAD; 2019 ovp->ov_size = nbytes - 1; 2020 if ((i = nbytes & (RMAGIC_SZ-1))) { 2021 i = RMAGIC_SZ - i; 2022 while (i--) /* nbytes - RMAGIC_SZ is end of alloced area */ 2023 ((caddr_t)ovp + nbytes - RMAGIC_SZ)[i] 2024 = RMAGIC_C; 2025 } 2026 /* Same at RMAGIC_SZ-aligned RMAGIC */ 2027 nbytes = (nbytes + (RMAGIC_SZ-1)) & ~(RMAGIC_SZ - 1); 2028 ((u_int *)((caddr_t)ovp + nbytes))[-1] = RMAGIC; 2029 } 2030 #endif 2031 res = cp; 2032 DEBUG_m(PerlIO_printf(Perl_debug_log, 2033 "0x%"UVxf": (%05lu) realloc %ld bytes inplace\n", 2034 PTR2UV(res),(unsigned long)(PL_an++), 2035 (long)size)); 2036 } else if (incr == 1 && (cp - M_OVERHEAD == last_op) 2037 && (onb > (1 << LOG_OF_MIN_ARENA))) { 2038 MEM_SIZE require, newarena = nbytes, pow; 2039 int shiftr; 2040 2041 POW2_OPTIMIZE_ADJUST(newarena); 2042 newarena = newarena + M_OVERHEAD; 2043 /* newarena = (newarena + 3) &~ 3; */ 2044 shiftr = (newarena - 1) >> LOG_OF_MIN_ARENA; 2045 pow = LOG_OF_MIN_ARENA + 1; 2046 /* apart from this loop, this is O(1) */ 2047 while (shiftr >>= 1) 2048 pow++; 2049 newarena = (1 << pow) + POW2_OPTIMIZE_SURPLUS(pow * BUCKETS_PER_POW2); 2050 require = newarena - onb - M_OVERHEAD; 2051 2052 MALLOC_LOCK; 2053 if (cp - M_OVERHEAD == last_op /* We *still* are the last chunk */ 2054 && getpages_adjacent(require)) { 2055 #ifdef DEBUGGING_MSTATS 2056 nmalloc[bucket]--; 2057 nmalloc[pow * BUCKETS_PER_POW2]++; 2058 #endif 2059 if (pow * BUCKETS_PER_POW2 > (MEM_SIZE)max_bucket) 2060 max_bucket = pow * BUCKETS_PER_POW2; 2061 *(cp - M_OVERHEAD) = pow * BUCKETS_PER_POW2; /* Fill index. */ 2062 MALLOC_UNLOCK; 2063 goto inplace_label; 2064 } else { 2065 MALLOC_UNLOCK; 2066 goto hard_way; 2067 } 2068 } else { 2069 hard_way: 2070 DEBUG_m(PerlIO_printf(Perl_debug_log, 2071 "0x%"UVxf": (%05lu) realloc %ld bytes the hard way\n", 2072 PTR2UV(cp),(unsigned long)(PL_an++), 2073 (long)size)); 2074 if ((res = (char*)Perl_malloc(nbytes)) == NULL) 2075 return (NULL); 2076 if (cp != res) /* common optimization */ 2077 Copy(cp, res, (MEM_SIZE)(nbytes<onb?nbytes:onb), char); 2078 Perl_mfree(cp); 2079 } 2080 return ((Malloc_t)res); 2081 } 2082 2083 Malloc_t 2084 Perl_calloc(size_t elements, size_t size) 2085 { 2086 long sz = elements * size; 2087 Malloc_t p = Perl_malloc(sz); 2088 2089 if (p) { 2090 memset((void*)p, 0, sz); 2091 } 2092 return p; 2093 } 2094 2095 char * 2096 Perl_strdup(const char *s) 2097 { 2098 MEM_SIZE l = strlen(s); 2099 char *s1 = (char *)Perl_malloc(l+1); 2100 2101 return (char *)CopyD(s, s1, (MEM_SIZE)(l+1), char); 2102 } 2103 2104 int 2105 Perl_putenv(char *a) 2106 { 2107 /* Sometimes system's putenv conflicts with my_setenv() - this is system 2108 malloc vs Perl's free(). */ 2109 dTHX; 2110 char *var; 2111 char *val = a; 2112 MEM_SIZE l; 2113 char buf[80]; 2114 2115 while (*val && *val != '=') 2116 val++; 2117 if (!*val) 2118 return -1; 2119 l = val - a; 2120 if (l < sizeof(buf)) 2121 var = buf; 2122 else 2123 var = (char *)Perl_malloc(l + 1); 2124 Copy(a, var, l, char); 2125 var[l + 1] = 0; 2126 my_setenv(var, val+1); 2127 if (var != buf) 2128 Perl_mfree(var); 2129 return 0; 2130 } 2131 2132 MEM_SIZE 2133 Perl_malloced_size(void *p) 2134 { 2135 union overhead * const ovp = (union overhead *) 2136 ((caddr_t)p - sizeof (union overhead) * CHUNK_SHIFT); 2137 const int bucket = OV_INDEX(ovp); 2138 2139 PERL_ARGS_ASSERT_MALLOCED_SIZE; 2140 2141 #ifdef RCHECK 2142 /* The caller wants to have a complete control over the chunk, 2143 disable the memory checking inside the chunk. */ 2144 if (bucket <= MAX_SHORT_BUCKET) { 2145 const MEM_SIZE size = BUCKET_SIZE_REAL(bucket); 2146 ovp->ov_size = size + M_OVERHEAD - 1; 2147 *((u_int *)((caddr_t)ovp + size + M_OVERHEAD - RMAGIC_SZ)) = RMAGIC; 2148 } 2149 #endif 2150 return BUCKET_SIZE_REAL(bucket); 2151 } 2152 2153 2154 MEM_SIZE 2155 Perl_malloc_good_size(size_t wanted) 2156 { 2157 return BUCKET_SIZE_REAL(adjust_size_and_find_bucket(&wanted)); 2158 } 2159 2160 # ifdef BUCKETS_ROOT2 2161 # define MIN_EVEN_REPORT 6 2162 # else 2163 # define MIN_EVEN_REPORT MIN_BUCKET 2164 # endif 2165 2166 int 2167 Perl_get_mstats(pTHX_ perl_mstats_t *buf, int buflen, int level) 2168 { 2169 #ifdef DEBUGGING_MSTATS 2170 int i, j; 2171 union overhead *p; 2172 struct chunk_chain_s* nextchain; 2173 2174 PERL_ARGS_ASSERT_GET_MSTATS; 2175 2176 buf->topbucket = buf->topbucket_ev = buf->topbucket_odd 2177 = buf->totfree = buf->total = buf->total_chain = 0; 2178 2179 buf->minbucket = MIN_BUCKET; 2180 MALLOC_LOCK; 2181 for (i = MIN_BUCKET ; i < NBUCKETS; i++) { 2182 for (j = 0, p = nextf[i]; p; p = p->ov_next, j++) 2183 ; 2184 if (i < buflen) { 2185 buf->nfree[i] = j; 2186 buf->ntotal[i] = nmalloc[i]; 2187 } 2188 buf->totfree += j * BUCKET_SIZE_REAL(i); 2189 buf->total += nmalloc[i] * BUCKET_SIZE_REAL(i); 2190 if (nmalloc[i]) { 2191 i % 2 ? (buf->topbucket_odd = i) : (buf->topbucket_ev = i); 2192 buf->topbucket = i; 2193 } 2194 } 2195 nextchain = chunk_chain; 2196 while (nextchain) { 2197 buf->total_chain += nextchain->size; 2198 nextchain = nextchain->next; 2199 } 2200 buf->total_sbrk = goodsbrk + sbrk_slack; 2201 buf->sbrks = sbrks; 2202 buf->sbrk_good = sbrk_goodness; 2203 buf->sbrk_slack = sbrk_slack; 2204 buf->start_slack = start_slack; 2205 buf->sbrked_remains = sbrked_remains; 2206 MALLOC_UNLOCK; 2207 buf->nbuckets = NBUCKETS; 2208 if (level) { 2209 for (i = MIN_BUCKET ; i < NBUCKETS; i++) { 2210 if (i >= buflen) 2211 break; 2212 buf->bucket_mem_size[i] = BUCKET_SIZE_NO_SURPLUS(i); 2213 buf->bucket_available_size[i] = BUCKET_SIZE_REAL(i); 2214 } 2215 } 2216 #else /* defined DEBUGGING_MSTATS */ 2217 PerlIO_printf(Perl_error_log, "perl not compiled with DEBUGGING_MSTATS\n"); 2218 #endif /* defined DEBUGGING_MSTATS */ 2219 return 0; /* XXX unused */ 2220 } 2221 /* 2222 * mstats - print out statistics about malloc 2223 * 2224 * Prints two lines of numbers, one showing the length of the free list 2225 * for each size category, the second showing the number of mallocs - 2226 * frees for each size category. 2227 */ 2228 void 2229 Perl_dump_mstats(pTHX_ const char *s) 2230 { 2231 #ifdef DEBUGGING_MSTATS 2232 int i; 2233 perl_mstats_t buffer; 2234 UV nf[NBUCKETS]; 2235 UV nt[NBUCKETS]; 2236 2237 PERL_ARGS_ASSERT_DUMP_MSTATS; 2238 2239 buffer.nfree = nf; 2240 buffer.ntotal = nt; 2241 get_mstats(&buffer, NBUCKETS, 0); 2242 2243 if (s) 2244 PerlIO_printf(Perl_error_log, 2245 "Memory allocation statistics %s (buckets %"IVdf"(%"IVdf")..%"IVdf"(%"IVdf")\n", 2246 s, 2247 (IV)BUCKET_SIZE_REAL(MIN_BUCKET), 2248 (IV)BUCKET_SIZE_NO_SURPLUS(MIN_BUCKET), 2249 (IV)BUCKET_SIZE_REAL(buffer.topbucket), 2250 (IV)BUCKET_SIZE_NO_SURPLUS(buffer.topbucket)); 2251 PerlIO_printf(Perl_error_log, "%8"IVdf" free:", buffer.totfree); 2252 for (i = MIN_EVEN_REPORT; i <= buffer.topbucket; i += BUCKETS_PER_POW2) { 2253 PerlIO_printf(Perl_error_log, 2254 ((i < 8*BUCKETS_PER_POW2 || i == 10*BUCKETS_PER_POW2) 2255 ? " %5"UVuf 2256 : ((i < 12*BUCKETS_PER_POW2) ? " %3"UVuf : " %"UVuf)), 2257 buffer.nfree[i]); 2258 } 2259 #ifdef BUCKETS_ROOT2 2260 PerlIO_printf(Perl_error_log, "\n\t "); 2261 for (i = MIN_BUCKET + 1; i <= buffer.topbucket_odd; i += BUCKETS_PER_POW2) { 2262 PerlIO_printf(Perl_error_log, 2263 ((i < 8*BUCKETS_PER_POW2 || i == 10*BUCKETS_PER_POW2) 2264 ? " %5"UVuf 2265 : ((i < 12*BUCKETS_PER_POW2) ? " %3"UVuf : " %"UVuf)), 2266 buffer.nfree[i]); 2267 } 2268 #endif 2269 PerlIO_printf(Perl_error_log, "\n%8"IVdf" used:", buffer.total - buffer.totfree); 2270 for (i = MIN_EVEN_REPORT; i <= buffer.topbucket; i += BUCKETS_PER_POW2) { 2271 PerlIO_printf(Perl_error_log, 2272 ((i < 8*BUCKETS_PER_POW2 || i == 10*BUCKETS_PER_POW2) 2273 ? " %5"IVdf 2274 : ((i < 12*BUCKETS_PER_POW2) ? " %3"IVdf : " %"IVdf)), 2275 buffer.ntotal[i] - buffer.nfree[i]); 2276 } 2277 #ifdef BUCKETS_ROOT2 2278 PerlIO_printf(Perl_error_log, "\n\t "); 2279 for (i = MIN_BUCKET + 1; i <= buffer.topbucket_odd; i += BUCKETS_PER_POW2) { 2280 PerlIO_printf(Perl_error_log, 2281 ((i < 8*BUCKETS_PER_POW2 || i == 10*BUCKETS_PER_POW2) 2282 ? " %5"IVdf 2283 : ((i < 12*BUCKETS_PER_POW2) ? " %3"IVdf : " %"IVdf)), 2284 buffer.ntotal[i] - buffer.nfree[i]); 2285 } 2286 #endif 2287 PerlIO_printf(Perl_error_log, "\nTotal sbrk(): %"IVdf"/%"IVdf":%"IVdf". Odd ends: pad+heads+chain+tail: %"IVdf"+%"IVdf"+%"IVdf"+%"IVdf".\n", 2288 buffer.total_sbrk, buffer.sbrks, buffer.sbrk_good, 2289 buffer.sbrk_slack, buffer.start_slack, 2290 buffer.total_chain, buffer.sbrked_remains); 2291 #else /* DEBUGGING_MSTATS */ 2292 PerlIO_printf(Perl_error_log, "%s: perl not compiled with DEBUGGING_MSTATS\n",s); 2293 #endif /* DEBUGGING_MSTATS */ 2294 } 2295 2296 #ifdef USE_PERL_SBRK 2297 2298 # if defined(PURIFY) 2299 # define PERL_SBRK_VIA_MALLOC 2300 # endif 2301 2302 # ifdef PERL_SBRK_VIA_MALLOC 2303 2304 /* it may seem schizophrenic to use perl's malloc and let it call system */ 2305 /* malloc, the reason for that is only the 3.2 version of the OS that had */ 2306 /* frequent core dumps within nxzonefreenolock. This sbrk routine put an */ 2307 /* end to the cores */ 2308 2309 # ifndef SYSTEM_ALLOC 2310 # define SYSTEM_ALLOC(a) malloc(a) 2311 # endif 2312 # ifndef SYSTEM_ALLOC_ALIGNMENT 2313 # define SYSTEM_ALLOC_ALIGNMENT MEM_ALIGNBYTES 2314 # endif 2315 2316 # endif /* PERL_SBRK_VIA_MALLOC */ 2317 2318 static IV Perl_sbrk_oldchunk; 2319 static long Perl_sbrk_oldsize; 2320 2321 # define PERLSBRK_32_K (1<<15) 2322 # define PERLSBRK_64_K (1<<16) 2323 2324 Malloc_t 2325 Perl_sbrk(int size) 2326 { 2327 IV got; 2328 int small, reqsize; 2329 2330 if (!size) return 0; 2331 reqsize = size; /* just for the DEBUG_m statement */ 2332 #ifdef PACK_MALLOC 2333 size = (size + 0x7ff) & ~0x7ff; 2334 #endif 2335 if (size <= Perl_sbrk_oldsize) { 2336 got = Perl_sbrk_oldchunk; 2337 Perl_sbrk_oldchunk += size; 2338 Perl_sbrk_oldsize -= size; 2339 } else { 2340 if (size >= PERLSBRK_32_K) { 2341 small = 0; 2342 } else { 2343 size = PERLSBRK_64_K; 2344 small = 1; 2345 } 2346 # if NEEDED_ALIGNMENT > SYSTEM_ALLOC_ALIGNMENT 2347 size += NEEDED_ALIGNMENT - SYSTEM_ALLOC_ALIGNMENT; 2348 # endif 2349 got = (IV)SYSTEM_ALLOC(size); 2350 # if NEEDED_ALIGNMENT > SYSTEM_ALLOC_ALIGNMENT 2351 got = (got + NEEDED_ALIGNMENT - 1) & ~(NEEDED_ALIGNMENT - 1); 2352 # endif 2353 if (small) { 2354 /* Chunk is small, register the rest for future allocs. */ 2355 Perl_sbrk_oldchunk = got + reqsize; 2356 Perl_sbrk_oldsize = size - reqsize; 2357 } 2358 } 2359 2360 DEBUG_m(PerlIO_printf(Perl_debug_log, "sbrk malloc size %ld (reqsize %ld), left size %ld, give addr 0x%"UVxf"\n", 2361 size, reqsize, Perl_sbrk_oldsize, PTR2UV(got))); 2362 2363 return (void *)got; 2364 } 2365 2366 #endif /* ! defined USE_PERL_SBRK */ 2367 2368 /* 2369 * ex: set ts=8 sts=4 sw=4 et: 2370 */ 2371