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Tim Peters1221c0a2002-03-23 00:20:15 +00001#include "Python.h"
2
3#ifdef WITH_PYMALLOC
4
Neil Schemenauera35c6882001-02-27 04:45:05 +00005/* An object allocator for Python.
6
7 Here is an introduction to the layers of the Python memory architecture,
8 showing where the object allocator is actually used (layer +2), It is
9 called for every object allocation and deallocation (PyObject_New/Del),
10 unless the object-specific allocators implement a proprietary allocation
11 scheme (ex.: ints use a simple free list). This is also the place where
12 the cyclic garbage collector operates selectively on container objects.
13
14
15 Object-specific allocators
16 _____ ______ ______ ________
17 [ int ] [ dict ] [ list ] ... [ string ] Python core |
18+3 | <----- Object-specific memory -----> | <-- Non-object memory --> |
19 _______________________________ | |
20 [ Python's object allocator ] | |
21+2 | ####### Object memory ####### | <------ Internal buffers ------> |
22 ______________________________________________________________ |
23 [ Python's raw memory allocator (PyMem_ API) ] |
24+1 | <----- Python memory (under PyMem manager's control) ------> | |
25 __________________________________________________________________
26 [ Underlying general-purpose allocator (ex: C library malloc) ]
27 0 | <------ Virtual memory allocated for the python process -------> |
28
29 =========================================================================
30 _______________________________________________________________________
31 [ OS-specific Virtual Memory Manager (VMM) ]
32-1 | <--- Kernel dynamic storage allocation & management (page-based) ---> |
33 __________________________________ __________________________________
34 [ ] [ ]
35-2 | <-- Physical memory: ROM/RAM --> | | <-- Secondary storage (swap) --> |
36
37*/
38/*==========================================================================*/
39
40/* A fast, special-purpose memory allocator for small blocks, to be used
41 on top of a general-purpose malloc -- heavily based on previous art. */
42
43/* Vladimir Marangozov -- August 2000 */
44
45/*
46 * "Memory management is where the rubber meets the road -- if we do the wrong
47 * thing at any level, the results will not be good. And if we don't make the
48 * levels work well together, we are in serious trouble." (1)
49 *
50 * (1) Paul R. Wilson, Mark S. Johnstone, Michael Neely, and David Boles,
51 * "Dynamic Storage Allocation: A Survey and Critical Review",
52 * in Proc. 1995 Int'l. Workshop on Memory Management, September 1995.
53 */
54
55/* #undef WITH_MEMORY_LIMITS */ /* disable mem limit checks */
Neil Schemenauera35c6882001-02-27 04:45:05 +000056
57/*==========================================================================*/
58
59/*
Neil Schemenauera35c6882001-02-27 04:45:05 +000060 * Allocation strategy abstract:
61 *
62 * For small requests, the allocator sub-allocates <Big> blocks of memory.
63 * Requests greater than 256 bytes are routed to the system's allocator.
Tim Petersce7fb9b2002-03-23 00:28:57 +000064 *
Neil Schemenauera35c6882001-02-27 04:45:05 +000065 * Small requests are grouped in size classes spaced 8 bytes apart, due
66 * to the required valid alignment of the returned address. Requests of
67 * a particular size are serviced from memory pools of 4K (one VMM page).
68 * Pools are fragmented on demand and contain free lists of blocks of one
69 * particular size class. In other words, there is a fixed-size allocator
70 * for each size class. Free pools are shared by the different allocators
71 * thus minimizing the space reserved for a particular size class.
72 *
73 * This allocation strategy is a variant of what is known as "simple
74 * segregated storage based on array of free lists". The main drawback of
75 * simple segregated storage is that we might end up with lot of reserved
76 * memory for the different free lists, which degenerate in time. To avoid
77 * this, we partition each free list in pools and we share dynamically the
78 * reserved space between all free lists. This technique is quite efficient
79 * for memory intensive programs which allocate mainly small-sized blocks.
80 *
81 * For small requests we have the following table:
82 *
83 * Request in bytes Size of allocated block Size class idx
84 * ----------------------------------------------------------------
85 * 1-8 8 0
86 * 9-16 16 1
87 * 17-24 24 2
88 * 25-32 32 3
89 * 33-40 40 4
90 * 41-48 48 5
91 * 49-56 56 6
92 * 57-64 64 7
93 * 65-72 72 8
94 * ... ... ...
95 * 241-248 248 30
96 * 249-256 256 31
Tim Petersce7fb9b2002-03-23 00:28:57 +000097 *
Neil Schemenauera35c6882001-02-27 04:45:05 +000098 * 0, 257 and up: routed to the underlying allocator.
99 */
100
101/*==========================================================================*/
102
103/*
104 * -- Main tunable settings section --
105 */
106
107/*
108 * Alignment of addresses returned to the user. 8-bytes alignment works
109 * on most current architectures (with 32-bit or 64-bit address busses).
110 * The alignment value is also used for grouping small requests in size
111 * classes spaced ALIGNMENT bytes apart.
112 *
113 * You shouldn't change this unless you know what you are doing.
114 */
Neil Schemenauera35c6882001-02-27 04:45:05 +0000115#define ALIGNMENT 8 /* must be 2^N */
116#define ALIGNMENT_SHIFT 3
117#define ALIGNMENT_MASK (ALIGNMENT - 1)
118
Tim Peterse70ddf32002-04-05 04:32:29 +0000119/* Return the number of bytes in size class I, as a uint. */
120#define INDEX2SIZE(I) (((uint)(I) + 1) << ALIGNMENT_SHIFT)
121
Neil Schemenauera35c6882001-02-27 04:45:05 +0000122/*
123 * Max size threshold below which malloc requests are considered to be
124 * small enough in order to use preallocated memory pools. You can tune
125 * this value according to your application behaviour and memory needs.
126 *
127 * The following invariants must hold:
128 * 1) ALIGNMENT <= SMALL_REQUEST_THRESHOLD <= 256
Tim Petersd97a1c02002-03-30 06:09:22 +0000129 * 2) SMALL_REQUEST_THRESHOLD is evenly divisible by ALIGNMENT
Neil Schemenauera35c6882001-02-27 04:45:05 +0000130 *
131 * Although not required, for better performance and space efficiency,
132 * it is recommended that SMALL_REQUEST_THRESHOLD is set to a power of 2.
133 */
Tim Petersd97a1c02002-03-30 06:09:22 +0000134#define SMALL_REQUEST_THRESHOLD 256
Neil Schemenauera35c6882001-02-27 04:45:05 +0000135#define NB_SMALL_SIZE_CLASSES (SMALL_REQUEST_THRESHOLD / ALIGNMENT)
136
137/*
138 * The system's VMM page size can be obtained on most unices with a
139 * getpagesize() call or deduced from various header files. To make
140 * things simpler, we assume that it is 4K, which is OK for most systems.
141 * It is probably better if this is the native page size, but it doesn't
Tim Petersecc6e6a2005-07-10 22:30:55 +0000142 * have to be. In theory, if SYSTEM_PAGE_SIZE is larger than the native page
143 * size, then `POOL_ADDR(p)->arenaindex' could rarely cause a segmentation
144 * violation fault. 4K is apparently OK for all the platforms that python
Martin v. Löwis8c140282002-10-26 15:01:53 +0000145 * currently targets.
Neil Schemenauera35c6882001-02-27 04:45:05 +0000146 */
Neil Schemenauera35c6882001-02-27 04:45:05 +0000147#define SYSTEM_PAGE_SIZE (4 * 1024)
148#define SYSTEM_PAGE_SIZE_MASK (SYSTEM_PAGE_SIZE - 1)
149
150/*
151 * Maximum amount of memory managed by the allocator for small requests.
152 */
Neil Schemenauera35c6882001-02-27 04:45:05 +0000153#ifdef WITH_MEMORY_LIMITS
154#ifndef SMALL_MEMORY_LIMIT
155#define SMALL_MEMORY_LIMIT (64 * 1024 * 1024) /* 64 MB -- more? */
156#endif
157#endif
158
159/*
160 * The allocator sub-allocates <Big> blocks of memory (called arenas) aligned
161 * on a page boundary. This is a reserved virtual address space for the
162 * current process (obtained through a malloc call). In no way this means
163 * that the memory arenas will be used entirely. A malloc(<Big>) is usually
164 * an address range reservation for <Big> bytes, unless all pages within this
165 * space are referenced subsequently. So malloc'ing big blocks and not using
166 * them does not mean "wasting memory". It's an addressable range wastage...
167 *
168 * Therefore, allocating arenas with malloc is not optimal, because there is
169 * some address space wastage, but this is the most portable way to request
Tim Petersd97a1c02002-03-30 06:09:22 +0000170 * memory from the system across various platforms.
Neil Schemenauera35c6882001-02-27 04:45:05 +0000171 */
Tim Peters3c83df22002-03-30 07:04:41 +0000172#define ARENA_SIZE (256 << 10) /* 256KB */
Neil Schemenauera35c6882001-02-27 04:45:05 +0000173
174#ifdef WITH_MEMORY_LIMITS
175#define MAX_ARENAS (SMALL_MEMORY_LIMIT / ARENA_SIZE)
176#endif
177
178/*
179 * Size of the pools used for small blocks. Should be a power of 2,
Tim Petersc2ce91a2002-03-30 21:36:04 +0000180 * between 1K and SYSTEM_PAGE_SIZE, that is: 1k, 2k, 4k.
Neil Schemenauera35c6882001-02-27 04:45:05 +0000181 */
Neil Schemenauera35c6882001-02-27 04:45:05 +0000182#define POOL_SIZE SYSTEM_PAGE_SIZE /* must be 2^N */
183#define POOL_SIZE_MASK SYSTEM_PAGE_SIZE_MASK
Neil Schemenauera35c6882001-02-27 04:45:05 +0000184
185/*
186 * -- End of tunable settings section --
187 */
188
189/*==========================================================================*/
190
191/*
192 * Locking
193 *
194 * To reduce lock contention, it would probably be better to refine the
195 * crude function locking with per size class locking. I'm not positive
196 * however, whether it's worth switching to such locking policy because
197 * of the performance penalty it might introduce.
198 *
199 * The following macros describe the simplest (should also be the fastest)
200 * lock object on a particular platform and the init/fini/lock/unlock
201 * operations on it. The locks defined here are not expected to be recursive
202 * because it is assumed that they will always be called in the order:
203 * INIT, [LOCK, UNLOCK]*, FINI.
204 */
205
206/*
207 * Python's threads are serialized, so object malloc locking is disabled.
208 */
209#define SIMPLELOCK_DECL(lock) /* simple lock declaration */
210#define SIMPLELOCK_INIT(lock) /* allocate (if needed) and initialize */
211#define SIMPLELOCK_FINI(lock) /* free/destroy an existing lock */
212#define SIMPLELOCK_LOCK(lock) /* acquire released lock */
213#define SIMPLELOCK_UNLOCK(lock) /* release acquired lock */
214
215/*
216 * Basic types
217 * I don't care if these are defined in <sys/types.h> or elsewhere. Axiom.
218 */
Neil Schemenauera35c6882001-02-27 04:45:05 +0000219#undef uchar
Tim Peterscf79aac2006-03-16 01:14:46 +0000220#define uchar unsigned char /* assuming == 8 bits */
Neil Schemenauera35c6882001-02-27 04:45:05 +0000221
Neil Schemenauera35c6882001-02-27 04:45:05 +0000222#undef uint
Tim Peterscf79aac2006-03-16 01:14:46 +0000223#define uint unsigned int /* assuming >= 16 bits */
Neil Schemenauera35c6882001-02-27 04:45:05 +0000224
225#undef ulong
Tim Peterscf79aac2006-03-16 01:14:46 +0000226#define ulong unsigned long /* assuming >= 32 bits */
Neil Schemenauera35c6882001-02-27 04:45:05 +0000227
Tim Petersd97a1c02002-03-30 06:09:22 +0000228#undef uptr
Tim Peterscf79aac2006-03-16 01:14:46 +0000229#define uptr Py_uintptr_t
Tim Petersd97a1c02002-03-30 06:09:22 +0000230
Neil Schemenauera35c6882001-02-27 04:45:05 +0000231/* When you say memory, my mind reasons in terms of (pointers to) blocks */
232typedef uchar block;
233
Tim Peterse70ddf32002-04-05 04:32:29 +0000234/* Pool for small blocks. */
Neil Schemenauera35c6882001-02-27 04:45:05 +0000235struct pool_header {
Tim Petersb2336522001-03-11 18:36:13 +0000236 union { block *_padding;
Neil Schemenauera35c6882001-02-27 04:45:05 +0000237 uint count; } ref; /* number of allocated blocks */
238 block *freeblock; /* pool's free list head */
239 struct pool_header *nextpool; /* next pool of this size class */
240 struct pool_header *prevpool; /* previous pool "" */
Tim Peters1d99af82002-03-30 10:35:09 +0000241 uint arenaindex; /* index into arenas of base adr */
Neil Schemenauera35c6882001-02-27 04:45:05 +0000242 uint szidx; /* block size class index */
Tim Peterse70ddf32002-04-05 04:32:29 +0000243 uint nextoffset; /* bytes to virgin block */
244 uint maxnextoffset; /* largest valid nextoffset */
Neil Schemenauera35c6882001-02-27 04:45:05 +0000245};
246
247typedef struct pool_header *poolp;
248
Tim Peterscf79aac2006-03-16 01:14:46 +0000249/* Record keeping for arenas. */
250struct arena_object {
251 /* The address of the arena, as returned by malloc. Note that 0
252 * will never be returned by a successful malloc, and is used
253 * here to mark an arena_object that doesn't correspond to an
254 * allocated arena.
255 */
256 uptr address;
257
258 /* Pool-aligned pointer to the next pool to be carved off. */
259 block* pool_address;
260
261 /* The number of available pools in the arena: free pools + never-
262 * allocated pools.
263 */
264 uint nfreepools;
265
266 /* The total number of pools in the arena, whether or not available. */
267 uint ntotalpools;
268
269 /* Singly-linked list of available pools. */
270 struct pool_header* freepools;
271
272 /* Whenever this arena_object is not associated with an allocated
273 * arena, the nextarena member is used to link all unassociated
274 * arena_objects in the singly-linked `unused_arena_objects` list.
275 * The prevarena member is unused in this case.
276 *
277 * When this arena_object is associated with an allocated arena
278 * with at least one available pool, both members are used in the
279 * doubly-linked `usable_arenas` list, which is maintained in
280 * increasing order of `nfreepools` values.
281 *
282 * Else this arena_object is associated with an allocated arena
283 * all of whose pools are in use. `nextarena` and `prevarena`
284 * are both meaningless in this case.
285 */
286 struct arena_object* nextarena;
287 struct arena_object* prevarena;
288};
289
Neil Schemenauera35c6882001-02-27 04:45:05 +0000290#undef ROUNDUP
291#define ROUNDUP(x) (((x) + ALIGNMENT_MASK) & ~ALIGNMENT_MASK)
292#define POOL_OVERHEAD ROUNDUP(sizeof(struct pool_header))
293
294#define DUMMY_SIZE_IDX 0xffff /* size class of newly cached pools */
295
Tim Petersd97a1c02002-03-30 06:09:22 +0000296/* Round pointer P down to the closest pool-aligned address <= P, as a poolp */
Tim Peterse70ddf32002-04-05 04:32:29 +0000297#define POOL_ADDR(P) ((poolp)((uptr)(P) & ~(uptr)POOL_SIZE_MASK))
298
Tim Peters16bcb6b2002-04-05 05:45:31 +0000299/* Return total number of blocks in pool of size index I, as a uint. */
300#define NUMBLOCKS(I) ((uint)(POOL_SIZE - POOL_OVERHEAD) / INDEX2SIZE(I))
Tim Petersd97a1c02002-03-30 06:09:22 +0000301
Neil Schemenauera35c6882001-02-27 04:45:05 +0000302/*==========================================================================*/
303
304/*
305 * This malloc lock
306 */
Jeremy Hyltond1fedb62002-07-18 18:49:52 +0000307SIMPLELOCK_DECL(_malloc_lock)
Tim Petersb2336522001-03-11 18:36:13 +0000308#define LOCK() SIMPLELOCK_LOCK(_malloc_lock)
309#define UNLOCK() SIMPLELOCK_UNLOCK(_malloc_lock)
310#define LOCK_INIT() SIMPLELOCK_INIT(_malloc_lock)
311#define LOCK_FINI() SIMPLELOCK_FINI(_malloc_lock)
Neil Schemenauera35c6882001-02-27 04:45:05 +0000312
313/*
Tim Peters1e16db62002-03-31 01:05:22 +0000314 * Pool table -- headed, circular, doubly-linked lists of partially used pools.
315
316This is involved. For an index i, usedpools[i+i] is the header for a list of
317all partially used pools holding small blocks with "size class idx" i. So
318usedpools[0] corresponds to blocks of size 8, usedpools[2] to blocks of size
31916, and so on: index 2*i <-> blocks of size (i+1)<<ALIGNMENT_SHIFT.
320
Tim Peterscf79aac2006-03-16 01:14:46 +0000321Pools are carved off an arena's highwater mark (an arena_object's pool_address
322member) as needed. Once carved off, a pool is in one of three states forever
323after:
Tim Peters1e16db62002-03-31 01:05:22 +0000324
Tim Peters338e0102002-04-01 19:23:44 +0000325used == partially used, neither empty nor full
326 At least one block in the pool is currently allocated, and at least one
327 block in the pool is not currently allocated (note this implies a pool
328 has room for at least two blocks).
329 This is a pool's initial state, as a pool is created only when malloc
330 needs space.
331 The pool holds blocks of a fixed size, and is in the circular list headed
332 at usedpools[i] (see above). It's linked to the other used pools of the
333 same size class via the pool_header's nextpool and prevpool members.
334 If all but one block is currently allocated, a malloc can cause a
335 transition to the full state. If all but one block is not currently
336 allocated, a free can cause a transition to the empty state.
Tim Peters1e16db62002-03-31 01:05:22 +0000337
Tim Peters338e0102002-04-01 19:23:44 +0000338full == all the pool's blocks are currently allocated
339 On transition to full, a pool is unlinked from its usedpools[] list.
340 It's not linked to from anything then anymore, and its nextpool and
341 prevpool members are meaningless until it transitions back to used.
342 A free of a block in a full pool puts the pool back in the used state.
343 Then it's linked in at the front of the appropriate usedpools[] list, so
344 that the next allocation for its size class will reuse the freed block.
345
346empty == all the pool's blocks are currently available for allocation
347 On transition to empty, a pool is unlinked from its usedpools[] list,
Tim Peterscf79aac2006-03-16 01:14:46 +0000348 and linked to the front of its arena_object's singly-linked freepools list,
Tim Peters338e0102002-04-01 19:23:44 +0000349 via its nextpool member. The prevpool member has no meaning in this case.
350 Empty pools have no inherent size class: the next time a malloc finds
351 an empty list in usedpools[], it takes the first pool off of freepools.
352 If the size class needed happens to be the same as the size class the pool
Tim Peterse70ddf32002-04-05 04:32:29 +0000353 last had, some pool initialization can be skipped.
Tim Peters338e0102002-04-01 19:23:44 +0000354
355
356Block Management
357
358Blocks within pools are again carved out as needed. pool->freeblock points to
359the start of a singly-linked list of free blocks within the pool. When a
360block is freed, it's inserted at the front of its pool's freeblock list. Note
361that the available blocks in a pool are *not* linked all together when a pool
Tim Peterse70ddf32002-04-05 04:32:29 +0000362is initialized. Instead only "the first two" (lowest addresses) blocks are
363set up, returning the first such block, and setting pool->freeblock to a
364one-block list holding the second such block. This is consistent with that
365pymalloc strives at all levels (arena, pool, and block) never to touch a piece
366of memory until it's actually needed.
367
368So long as a pool is in the used state, we're certain there *is* a block
Tim Peters52aefc82002-04-11 06:36:45 +0000369available for allocating, and pool->freeblock is not NULL. If pool->freeblock
370points to the end of the free list before we've carved the entire pool into
371blocks, that means we simply haven't yet gotten to one of the higher-address
372blocks. The offset from the pool_header to the start of "the next" virgin
373block is stored in the pool_header nextoffset member, and the largest value
374of nextoffset that makes sense is stored in the maxnextoffset member when a
375pool is initialized. All the blocks in a pool have been passed out at least
376once when and only when nextoffset > maxnextoffset.
Tim Peters338e0102002-04-01 19:23:44 +0000377
Tim Peters1e16db62002-03-31 01:05:22 +0000378
379Major obscurity: While the usedpools vector is declared to have poolp
380entries, it doesn't really. It really contains two pointers per (conceptual)
381poolp entry, the nextpool and prevpool members of a pool_header. The
382excruciating initialization code below fools C so that
383
384 usedpool[i+i]
385
386"acts like" a genuine poolp, but only so long as you only reference its
387nextpool and prevpool members. The "- 2*sizeof(block *)" gibberish is
388compensating for that a pool_header's nextpool and prevpool members
389immediately follow a pool_header's first two members:
390
391 union { block *_padding;
392 uint count; } ref;
393 block *freeblock;
394
395each of which consume sizeof(block *) bytes. So what usedpools[i+i] really
396contains is a fudged-up pointer p such that *if* C believes it's a poolp
397pointer, then p->nextpool and p->prevpool are both p (meaning that the headed
398circular list is empty).
399
400It's unclear why the usedpools setup is so convoluted. It could be to
401minimize the amount of cache required to hold this heavily-referenced table
402(which only *needs* the two interpool pointer members of a pool_header). OTOH,
403referencing code has to remember to "double the index" and doing so isn't
404free, usedpools[0] isn't a strictly legal pointer, and we're crucially relying
405on that C doesn't insert any padding anywhere in a pool_header at or before
406the prevpool member.
407**************************************************************************** */
408
Neil Schemenauera35c6882001-02-27 04:45:05 +0000409#define PTA(x) ((poolp )((uchar *)&(usedpools[2*(x)]) - 2*sizeof(block *)))
410#define PT(x) PTA(x), PTA(x)
411
412static poolp usedpools[2 * ((NB_SMALL_SIZE_CLASSES + 7) / 8) * 8] = {
413 PT(0), PT(1), PT(2), PT(3), PT(4), PT(5), PT(6), PT(7)
414#if NB_SMALL_SIZE_CLASSES > 8
415 , PT(8), PT(9), PT(10), PT(11), PT(12), PT(13), PT(14), PT(15)
416#if NB_SMALL_SIZE_CLASSES > 16
417 , PT(16), PT(17), PT(18), PT(19), PT(20), PT(21), PT(22), PT(23)
418#if NB_SMALL_SIZE_CLASSES > 24
419 , PT(24), PT(25), PT(26), PT(27), PT(28), PT(29), PT(30), PT(31)
420#if NB_SMALL_SIZE_CLASSES > 32
421 , PT(32), PT(33), PT(34), PT(35), PT(36), PT(37), PT(38), PT(39)
422#if NB_SMALL_SIZE_CLASSES > 40
423 , PT(40), PT(41), PT(42), PT(43), PT(44), PT(45), PT(46), PT(47)
424#if NB_SMALL_SIZE_CLASSES > 48
425 , PT(48), PT(49), PT(50), PT(51), PT(52), PT(53), PT(54), PT(55)
426#if NB_SMALL_SIZE_CLASSES > 56
427 , PT(56), PT(57), PT(58), PT(59), PT(60), PT(61), PT(62), PT(63)
428#endif /* NB_SMALL_SIZE_CLASSES > 56 */
429#endif /* NB_SMALL_SIZE_CLASSES > 48 */
430#endif /* NB_SMALL_SIZE_CLASSES > 40 */
431#endif /* NB_SMALL_SIZE_CLASSES > 32 */
432#endif /* NB_SMALL_SIZE_CLASSES > 24 */
433#endif /* NB_SMALL_SIZE_CLASSES > 16 */
434#endif /* NB_SMALL_SIZE_CLASSES > 8 */
435};
436
Tim Peterscf79aac2006-03-16 01:14:46 +0000437/*==========================================================================
438Arena management.
Neil Schemenauera35c6882001-02-27 04:45:05 +0000439
Tim Peterscf79aac2006-03-16 01:14:46 +0000440`arenas` is a vector of arena_objects. It contains maxarenas entries, some of
441which may not be currently used (== they're arena_objects that aren't
442currently associated with an allocated arena). Note that arenas proper are
443separately malloc'ed.
Neil Schemenauera35c6882001-02-27 04:45:05 +0000444
Tim Peterscf79aac2006-03-16 01:14:46 +0000445Prior to Python 2.5, arenas were never free()'ed. Starting with Python 2.5,
446we do try to free() arenas, and use some mild heuristic strategies to increase
447the likelihood that arenas eventually can be freed.
448
449unused_arena_objects
450
451 This is a singly-linked list of the arena_objects that are currently not
452 being used (no arena is associated with them). Objects are taken off the
453 head of the list in new_arena(), and are pushed on the head of the list in
454 PyObject_Free() when the arena is empty. Key invariant: an arena_object
455 is on this list if and only if its .address member is 0.
456
457usable_arenas
458
459 This is a doubly-linked list of the arena_objects associated with arenas
460 that have pools available. These pools are either waiting to be reused,
461 or have not been used before. The list is sorted to have the most-
462 allocated arenas first (ascending order based on the nfreepools member).
463 This means that the next allocation will come from a heavily used arena,
464 which gives the nearly empty arenas a chance to be returned to the system.
465 In my unscientific tests this dramatically improved the number of arenas
466 that could be freed.
467
468Note that an arena_object associated with an arena all of whose pools are
469currently in use isn't on either list.
470*/
471
472/* Array of objects used to track chunks of memory (arenas). */
473static struct arena_object* arenas = NULL;
474/* Number of slots currently allocated in the `arenas` vector. */
Tim Peters1d99af82002-03-30 10:35:09 +0000475static uint maxarenas = 0;
Tim Petersd97a1c02002-03-30 06:09:22 +0000476
Tim Peterscf79aac2006-03-16 01:14:46 +0000477/* The head of the singly-linked, NULL-terminated list of available
478 * arena_objects.
Tim Petersd97a1c02002-03-30 06:09:22 +0000479 */
Tim Peterscf79aac2006-03-16 01:14:46 +0000480static struct arena_object* unused_arena_objects = NULL;
481
482/* The head of the doubly-linked, NULL-terminated at each end, list of
483 * arena_objects associated with arenas that have pools available.
484 */
485static struct arena_object* usable_arenas = NULL;
486
487/* How many arena_objects do we initially allocate?
488 * 16 = can allocate 16 arenas = 16 * ARENA_SIZE = 4MB before growing the
489 * `arenas` vector.
490 */
491#define INITIAL_ARENA_OBJECTS 16
492
493/* Number of arenas allocated that haven't been free()'d. */
Tim Peters9ea89d22006-06-04 03:26:02 +0000494static size_t narenas_currently_allocated = 0;
Tim Peterscf79aac2006-03-16 01:14:46 +0000495
496#ifdef PYMALLOC_DEBUG
497/* Total number of times malloc() called to allocate an arena. */
Tim Peters9ea89d22006-06-04 03:26:02 +0000498static size_t ntimes_arena_allocated = 0;
Tim Peterscf79aac2006-03-16 01:14:46 +0000499/* High water mark (max value ever seen) for narenas_currently_allocated. */
Tim Peters9ea89d22006-06-04 03:26:02 +0000500static size_t narenas_highwater = 0;
Tim Peterscf79aac2006-03-16 01:14:46 +0000501#endif
502
503/* Allocate a new arena. If we run out of memory, return NULL. Else
504 * allocate a new arena, and return the address of an arena_object
505 * describing the new arena. It's expected that the caller will set
506 * `usable_arenas` to the return value.
507 */
508static struct arena_object*
Tim Petersd97a1c02002-03-30 06:09:22 +0000509new_arena(void)
510{
Tim Peterscf79aac2006-03-16 01:14:46 +0000511 struct arena_object* arenaobj;
Tim Peters3c83df22002-03-30 07:04:41 +0000512 uint excess; /* number of bytes above pool alignment */
Tim Petersd97a1c02002-03-30 06:09:22 +0000513
Tim Peters0e871182002-04-13 08:29:14 +0000514#ifdef PYMALLOC_DEBUG
515 if (Py_GETENV("PYTHONMALLOCSTATS"))
516 _PyObject_DebugMallocStats();
517#endif
Tim Peterscf79aac2006-03-16 01:14:46 +0000518 if (unused_arena_objects == NULL) {
519 uint i;
Martin v. Löwis9fa5a282008-09-11 06:53:30 +0000520 uint numarenas;
Tim Peterscf79aac2006-03-16 01:14:46 +0000521 size_t nbytes;
Tim Peters0e871182002-04-13 08:29:14 +0000522
Tim Peterscf79aac2006-03-16 01:14:46 +0000523 /* Double the number of arena objects on each allocation.
524 * Note that it's possible for `numarenas` to overflow.
Tim Petersd97a1c02002-03-30 06:09:22 +0000525 */
Tim Peterscf79aac2006-03-16 01:14:46 +0000526 numarenas = maxarenas ? maxarenas << 1 : INITIAL_ARENA_OBJECTS;
527 if (numarenas <= maxarenas)
528 return NULL; /* overflow */
Martin v. Löwis9fa5a282008-09-11 06:53:30 +0000529#if SIZEOF_SIZE_T <= SIZEOF_INT
Gregory P. Smith9d534572008-06-11 07:41:16 +0000530 if (numarenas > PY_SIZE_MAX / sizeof(*arenas))
Tim Peterscf79aac2006-03-16 01:14:46 +0000531 return NULL; /* overflow */
Martin v. Löwis9fa5a282008-09-11 06:53:30 +0000532#endif
Gregory P. Smith9d534572008-06-11 07:41:16 +0000533 nbytes = numarenas * sizeof(*arenas);
Neal Norwitz9b261222006-04-11 07:58:54 +0000534 arenaobj = (struct arena_object *)realloc(arenas, nbytes);
Tim Peterscf79aac2006-03-16 01:14:46 +0000535 if (arenaobj == NULL)
536 return NULL;
537 arenas = arenaobj;
538
539 /* We might need to fix pointers that were copied. However,
540 * new_arena only gets called when all the pages in the
541 * previous arenas are full. Thus, there are *no* pointers
542 * into the old array. Thus, we don't have to worry about
543 * invalid pointers. Just to be sure, some asserts:
544 */
545 assert(usable_arenas == NULL);
546 assert(unused_arena_objects == NULL);
547
548 /* Put the new arenas on the unused_arena_objects list. */
549 for (i = maxarenas; i < numarenas; ++i) {
550 arenas[i].address = 0; /* mark as unassociated */
551 arenas[i].nextarena = i < numarenas - 1 ?
552 &arenas[i+1] : NULL;
553 }
554
555 /* Update globals. */
556 unused_arena_objects = &arenas[maxarenas];
557 maxarenas = numarenas;
Tim Petersd97a1c02002-03-30 06:09:22 +0000558 }
559
Tim Peterscf79aac2006-03-16 01:14:46 +0000560 /* Take the next available arena object off the head of the list. */
561 assert(unused_arena_objects != NULL);
562 arenaobj = unused_arena_objects;
563 unused_arena_objects = arenaobj->nextarena;
564 assert(arenaobj->address == 0);
565 arenaobj->address = (uptr)malloc(ARENA_SIZE);
566 if (arenaobj->address == 0) {
567 /* The allocation failed: return NULL after putting the
568 * arenaobj back.
569 */
570 arenaobj->nextarena = unused_arena_objects;
571 unused_arena_objects = arenaobj;
572 return NULL;
573 }
Tim Petersd97a1c02002-03-30 06:09:22 +0000574
Tim Peterscf79aac2006-03-16 01:14:46 +0000575 ++narenas_currently_allocated;
576#ifdef PYMALLOC_DEBUG
577 ++ntimes_arena_allocated;
578 if (narenas_currently_allocated > narenas_highwater)
579 narenas_highwater = narenas_currently_allocated;
580#endif
581 arenaobj->freepools = NULL;
582 /* pool_address <- first pool-aligned address in the arena
583 nfreepools <- number of whole pools that fit after alignment */
584 arenaobj->pool_address = (block*)arenaobj->address;
585 arenaobj->nfreepools = ARENA_SIZE / POOL_SIZE;
586 assert(POOL_SIZE * arenaobj->nfreepools == ARENA_SIZE);
587 excess = (uint)(arenaobj->address & POOL_SIZE_MASK);
588 if (excess != 0) {
589 --arenaobj->nfreepools;
590 arenaobj->pool_address += POOL_SIZE - excess;
591 }
592 arenaobj->ntotalpools = arenaobj->nfreepools;
593
594 return arenaobj;
Tim Petersd97a1c02002-03-30 06:09:22 +0000595}
596
Tim Peterscf79aac2006-03-16 01:14:46 +0000597/*
598Py_ADDRESS_IN_RANGE(P, POOL)
599
600Return true if and only if P is an address that was allocated by pymalloc.
601POOL must be the pool address associated with P, i.e., POOL = POOL_ADDR(P)
602(the caller is asked to compute this because the macro expands POOL more than
603once, and for efficiency it's best for the caller to assign POOL_ADDR(P) to a
604variable and pass the latter to the macro; because Py_ADDRESS_IN_RANGE is
605called on every alloc/realloc/free, micro-efficiency is important here).
606
607Tricky: Let B be the arena base address associated with the pool, B =
608arenas[(POOL)->arenaindex].address. Then P belongs to the arena if and only if
609
610 B <= P < B + ARENA_SIZE
611
612Subtracting B throughout, this is true iff
613
614 0 <= P-B < ARENA_SIZE
615
616By using unsigned arithmetic, the "0 <=" half of the test can be skipped.
617
618Obscure: A PyMem "free memory" function can call the pymalloc free or realloc
619before the first arena has been allocated. `arenas` is still NULL in that
620case. We're relying on that maxarenas is also 0 in that case, so that
621(POOL)->arenaindex < maxarenas must be false, saving us from trying to index
622into a NULL arenas.
623
624Details: given P and POOL, the arena_object corresponding to P is AO =
625arenas[(POOL)->arenaindex]. Suppose obmalloc controls P. Then (barring wild
626stores, etc), POOL is the correct address of P's pool, AO.address is the
627correct base address of the pool's arena, and P must be within ARENA_SIZE of
628AO.address. In addition, AO.address is not 0 (no arena can start at address 0
629(NULL)). Therefore Py_ADDRESS_IN_RANGE correctly reports that obmalloc
630controls P.
631
632Now suppose obmalloc does not control P (e.g., P was obtained via a direct
633call to the system malloc() or realloc()). (POOL)->arenaindex may be anything
634in this case -- it may even be uninitialized trash. If the trash arenaindex
635is >= maxarenas, the macro correctly concludes at once that obmalloc doesn't
636control P.
637
638Else arenaindex is < maxarena, and AO is read up. If AO corresponds to an
639allocated arena, obmalloc controls all the memory in slice AO.address :
640AO.address+ARENA_SIZE. By case assumption, P is not controlled by obmalloc,
641so P doesn't lie in that slice, so the macro correctly reports that P is not
642controlled by obmalloc.
643
644Finally, if P is not controlled by obmalloc and AO corresponds to an unused
645arena_object (one not currently associated with an allocated arena),
646AO.address is 0, and the second test in the macro reduces to:
647
648 P < ARENA_SIZE
649
650If P >= ARENA_SIZE (extremely likely), the macro again correctly concludes
651that P is not controlled by obmalloc. However, if P < ARENA_SIZE, this part
652of the test still passes, and the third clause (AO.address != 0) is necessary
653to get the correct result: AO.address is 0 in this case, so the macro
654correctly reports that P is not controlled by obmalloc (despite that P lies in
655slice AO.address : AO.address + ARENA_SIZE).
656
657Note: The third (AO.address != 0) clause was added in Python 2.5. Before
6582.5, arenas were never free()'ed, and an arenaindex < maxarena always
659corresponded to a currently-allocated arena, so the "P is not controlled by
660obmalloc, AO corresponds to an unused arena_object, and P < ARENA_SIZE" case
661was impossible.
662
663Note that the logic is excruciating, and reading up possibly uninitialized
664memory when P is not controlled by obmalloc (to get at (POOL)->arenaindex)
665creates problems for some memory debuggers. The overwhelming advantage is
666that this test determines whether an arbitrary address is controlled by
667obmalloc in a small constant time, independent of the number of arenas
668obmalloc controls. Since this test is needed at every entry point, it's
669extremely desirable that it be this fast.
670*/
671#define Py_ADDRESS_IN_RANGE(P, POOL) \
672 ((POOL)->arenaindex < maxarenas && \
673 (uptr)(P) - arenas[(POOL)->arenaindex].address < (uptr)ARENA_SIZE && \
674 arenas[(POOL)->arenaindex].address != 0)
675
Neal Norwitz7eb3c912004-06-06 19:20:22 +0000676
677/* This is only useful when running memory debuggers such as
678 * Purify or Valgrind. Uncomment to use.
679 *
Martin v. Löwis68192102007-07-21 06:55:02 +0000680#define Py_USING_MEMORY_DEBUGGER
Martin v. Löwise86b07c2008-09-25 04:12:50 +0000681 */
Neal Norwitz7eb3c912004-06-06 19:20:22 +0000682
683#ifdef Py_USING_MEMORY_DEBUGGER
684
685/* Py_ADDRESS_IN_RANGE may access uninitialized memory by design
686 * This leads to thousands of spurious warnings when using
687 * Purify or Valgrind. By making a function, we can easily
688 * suppress the uninitialized memory reads in this one function.
689 * So we won't ignore real errors elsewhere.
690 *
691 * Disable the macro and use a function.
692 */
693
694#undef Py_ADDRESS_IN_RANGE
695
Neal Norwitzab772272006-10-28 21:21:00 +0000696#if defined(__GNUC__) && ((__GNUC__ == 3) && (__GNUC_MINOR__ >= 1) || \
697 (__GNUC__ >= 4))
Neal Norwitze5e5aa42005-11-13 18:55:39 +0000698#define Py_NO_INLINE __attribute__((__noinline__))
699#else
700#define Py_NO_INLINE
701#endif
702
703/* Don't make static, to try to ensure this isn't inlined. */
704int Py_ADDRESS_IN_RANGE(void *P, poolp pool) Py_NO_INLINE;
705#undef Py_NO_INLINE
Neal Norwitz7eb3c912004-06-06 19:20:22 +0000706#endif
Tim Peters338e0102002-04-01 19:23:44 +0000707
Neil Schemenauera35c6882001-02-27 04:45:05 +0000708/*==========================================================================*/
709
Tim Peters84c1b972002-04-04 04:44:32 +0000710/* malloc. Note that nbytes==0 tries to return a non-NULL pointer, distinct
711 * from all other currently live pointers. This may not be possible.
712 */
Neil Schemenauera35c6882001-02-27 04:45:05 +0000713
714/*
715 * The basic blocks are ordered by decreasing execution frequency,
716 * which minimizes the number of jumps in the most common cases,
717 * improves branching prediction and instruction scheduling (small
718 * block allocations typically result in a couple of instructions).
719 * Unless the optimizer reorders everything, being too smart...
720 */
721
Neil Schemenauerd2560cd2002-04-12 03:10:20 +0000722#undef PyObject_Malloc
Neil Schemenauera35c6882001-02-27 04:45:05 +0000723void *
Neil Schemenauerd2560cd2002-04-12 03:10:20 +0000724PyObject_Malloc(size_t nbytes)
Neil Schemenauera35c6882001-02-27 04:45:05 +0000725{
726 block *bp;
727 poolp pool;
728 poolp next;
729 uint size;
730
Neil Schemenauera35c6882001-02-27 04:45:05 +0000731 /*
Gregory P. Smith0470bab2008-07-22 04:46:32 +0000732 * Limit ourselves to PY_SSIZE_T_MAX bytes to prevent security holes.
733 * Most python internals blindly use a signed Py_ssize_t to track
734 * things without checking for overflows or negatives.
735 * As size_t is unsigned, checking for nbytes < 0 is not required.
736 */
737 if (nbytes > PY_SSIZE_T_MAX)
738 return NULL;
739
740 /*
Tim Peters84c1b972002-04-04 04:44:32 +0000741 * This implicitly redirects malloc(0).
Neil Schemenauera35c6882001-02-27 04:45:05 +0000742 */
743 if ((nbytes - 1) < SMALL_REQUEST_THRESHOLD) {
744 LOCK();
745 /*
746 * Most frequent paths first
747 */
Tim Peterscf79aac2006-03-16 01:14:46 +0000748 size = (uint)(nbytes - 1) >> ALIGNMENT_SHIFT;
Neil Schemenauera35c6882001-02-27 04:45:05 +0000749 pool = usedpools[size + size];
750 if (pool != pool->nextpool) {
751 /*
752 * There is a used pool for this size class.
753 * Pick up the head block of its free list.
754 */
755 ++pool->ref.count;
756 bp = pool->freeblock;
Tim Peters52aefc82002-04-11 06:36:45 +0000757 assert(bp != NULL);
Neil Schemenauera35c6882001-02-27 04:45:05 +0000758 if ((pool->freeblock = *(block **)bp) != NULL) {
759 UNLOCK();
760 return (void *)bp;
761 }
762 /*
Tim Peterscf79aac2006-03-16 01:14:46 +0000763 * Reached the end of the free list, try to extend it.
Neil Schemenauera35c6882001-02-27 04:45:05 +0000764 */
Tim Peterse70ddf32002-04-05 04:32:29 +0000765 if (pool->nextoffset <= pool->maxnextoffset) {
Tim Peterscf79aac2006-03-16 01:14:46 +0000766 /* There is room for another block. */
767 pool->freeblock = (block*)pool +
Tim Peterse70ddf32002-04-05 04:32:29 +0000768 pool->nextoffset;
769 pool->nextoffset += INDEX2SIZE(size);
Neil Schemenauera35c6882001-02-27 04:45:05 +0000770 *(block **)(pool->freeblock) = NULL;
771 UNLOCK();
772 return (void *)bp;
773 }
Tim Peterscf79aac2006-03-16 01:14:46 +0000774 /* Pool is full, unlink from used pools. */
Neil Schemenauera35c6882001-02-27 04:45:05 +0000775 next = pool->nextpool;
776 pool = pool->prevpool;
777 next->prevpool = pool;
778 pool->nextpool = next;
779 UNLOCK();
780 return (void *)bp;
781 }
Tim Peterscf79aac2006-03-16 01:14:46 +0000782
783 /* There isn't a pool of the right size class immediately
784 * available: use a free pool.
Neil Schemenauera35c6882001-02-27 04:45:05 +0000785 */
Tim Peterscf79aac2006-03-16 01:14:46 +0000786 if (usable_arenas == NULL) {
787 /* No arena has a free pool: allocate a new arena. */
788#ifdef WITH_MEMORY_LIMITS
789 if (narenas_currently_allocated >= MAX_ARENAS) {
790 UNLOCK();
791 goto redirect;
792 }
793#endif
794 usable_arenas = new_arena();
795 if (usable_arenas == NULL) {
796 UNLOCK();
797 goto redirect;
798 }
799 usable_arenas->nextarena =
800 usable_arenas->prevarena = NULL;
801 }
802 assert(usable_arenas->address != 0);
803
804 /* Try to get a cached free pool. */
805 pool = usable_arenas->freepools;
Neil Schemenauera35c6882001-02-27 04:45:05 +0000806 if (pool != NULL) {
Tim Peterscf79aac2006-03-16 01:14:46 +0000807 /* Unlink from cached pools. */
808 usable_arenas->freepools = pool->nextpool;
809
810 /* This arena already had the smallest nfreepools
811 * value, so decreasing nfreepools doesn't change
812 * that, and we don't need to rearrange the
813 * usable_arenas list. However, if the arena has
814 * become wholly allocated, we need to remove its
815 * arena_object from usable_arenas.
Neil Schemenauera35c6882001-02-27 04:45:05 +0000816 */
Tim Peterscf79aac2006-03-16 01:14:46 +0000817 --usable_arenas->nfreepools;
818 if (usable_arenas->nfreepools == 0) {
819 /* Wholly allocated: remove. */
820 assert(usable_arenas->freepools == NULL);
821 assert(usable_arenas->nextarena == NULL ||
822 usable_arenas->nextarena->prevarena ==
823 usable_arenas);
824
825 usable_arenas = usable_arenas->nextarena;
826 if (usable_arenas != NULL) {
827 usable_arenas->prevarena = NULL;
828 assert(usable_arenas->address != 0);
829 }
830 }
831 else {
832 /* nfreepools > 0: it must be that freepools
833 * isn't NULL, or that we haven't yet carved
834 * off all the arena's pools for the first
835 * time.
836 */
837 assert(usable_arenas->freepools != NULL ||
838 usable_arenas->pool_address <=
839 (block*)usable_arenas->address +
840 ARENA_SIZE - POOL_SIZE);
841 }
Neil Schemenauera35c6882001-02-27 04:45:05 +0000842 init_pool:
Tim Peterscf79aac2006-03-16 01:14:46 +0000843 /* Frontlink to used pools. */
Neil Schemenauera35c6882001-02-27 04:45:05 +0000844 next = usedpools[size + size]; /* == prev */
845 pool->nextpool = next;
846 pool->prevpool = next;
847 next->nextpool = pool;
848 next->prevpool = pool;
849 pool->ref.count = 1;
850 if (pool->szidx == size) {
Tim Peterscf79aac2006-03-16 01:14:46 +0000851 /* Luckily, this pool last contained blocks
Neil Schemenauera35c6882001-02-27 04:45:05 +0000852 * of the same size class, so its header
853 * and free list are already initialized.
854 */
855 bp = pool->freeblock;
856 pool->freeblock = *(block **)bp;
857 UNLOCK();
858 return (void *)bp;
859 }
860 /*
Tim Peterse70ddf32002-04-05 04:32:29 +0000861 * Initialize the pool header, set up the free list to
862 * contain just the second block, and return the first
863 * block.
Neil Schemenauera35c6882001-02-27 04:45:05 +0000864 */
865 pool->szidx = size;
Tim Peterse70ddf32002-04-05 04:32:29 +0000866 size = INDEX2SIZE(size);
Neil Schemenauera35c6882001-02-27 04:45:05 +0000867 bp = (block *)pool + POOL_OVERHEAD;
Tim Peterse70ddf32002-04-05 04:32:29 +0000868 pool->nextoffset = POOL_OVERHEAD + (size << 1);
869 pool->maxnextoffset = POOL_SIZE - size;
Neil Schemenauera35c6882001-02-27 04:45:05 +0000870 pool->freeblock = bp + size;
871 *(block **)(pool->freeblock) = NULL;
Neil Schemenauera35c6882001-02-27 04:45:05 +0000872 UNLOCK();
873 return (void *)bp;
874 }
Tim Peterscf79aac2006-03-16 01:14:46 +0000875
876 /* Carve off a new pool. */
877 assert(usable_arenas->nfreepools > 0);
878 assert(usable_arenas->freepools == NULL);
879 pool = (poolp)usable_arenas->pool_address;
880 assert((block*)pool <= (block*)usable_arenas->address +
881 ARENA_SIZE - POOL_SIZE);
882 pool->arenaindex = usable_arenas - arenas;
883 assert(&arenas[pool->arenaindex] == usable_arenas);
884 pool->szidx = DUMMY_SIZE_IDX;
885 usable_arenas->pool_address += POOL_SIZE;
886 --usable_arenas->nfreepools;
887
888 if (usable_arenas->nfreepools == 0) {
889 assert(usable_arenas->nextarena == NULL ||
890 usable_arenas->nextarena->prevarena ==
891 usable_arenas);
892 /* Unlink the arena: it is completely allocated. */
893 usable_arenas = usable_arenas->nextarena;
894 if (usable_arenas != NULL) {
895 usable_arenas->prevarena = NULL;
896 assert(usable_arenas->address != 0);
897 }
Neil Schemenauera35c6882001-02-27 04:45:05 +0000898 }
Tim Peterscf79aac2006-03-16 01:14:46 +0000899
900 goto init_pool;
Neil Schemenauera35c6882001-02-27 04:45:05 +0000901 }
902
903 /* The small block allocator ends here. */
904
Tim Petersd97a1c02002-03-30 06:09:22 +0000905redirect:
Tim Peterscf79aac2006-03-16 01:14:46 +0000906 /* Redirect the original request to the underlying (libc) allocator.
Neil Schemenauera35c6882001-02-27 04:45:05 +0000907 * We jump here on bigger requests, on error in the code above (as a
908 * last chance to serve the request) or when the max memory limit
909 * has been reached.
910 */
Tim Peters64d80c92002-04-18 21:58:56 +0000911 if (nbytes == 0)
912 nbytes = 1;
Tim Peters64d80c92002-04-18 21:58:56 +0000913 return (void *)malloc(nbytes);
Neil Schemenauera35c6882001-02-27 04:45:05 +0000914}
915
916/* free */
917
Neil Schemenauerd2560cd2002-04-12 03:10:20 +0000918#undef PyObject_Free
Neil Schemenauera35c6882001-02-27 04:45:05 +0000919void
Neil Schemenauerd2560cd2002-04-12 03:10:20 +0000920PyObject_Free(void *p)
Neil Schemenauera35c6882001-02-27 04:45:05 +0000921{
922 poolp pool;
Tim Peters2c95c992002-03-31 02:18:01 +0000923 block *lastfree;
Neil Schemenauera35c6882001-02-27 04:45:05 +0000924 poolp next, prev;
925 uint size;
Neil Schemenauera35c6882001-02-27 04:45:05 +0000926
Neil Schemenauera35c6882001-02-27 04:45:05 +0000927 if (p == NULL) /* free(NULL) has no effect */
928 return;
929
Tim Petersd97a1c02002-03-30 06:09:22 +0000930 pool = POOL_ADDR(p);
Neal Norwitz7eb3c912004-06-06 19:20:22 +0000931 if (Py_ADDRESS_IN_RANGE(p, pool)) {
Tim Petersd97a1c02002-03-30 06:09:22 +0000932 /* We allocated this address. */
Tim Petersd97a1c02002-03-30 06:09:22 +0000933 LOCK();
Tim Peterscf79aac2006-03-16 01:14:46 +0000934 /* Link p to the start of the pool's freeblock list. Since
Tim Peters2c95c992002-03-31 02:18:01 +0000935 * the pool had at least the p block outstanding, the pool
936 * wasn't empty (so it's already in a usedpools[] list, or
937 * was full and is in no list -- it's not in the freeblocks
938 * list in any case).
Tim Petersd97a1c02002-03-30 06:09:22 +0000939 */
Tim Peters57b17ad2002-03-31 02:59:48 +0000940 assert(pool->ref.count > 0); /* else it was empty */
Tim Peters2c95c992002-03-31 02:18:01 +0000941 *(block **)p = lastfree = pool->freeblock;
Tim Petersd97a1c02002-03-30 06:09:22 +0000942 pool->freeblock = (block *)p;
Tim Peters2c95c992002-03-31 02:18:01 +0000943 if (lastfree) {
Tim Peterscf79aac2006-03-16 01:14:46 +0000944 struct arena_object* ao;
945 uint nf; /* ao->nfreepools */
946
947 /* freeblock wasn't NULL, so the pool wasn't full,
Tim Peters2c95c992002-03-31 02:18:01 +0000948 * and the pool is in a usedpools[] list.
949 */
Tim Peters2c95c992002-03-31 02:18:01 +0000950 if (--pool->ref.count != 0) {
951 /* pool isn't empty: leave it in usedpools */
952 UNLOCK();
953 return;
954 }
Tim Peterscf79aac2006-03-16 01:14:46 +0000955 /* Pool is now empty: unlink from usedpools, and
Tim Petersb1da0502002-03-31 02:51:40 +0000956 * link to the front of freepools. This ensures that
Tim Peters2c95c992002-03-31 02:18:01 +0000957 * previously freed pools will be allocated later
958 * (being not referenced, they are perhaps paged out).
959 */
960 next = pool->nextpool;
961 prev = pool->prevpool;
962 next->prevpool = prev;
963 prev->nextpool = next;
Tim Peterscf79aac2006-03-16 01:14:46 +0000964
965 /* Link the pool to freepools. This is a singly-linked
966 * list, and pool->prevpool isn't used there.
Tim Peters2c95c992002-03-31 02:18:01 +0000967 */
Tim Peterscf79aac2006-03-16 01:14:46 +0000968 ao = &arenas[pool->arenaindex];
969 pool->nextpool = ao->freepools;
970 ao->freepools = pool;
971 nf = ++ao->nfreepools;
972
973 /* All the rest is arena management. We just freed
974 * a pool, and there are 4 cases for arena mgmt:
975 * 1. If all the pools are free, return the arena to
976 * the system free().
977 * 2. If this is the only free pool in the arena,
978 * add the arena back to the `usable_arenas` list.
979 * 3. If the "next" arena has a smaller count of free
980 * pools, we have to "slide this arena right" to
981 * restore that usable_arenas is sorted in order of
982 * nfreepools.
983 * 4. Else there's nothing more to do.
984 */
985 if (nf == ao->ntotalpools) {
986 /* Case 1. First unlink ao from usable_arenas.
987 */
988 assert(ao->prevarena == NULL ||
989 ao->prevarena->address != 0);
990 assert(ao ->nextarena == NULL ||
991 ao->nextarena->address != 0);
992
993 /* Fix the pointer in the prevarena, or the
994 * usable_arenas pointer.
995 */
996 if (ao->prevarena == NULL) {
997 usable_arenas = ao->nextarena;
998 assert(usable_arenas == NULL ||
999 usable_arenas->address != 0);
1000 }
1001 else {
1002 assert(ao->prevarena->nextarena == ao);
1003 ao->prevarena->nextarena =
1004 ao->nextarena;
1005 }
1006 /* Fix the pointer in the nextarena. */
1007 if (ao->nextarena != NULL) {
1008 assert(ao->nextarena->prevarena == ao);
1009 ao->nextarena->prevarena =
1010 ao->prevarena;
1011 }
1012 /* Record that this arena_object slot is
1013 * available to be reused.
1014 */
1015 ao->nextarena = unused_arena_objects;
1016 unused_arena_objects = ao;
1017
1018 /* Free the entire arena. */
1019 free((void *)ao->address);
1020 ao->address = 0; /* mark unassociated */
1021 --narenas_currently_allocated;
1022
1023 UNLOCK();
1024 return;
1025 }
1026 if (nf == 1) {
1027 /* Case 2. Put ao at the head of
1028 * usable_arenas. Note that because
1029 * ao->nfreepools was 0 before, ao isn't
1030 * currently on the usable_arenas list.
1031 */
1032 ao->nextarena = usable_arenas;
1033 ao->prevarena = NULL;
1034 if (usable_arenas)
1035 usable_arenas->prevarena = ao;
1036 usable_arenas = ao;
1037 assert(usable_arenas->address != 0);
1038
1039 UNLOCK();
1040 return;
1041 }
1042 /* If this arena is now out of order, we need to keep
1043 * the list sorted. The list is kept sorted so that
1044 * the "most full" arenas are used first, which allows
1045 * the nearly empty arenas to be completely freed. In
1046 * a few un-scientific tests, it seems like this
1047 * approach allowed a lot more memory to be freed.
1048 */
1049 if (ao->nextarena == NULL ||
1050 nf <= ao->nextarena->nfreepools) {
1051 /* Case 4. Nothing to do. */
1052 UNLOCK();
1053 return;
1054 }
1055 /* Case 3: We have to move the arena towards the end
1056 * of the list, because it has more free pools than
1057 * the arena to its right.
1058 * First unlink ao from usable_arenas.
1059 */
1060 if (ao->prevarena != NULL) {
1061 /* ao isn't at the head of the list */
1062 assert(ao->prevarena->nextarena == ao);
1063 ao->prevarena->nextarena = ao->nextarena;
1064 }
1065 else {
1066 /* ao is at the head of the list */
1067 assert(usable_arenas == ao);
1068 usable_arenas = ao->nextarena;
1069 }
1070 ao->nextarena->prevarena = ao->prevarena;
1071
1072 /* Locate the new insertion point by iterating over
1073 * the list, using our nextarena pointer.
1074 */
1075 while (ao->nextarena != NULL &&
1076 nf > ao->nextarena->nfreepools) {
1077 ao->prevarena = ao->nextarena;
1078 ao->nextarena = ao->nextarena->nextarena;
1079 }
1080
1081 /* Insert ao at this point. */
1082 assert(ao->nextarena == NULL ||
1083 ao->prevarena == ao->nextarena->prevarena);
1084 assert(ao->prevarena->nextarena == ao->nextarena);
1085
1086 ao->prevarena->nextarena = ao;
1087 if (ao->nextarena != NULL)
1088 ao->nextarena->prevarena = ao;
1089
1090 /* Verify that the swaps worked. */
1091 assert(ao->nextarena == NULL ||
1092 nf <= ao->nextarena->nfreepools);
1093 assert(ao->prevarena == NULL ||
1094 nf > ao->prevarena->nfreepools);
1095 assert(ao->nextarena == NULL ||
1096 ao->nextarena->prevarena == ao);
1097 assert((usable_arenas == ao &&
1098 ao->prevarena == NULL) ||
1099 ao->prevarena->nextarena == ao);
1100
Tim Petersd97a1c02002-03-30 06:09:22 +00001101 UNLOCK();
1102 return;
1103 }
Tim Peterscf79aac2006-03-16 01:14:46 +00001104 /* Pool was full, so doesn't currently live in any list:
Tim Peters2c95c992002-03-31 02:18:01 +00001105 * link it to the front of the appropriate usedpools[] list.
1106 * This mimics LRU pool usage for new allocations and
1107 * targets optimal filling when several pools contain
1108 * blocks of the same size class.
Tim Petersd97a1c02002-03-30 06:09:22 +00001109 */
Tim Peters2c95c992002-03-31 02:18:01 +00001110 --pool->ref.count;
1111 assert(pool->ref.count > 0); /* else the pool is empty */
1112 size = pool->szidx;
1113 next = usedpools[size + size];
1114 prev = next->prevpool;
1115 /* insert pool before next: prev <-> pool <-> next */
1116 pool->nextpool = next;
1117 pool->prevpool = prev;
1118 next->prevpool = pool;
1119 prev->nextpool = pool;
Tim Petersd97a1c02002-03-30 06:09:22 +00001120 UNLOCK();
Neil Schemenauera35c6882001-02-27 04:45:05 +00001121 return;
1122 }
1123
Tim Peters2c95c992002-03-31 02:18:01 +00001124 /* We didn't allocate this address. */
Tim Peters84c1b972002-04-04 04:44:32 +00001125 free(p);
Neil Schemenauera35c6882001-02-27 04:45:05 +00001126}
1127
Tim Peters84c1b972002-04-04 04:44:32 +00001128/* realloc. If p is NULL, this acts like malloc(nbytes). Else if nbytes==0,
1129 * then as the Python docs promise, we do not treat this like free(p), and
1130 * return a non-NULL result.
1131 */
Neil Schemenauera35c6882001-02-27 04:45:05 +00001132
Neil Schemenauerd2560cd2002-04-12 03:10:20 +00001133#undef PyObject_Realloc
Neil Schemenauera35c6882001-02-27 04:45:05 +00001134void *
Neil Schemenauerd2560cd2002-04-12 03:10:20 +00001135PyObject_Realloc(void *p, size_t nbytes)
Neil Schemenauera35c6882001-02-27 04:45:05 +00001136{
Tim Peters84c1b972002-04-04 04:44:32 +00001137 void *bp;
Neil Schemenauera35c6882001-02-27 04:45:05 +00001138 poolp pool;
Martin v. Löwis18e16552006-02-15 17:27:45 +00001139 size_t size;
Neil Schemenauera35c6882001-02-27 04:45:05 +00001140
Neil Schemenauera35c6882001-02-27 04:45:05 +00001141 if (p == NULL)
Neil Schemenauerd2560cd2002-04-12 03:10:20 +00001142 return PyObject_Malloc(nbytes);
Neil Schemenauera35c6882001-02-27 04:45:05 +00001143
Gregory P. Smith0470bab2008-07-22 04:46:32 +00001144 /*
1145 * Limit ourselves to PY_SSIZE_T_MAX bytes to prevent security holes.
1146 * Most python internals blindly use a signed Py_ssize_t to track
1147 * things without checking for overflows or negatives.
1148 * As size_t is unsigned, checking for nbytes < 0 is not required.
1149 */
1150 if (nbytes > PY_SSIZE_T_MAX)
1151 return NULL;
1152
Tim Petersd97a1c02002-03-30 06:09:22 +00001153 pool = POOL_ADDR(p);
Neal Norwitz7eb3c912004-06-06 19:20:22 +00001154 if (Py_ADDRESS_IN_RANGE(p, pool)) {
Neil Schemenauera35c6882001-02-27 04:45:05 +00001155 /* We're in charge of this block */
Tim Peterse70ddf32002-04-05 04:32:29 +00001156 size = INDEX2SIZE(pool->szidx);
Tim Peters4ce71f72002-05-02 20:19:34 +00001157 if (nbytes <= size) {
1158 /* The block is staying the same or shrinking. If
1159 * it's shrinking, there's a tradeoff: it costs
1160 * cycles to copy the block to a smaller size class,
1161 * but it wastes memory not to copy it. The
1162 * compromise here is to copy on shrink only if at
1163 * least 25% of size can be shaved off.
1164 */
1165 if (4 * nbytes > 3 * size) {
1166 /* It's the same,
1167 * or shrinking and new/old > 3/4.
1168 */
1169 return p;
1170 }
1171 size = nbytes;
1172 }
Neil Schemenauerd2560cd2002-04-12 03:10:20 +00001173 bp = PyObject_Malloc(nbytes);
Tim Peters84c1b972002-04-04 04:44:32 +00001174 if (bp != NULL) {
1175 memcpy(bp, p, size);
Neil Schemenauerd2560cd2002-04-12 03:10:20 +00001176 PyObject_Free(p);
Neil Schemenauera35c6882001-02-27 04:45:05 +00001177 }
Tim Peters84c1b972002-04-04 04:44:32 +00001178 return bp;
1179 }
Tim Petersecc6e6a2005-07-10 22:30:55 +00001180 /* We're not managing this block. If nbytes <=
1181 * SMALL_REQUEST_THRESHOLD, it's tempting to try to take over this
1182 * block. However, if we do, we need to copy the valid data from
1183 * the C-managed block to one of our blocks, and there's no portable
1184 * way to know how much of the memory space starting at p is valid.
1185 * As bug 1185883 pointed out the hard way, it's possible that the
1186 * C-managed block is "at the end" of allocated VM space, so that
1187 * a memory fault can occur if we try to copy nbytes bytes starting
1188 * at p. Instead we punt: let C continue to manage this block.
1189 */
1190 if (nbytes)
1191 return realloc(p, nbytes);
1192 /* C doesn't define the result of realloc(p, 0) (it may or may not
1193 * return NULL then), but Python's docs promise that nbytes==0 never
1194 * returns NULL. We don't pass 0 to realloc(), to avoid that endcase
1195 * to begin with. Even then, we can't be sure that realloc() won't
1196 * return NULL.
1197 */
1198 bp = realloc(p, 1);
1199 return bp ? bp : p;
Neil Schemenauera35c6882001-02-27 04:45:05 +00001200}
1201
Tim Peters1221c0a2002-03-23 00:20:15 +00001202#else /* ! WITH_PYMALLOC */
Tim Petersddea2082002-03-23 10:03:50 +00001203
1204/*==========================================================================*/
Neil Schemenauerd2560cd2002-04-12 03:10:20 +00001205/* pymalloc not enabled: Redirect the entry points to malloc. These will
1206 * only be used by extensions that are compiled with pymalloc enabled. */
Tim Peters62c06ba2002-03-23 22:28:18 +00001207
Tim Petersce7fb9b2002-03-23 00:28:57 +00001208void *
Neil Schemenauerd2560cd2002-04-12 03:10:20 +00001209PyObject_Malloc(size_t n)
Tim Peters1221c0a2002-03-23 00:20:15 +00001210{
1211 return PyMem_MALLOC(n);
1212}
1213
Tim Petersce7fb9b2002-03-23 00:28:57 +00001214void *
Neil Schemenauerd2560cd2002-04-12 03:10:20 +00001215PyObject_Realloc(void *p, size_t n)
Tim Peters1221c0a2002-03-23 00:20:15 +00001216{
1217 return PyMem_REALLOC(p, n);
1218}
1219
1220void
Neil Schemenauerd2560cd2002-04-12 03:10:20 +00001221PyObject_Free(void *p)
Tim Peters1221c0a2002-03-23 00:20:15 +00001222{
1223 PyMem_FREE(p);
1224}
1225#endif /* WITH_PYMALLOC */
1226
Tim Petersddea2082002-03-23 10:03:50 +00001227#ifdef PYMALLOC_DEBUG
1228/*==========================================================================*/
Tim Peters62c06ba2002-03-23 22:28:18 +00001229/* A x-platform debugging allocator. This doesn't manage memory directly,
1230 * it wraps a real allocator, adding extra debugging info to the memory blocks.
1231 */
Tim Petersddea2082002-03-23 10:03:50 +00001232
Tim Petersf6fb5012002-04-12 07:38:53 +00001233/* Special bytes broadcast into debug memory blocks at appropriate times.
1234 * Strings of these are unlikely to be valid addresses, floats, ints or
1235 * 7-bit ASCII.
1236 */
1237#undef CLEANBYTE
1238#undef DEADBYTE
1239#undef FORBIDDENBYTE
1240#define CLEANBYTE 0xCB /* clean (newly allocated) memory */
Tim Peters889f61d2002-07-10 19:29:49 +00001241#define DEADBYTE 0xDB /* dead (newly freed) memory */
Tim Petersf6fb5012002-04-12 07:38:53 +00001242#define FORBIDDENBYTE 0xFB /* untouchable bytes at each end of a block */
Tim Petersddea2082002-03-23 10:03:50 +00001243
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001244/* We tag each block with an API ID in order to tag API violations */
1245#define _PYMALLOC_MEM_ID 'm' /* the PyMem_Malloc() API */
1246#define _PYMALLOC_OBJ_ID 'o' /* The PyObject_Malloc() API */
1247
Tim Peters9ea89d22006-06-04 03:26:02 +00001248static size_t serialno = 0; /* incremented on each debug {m,re}alloc */
Tim Petersddea2082002-03-23 10:03:50 +00001249
Tim Peterse0850172002-03-24 00:34:21 +00001250/* serialno is always incremented via calling this routine. The point is
Tim Peters9ea89d22006-06-04 03:26:02 +00001251 * to supply a single place to set a breakpoint.
1252 */
Tim Peterse0850172002-03-24 00:34:21 +00001253static void
Neil Schemenauerbd02b142002-03-28 21:05:38 +00001254bumpserialno(void)
Tim Peterse0850172002-03-24 00:34:21 +00001255{
1256 ++serialno;
1257}
1258
Tim Peters9ea89d22006-06-04 03:26:02 +00001259#define SST SIZEOF_SIZE_T
Tim Peterse0850172002-03-24 00:34:21 +00001260
Tim Peters9ea89d22006-06-04 03:26:02 +00001261/* Read sizeof(size_t) bytes at p as a big-endian size_t. */
1262static size_t
1263read_size_t(const void *p)
Tim Petersddea2082002-03-23 10:03:50 +00001264{
Tim Peters62c06ba2002-03-23 22:28:18 +00001265 const uchar *q = (const uchar *)p;
Tim Peters9ea89d22006-06-04 03:26:02 +00001266 size_t result = *q++;
1267 int i;
1268
1269 for (i = SST; --i > 0; ++q)
1270 result = (result << 8) | *q;
1271 return result;
Tim Petersddea2082002-03-23 10:03:50 +00001272}
1273
Tim Peters9ea89d22006-06-04 03:26:02 +00001274/* Write n as a big-endian size_t, MSB at address p, LSB at
1275 * p + sizeof(size_t) - 1.
1276 */
Tim Petersddea2082002-03-23 10:03:50 +00001277static void
Tim Peters9ea89d22006-06-04 03:26:02 +00001278write_size_t(void *p, size_t n)
Tim Petersddea2082002-03-23 10:03:50 +00001279{
Tim Peters9ea89d22006-06-04 03:26:02 +00001280 uchar *q = (uchar *)p + SST - 1;
1281 int i;
1282
1283 for (i = SST; --i >= 0; --q) {
1284 *q = (uchar)(n & 0xff);
1285 n >>= 8;
1286 }
Tim Petersddea2082002-03-23 10:03:50 +00001287}
1288
Tim Peters08d82152002-04-18 22:25:03 +00001289#ifdef Py_DEBUG
1290/* Is target in the list? The list is traversed via the nextpool pointers.
1291 * The list may be NULL-terminated, or circular. Return 1 if target is in
1292 * list, else 0.
1293 */
1294static int
1295pool_is_in_list(const poolp target, poolp list)
1296{
1297 poolp origlist = list;
1298 assert(target != NULL);
1299 if (list == NULL)
1300 return 0;
1301 do {
1302 if (target == list)
1303 return 1;
1304 list = list->nextpool;
1305 } while (list != NULL && list != origlist);
1306 return 0;
1307}
1308
1309#else
1310#define pool_is_in_list(X, Y) 1
1311
1312#endif /* Py_DEBUG */
1313
Tim Peters9ea89d22006-06-04 03:26:02 +00001314/* Let S = sizeof(size_t). The debug malloc asks for 4*S extra bytes and
1315 fills them with useful stuff, here calling the underlying malloc's result p:
Tim Petersddea2082002-03-23 10:03:50 +00001316
Tim Peters9ea89d22006-06-04 03:26:02 +00001317p[0: S]
1318 Number of bytes originally asked for. This is a size_t, big-endian (easier
1319 to read in a memory dump).
1320p[S: 2*S]
Tim Petersf6fb5012002-04-12 07:38:53 +00001321 Copies of FORBIDDENBYTE. Used to catch under- writes and reads.
Tim Peters9ea89d22006-06-04 03:26:02 +00001322p[2*S: 2*S+n]
Tim Petersf6fb5012002-04-12 07:38:53 +00001323 The requested memory, filled with copies of CLEANBYTE.
Tim Petersddea2082002-03-23 10:03:50 +00001324 Used to catch reference to uninitialized memory.
Tim Peters9ea89d22006-06-04 03:26:02 +00001325 &p[2*S] is returned. Note that this is 8-byte aligned if pymalloc
Tim Petersddea2082002-03-23 10:03:50 +00001326 handled the request itself.
Tim Peters9ea89d22006-06-04 03:26:02 +00001327p[2*S+n: 2*S+n+S]
Tim Petersf6fb5012002-04-12 07:38:53 +00001328 Copies of FORBIDDENBYTE. Used to catch over- writes and reads.
Tim Peters9ea89d22006-06-04 03:26:02 +00001329p[2*S+n+S: 2*S+n+2*S]
Neil Schemenauerd2560cd2002-04-12 03:10:20 +00001330 A serial number, incremented by 1 on each call to _PyObject_DebugMalloc
1331 and _PyObject_DebugRealloc.
Tim Peters9ea89d22006-06-04 03:26:02 +00001332 This is a big-endian size_t.
Tim Petersddea2082002-03-23 10:03:50 +00001333 If "bad memory" is detected later, the serial number gives an
1334 excellent way to set a breakpoint on the next run, to capture the
1335 instant at which this block was passed out.
1336*/
1337
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001338/* debug replacements for the PyMem_* memory API */
1339void *
1340_PyMem_DebugMalloc(size_t nbytes)
1341{
1342 return _PyObject_DebugMallocApi(_PYMALLOC_MEM_ID, nbytes);
1343}
1344void *
1345_PyMem_DebugRealloc(void *p, size_t nbytes)
1346{
1347 return _PyObject_DebugReallocApi(_PYMALLOC_MEM_ID, p, nbytes);
1348}
1349void
1350_PyMem_DebugFree(void *p)
1351{
1352 _PyObject_DebugFreeApi(_PYMALLOC_MEM_ID, p);
1353}
1354
1355/* debug replacements for the PyObject_* memory API */
Tim Petersddea2082002-03-23 10:03:50 +00001356void *
Neil Schemenauerd2560cd2002-04-12 03:10:20 +00001357_PyObject_DebugMalloc(size_t nbytes)
Tim Petersddea2082002-03-23 10:03:50 +00001358{
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001359 return _PyObject_DebugMallocApi(_PYMALLOC_OBJ_ID, nbytes);
1360}
1361void *
1362_PyObject_DebugRealloc(void *p, size_t nbytes)
1363{
1364 return _PyObject_DebugReallocApi(_PYMALLOC_OBJ_ID, p, nbytes);
1365}
1366void
1367_PyObject_DebugFree(void *p)
1368{
1369 _PyObject_DebugFreeApi(_PYMALLOC_OBJ_ID, p);
1370}
1371void
1372_PyObject_DebugCheckAddress(void *p)
1373{
1374 _PyObject_DebugCheckAddressApi(_PYMALLOC_OBJ_ID, p);
1375}
1376
1377
1378/* generic debug memory api, with an "id" to identify the API in use */
1379void *
1380_PyObject_DebugMallocApi(char id, size_t nbytes)
1381{
Tim Petersddea2082002-03-23 10:03:50 +00001382 uchar *p; /* base address of malloc'ed block */
Tim Peters9ea89d22006-06-04 03:26:02 +00001383 uchar *tail; /* p + 2*SST + nbytes == pointer to tail pad bytes */
1384 size_t total; /* nbytes + 4*SST */
Tim Petersddea2082002-03-23 10:03:50 +00001385
Tim Peterse0850172002-03-24 00:34:21 +00001386 bumpserialno();
Tim Peters9ea89d22006-06-04 03:26:02 +00001387 total = nbytes + 4*SST;
1388 if (total < nbytes)
1389 /* overflow: can't represent total as a size_t */
Tim Petersddea2082002-03-23 10:03:50 +00001390 return NULL;
Tim Petersddea2082002-03-23 10:03:50 +00001391
Tim Peters8a8cdfd2002-04-12 20:49:36 +00001392 p = (uchar *)PyObject_Malloc(total);
Tim Petersddea2082002-03-23 10:03:50 +00001393 if (p == NULL)
1394 return NULL;
1395
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001396 /* at p, write size (SST bytes), id (1 byte), pad (SST-1 bytes) */
Tim Peters9ea89d22006-06-04 03:26:02 +00001397 write_size_t(p, nbytes);
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001398 p[SST] = (uchar)id;
1399 memset(p + SST + 1 , FORBIDDENBYTE, SST-1);
Tim Petersddea2082002-03-23 10:03:50 +00001400
1401 if (nbytes > 0)
Tim Peters9ea89d22006-06-04 03:26:02 +00001402 memset(p + 2*SST, CLEANBYTE, nbytes);
Tim Petersddea2082002-03-23 10:03:50 +00001403
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001404 /* at tail, write pad (SST bytes) and serialno (SST bytes) */
Tim Peters9ea89d22006-06-04 03:26:02 +00001405 tail = p + 2*SST + nbytes;
1406 memset(tail, FORBIDDENBYTE, SST);
1407 write_size_t(tail + SST, serialno);
Tim Petersddea2082002-03-23 10:03:50 +00001408
Tim Peters3eeb1732006-06-04 03:38:04 +00001409 return p + 2*SST;
Tim Petersddea2082002-03-23 10:03:50 +00001410}
1411
Tim Peters9ea89d22006-06-04 03:26:02 +00001412/* The debug free first checks the 2*SST bytes on each end for sanity (in
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001413 particular, that the FORBIDDENBYTEs with the api ID are still intact).
Tim Petersf6fb5012002-04-12 07:38:53 +00001414 Then fills the original bytes with DEADBYTE.
Tim Petersddea2082002-03-23 10:03:50 +00001415 Then calls the underlying free.
1416*/
1417void
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001418_PyObject_DebugFreeApi(char api, void *p)
Tim Petersddea2082002-03-23 10:03:50 +00001419{
Tim Peters9ea89d22006-06-04 03:26:02 +00001420 uchar *q = (uchar *)p - 2*SST; /* address returned from malloc */
Tim Petersddea2082002-03-23 10:03:50 +00001421 size_t nbytes;
1422
Tim Petersddea2082002-03-23 10:03:50 +00001423 if (p == NULL)
1424 return;
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001425 _PyObject_DebugCheckAddressApi(api, p);
Tim Peters9ea89d22006-06-04 03:26:02 +00001426 nbytes = read_size_t(q);
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001427 nbytes += 4*SST;
Tim Petersddea2082002-03-23 10:03:50 +00001428 if (nbytes > 0)
Tim Petersf6fb5012002-04-12 07:38:53 +00001429 memset(q, DEADBYTE, nbytes);
Tim Peters9ea89d22006-06-04 03:26:02 +00001430 PyObject_Free(q);
Tim Petersddea2082002-03-23 10:03:50 +00001431}
1432
1433void *
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001434_PyObject_DebugReallocApi(char api, void *p, size_t nbytes)
Tim Petersddea2082002-03-23 10:03:50 +00001435{
1436 uchar *q = (uchar *)p;
Tim Peters85cc1c42002-04-12 08:52:50 +00001437 uchar *tail;
Tim Peters9ea89d22006-06-04 03:26:02 +00001438 size_t total; /* nbytes + 4*SST */
Tim Petersddea2082002-03-23 10:03:50 +00001439 size_t original_nbytes;
Tim Peters9ea89d22006-06-04 03:26:02 +00001440 int i;
Tim Petersddea2082002-03-23 10:03:50 +00001441
Tim Petersddea2082002-03-23 10:03:50 +00001442 if (p == NULL)
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001443 return _PyObject_DebugMallocApi(api, nbytes);
Tim Petersddea2082002-03-23 10:03:50 +00001444
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001445 _PyObject_DebugCheckAddressApi(api, p);
Tim Peters85cc1c42002-04-12 08:52:50 +00001446 bumpserialno();
Tim Peters9ea89d22006-06-04 03:26:02 +00001447 original_nbytes = read_size_t(q - 2*SST);
1448 total = nbytes + 4*SST;
1449 if (total < nbytes)
1450 /* overflow: can't represent total as a size_t */
Tim Peters85cc1c42002-04-12 08:52:50 +00001451 return NULL;
Tim Petersddea2082002-03-23 10:03:50 +00001452
1453 if (nbytes < original_nbytes) {
Tim Peters85cc1c42002-04-12 08:52:50 +00001454 /* shrinking: mark old extra memory dead */
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001455 memset(q + nbytes, DEADBYTE, original_nbytes - nbytes + 2*SST);
Tim Petersddea2082002-03-23 10:03:50 +00001456 }
1457
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001458 /* Resize and add decorations. We may get a new pointer here, in which
1459 * case we didn't get the chance to mark the old memory with DEADBYTE,
1460 * but we live with that.
1461 */
Tim Peters9ea89d22006-06-04 03:26:02 +00001462 q = (uchar *)PyObject_Realloc(q - 2*SST, total);
Tim Peters85cc1c42002-04-12 08:52:50 +00001463 if (q == NULL)
1464 return NULL;
1465
Tim Peters9ea89d22006-06-04 03:26:02 +00001466 write_size_t(q, nbytes);
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001467 assert(q[SST] == (uchar)api);
1468 for (i = 1; i < SST; ++i)
Tim Peters9ea89d22006-06-04 03:26:02 +00001469 assert(q[SST + i] == FORBIDDENBYTE);
1470 q += 2*SST;
Tim Peters85cc1c42002-04-12 08:52:50 +00001471 tail = q + nbytes;
Tim Peters9ea89d22006-06-04 03:26:02 +00001472 memset(tail, FORBIDDENBYTE, SST);
1473 write_size_t(tail + SST, serialno);
Tim Peters85cc1c42002-04-12 08:52:50 +00001474
1475 if (nbytes > original_nbytes) {
1476 /* growing: mark new extra memory clean */
1477 memset(q + original_nbytes, CLEANBYTE,
1478 nbytes - original_nbytes);
Tim Peters52aefc82002-04-11 06:36:45 +00001479 }
Tim Peters85cc1c42002-04-12 08:52:50 +00001480
1481 return q;
Tim Petersddea2082002-03-23 10:03:50 +00001482}
1483
Tim Peters7ccfadf2002-04-01 06:04:21 +00001484/* Check the forbidden bytes on both ends of the memory allocated for p.
Neil Schemenauerd2560cd2002-04-12 03:10:20 +00001485 * If anything is wrong, print info to stderr via _PyObject_DebugDumpAddress,
Tim Peters7ccfadf2002-04-01 06:04:21 +00001486 * and call Py_FatalError to kill the program.
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001487 * The API id, is also checked.
Tim Peters7ccfadf2002-04-01 06:04:21 +00001488 */
1489 void
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001490_PyObject_DebugCheckAddressApi(char api, const void *p)
Tim Petersddea2082002-03-23 10:03:50 +00001491{
1492 const uchar *q = (const uchar *)p;
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001493 char msgbuf[64];
Tim Petersd1139e02002-03-28 07:32:11 +00001494 char *msg;
Tim Peters9ea89d22006-06-04 03:26:02 +00001495 size_t nbytes;
Tim Peters449b5a82002-04-28 06:14:45 +00001496 const uchar *tail;
Tim Petersd1139e02002-03-28 07:32:11 +00001497 int i;
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001498 char id;
Tim Petersddea2082002-03-23 10:03:50 +00001499
Tim Petersd1139e02002-03-28 07:32:11 +00001500 if (p == NULL) {
Tim Petersddea2082002-03-23 10:03:50 +00001501 msg = "didn't expect a NULL pointer";
Tim Petersd1139e02002-03-28 07:32:11 +00001502 goto error;
1503 }
Tim Petersddea2082002-03-23 10:03:50 +00001504
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001505 /* Check the API id */
1506 id = (char)q[-SST];
1507 if (id != api) {
1508 msg = msgbuf;
1509 snprintf(msg, sizeof(msgbuf), "bad ID: Allocated using API '%c', verified using API '%c'", id, api);
1510 msgbuf[sizeof(msgbuf)-1] = 0;
1511 goto error;
1512 }
1513
Tim Peters449b5a82002-04-28 06:14:45 +00001514 /* Check the stuff at the start of p first: if there's underwrite
1515 * corruption, the number-of-bytes field may be nuts, and checking
1516 * the tail could lead to a segfault then.
1517 */
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001518 for (i = SST-1; i >= 1; --i) {
Tim Petersf6fb5012002-04-12 07:38:53 +00001519 if (*(q-i) != FORBIDDENBYTE) {
Tim Petersd1139e02002-03-28 07:32:11 +00001520 msg = "bad leading pad byte";
1521 goto error;
1522 }
1523 }
Tim Petersddea2082002-03-23 10:03:50 +00001524
Tim Peters9ea89d22006-06-04 03:26:02 +00001525 nbytes = read_size_t(q - 2*SST);
Tim Peters449b5a82002-04-28 06:14:45 +00001526 tail = q + nbytes;
Tim Peters9ea89d22006-06-04 03:26:02 +00001527 for (i = 0; i < SST; ++i) {
Tim Peters449b5a82002-04-28 06:14:45 +00001528 if (tail[i] != FORBIDDENBYTE) {
1529 msg = "bad trailing pad byte";
1530 goto error;
Tim Petersddea2082002-03-23 10:03:50 +00001531 }
1532 }
1533
Tim Petersd1139e02002-03-28 07:32:11 +00001534 return;
1535
1536error:
Neil Schemenauerd2560cd2002-04-12 03:10:20 +00001537 _PyObject_DebugDumpAddress(p);
Tim Petersd1139e02002-03-28 07:32:11 +00001538 Py_FatalError(msg);
Tim Petersddea2082002-03-23 10:03:50 +00001539}
1540
Tim Peters7ccfadf2002-04-01 06:04:21 +00001541/* Display info to stderr about the memory block at p. */
Tim Petersddea2082002-03-23 10:03:50 +00001542void
Neil Schemenauerd2560cd2002-04-12 03:10:20 +00001543_PyObject_DebugDumpAddress(const void *p)
Tim Petersddea2082002-03-23 10:03:50 +00001544{
1545 const uchar *q = (const uchar *)p;
1546 const uchar *tail;
Tim Peters9ea89d22006-06-04 03:26:02 +00001547 size_t nbytes, serial;
Tim Petersd1139e02002-03-28 07:32:11 +00001548 int i;
Tim Peters9ea89d22006-06-04 03:26:02 +00001549 int ok;
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001550 char id;
Tim Petersddea2082002-03-23 10:03:50 +00001551
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001552 fprintf(stderr, "Debug memory block at address p=%p:", p);
1553 if (p == NULL) {
1554 fprintf(stderr, "\n");
Tim Petersddea2082002-03-23 10:03:50 +00001555 return;
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001556 }
1557 id = (char)q[-SST];
1558 fprintf(stderr, " API '%c'\n", id);
Tim Petersddea2082002-03-23 10:03:50 +00001559
Tim Peters9ea89d22006-06-04 03:26:02 +00001560 nbytes = read_size_t(q - 2*SST);
1561 fprintf(stderr, " %" PY_FORMAT_SIZE_T "u bytes originally "
1562 "requested\n", nbytes);
Tim Petersddea2082002-03-23 10:03:50 +00001563
Tim Peters449b5a82002-04-28 06:14:45 +00001564 /* In case this is nuts, check the leading pad bytes first. */
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001565 fprintf(stderr, " The %d pad bytes at p-%d are ", SST-1, SST-1);
Tim Peters9ea89d22006-06-04 03:26:02 +00001566 ok = 1;
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001567 for (i = 1; i <= SST-1; ++i) {
Tim Peters9ea89d22006-06-04 03:26:02 +00001568 if (*(q-i) != FORBIDDENBYTE) {
1569 ok = 0;
1570 break;
1571 }
Tim Petersddea2082002-03-23 10:03:50 +00001572 }
Tim Peters9ea89d22006-06-04 03:26:02 +00001573 if (ok)
1574 fputs("FORBIDDENBYTE, as expected.\n", stderr);
Tim Petersddea2082002-03-23 10:03:50 +00001575 else {
Tim Petersf6fb5012002-04-12 07:38:53 +00001576 fprintf(stderr, "not all FORBIDDENBYTE (0x%02x):\n",
1577 FORBIDDENBYTE);
Kristján Valur Jónsson02ca57c2009-09-28 13:12:38 +00001578 for (i = SST-1; i >= 1; --i) {
Tim Petersddea2082002-03-23 10:03:50 +00001579 const uchar byte = *(q-i);
1580 fprintf(stderr, " at p-%d: 0x%02x", i, byte);
Tim Petersf6fb5012002-04-12 07:38:53 +00001581 if (byte != FORBIDDENBYTE)
Tim Petersddea2082002-03-23 10:03:50 +00001582 fputs(" *** OUCH", stderr);
1583 fputc('\n', stderr);
1584 }
Tim Peters449b5a82002-04-28 06:14:45 +00001585
1586 fputs(" Because memory is corrupted at the start, the "
1587 "count of bytes requested\n"
1588 " may be bogus, and checking the trailing pad "
1589 "bytes may segfault.\n", stderr);
Tim Petersddea2082002-03-23 10:03:50 +00001590 }
1591
1592 tail = q + nbytes;
Tim Peters9ea89d22006-06-04 03:26:02 +00001593 fprintf(stderr, " The %d pad bytes at tail=%p are ", SST, tail);
1594 ok = 1;
1595 for (i = 0; i < SST; ++i) {
1596 if (tail[i] != FORBIDDENBYTE) {
1597 ok = 0;
1598 break;
1599 }
Tim Petersddea2082002-03-23 10:03:50 +00001600 }
Tim Peters9ea89d22006-06-04 03:26:02 +00001601 if (ok)
1602 fputs("FORBIDDENBYTE, as expected.\n", stderr);
Tim Petersddea2082002-03-23 10:03:50 +00001603 else {
Tim Petersf6fb5012002-04-12 07:38:53 +00001604 fprintf(stderr, "not all FORBIDDENBYTE (0x%02x):\n",
1605 FORBIDDENBYTE);
Tim Peters9ea89d22006-06-04 03:26:02 +00001606 for (i = 0; i < SST; ++i) {
Tim Petersddea2082002-03-23 10:03:50 +00001607 const uchar byte = tail[i];
1608 fprintf(stderr, " at tail+%d: 0x%02x",
1609 i, byte);
Tim Petersf6fb5012002-04-12 07:38:53 +00001610 if (byte != FORBIDDENBYTE)
Tim Petersddea2082002-03-23 10:03:50 +00001611 fputs(" *** OUCH", stderr);
1612 fputc('\n', stderr);
1613 }
1614 }
1615
Tim Peters9ea89d22006-06-04 03:26:02 +00001616 serial = read_size_t(tail + SST);
1617 fprintf(stderr, " The block was made by call #%" PY_FORMAT_SIZE_T
1618 "u to debug malloc/realloc.\n", serial);
Tim Petersddea2082002-03-23 10:03:50 +00001619
1620 if (nbytes > 0) {
Tim Peters9ea89d22006-06-04 03:26:02 +00001621 i = 0;
Tim Peters449b5a82002-04-28 06:14:45 +00001622 fputs(" Data at p:", stderr);
Tim Petersddea2082002-03-23 10:03:50 +00001623 /* print up to 8 bytes at the start */
1624 while (q < tail && i < 8) {
1625 fprintf(stderr, " %02x", *q);
1626 ++i;
1627 ++q;
1628 }
1629 /* and up to 8 at the end */
1630 if (q < tail) {
1631 if (tail - q > 8) {
Tim Peters62c06ba2002-03-23 22:28:18 +00001632 fputs(" ...", stderr);
Tim Petersddea2082002-03-23 10:03:50 +00001633 q = tail - 8;
1634 }
1635 while (q < tail) {
1636 fprintf(stderr, " %02x", *q);
1637 ++q;
1638 }
1639 }
Tim Peters62c06ba2002-03-23 22:28:18 +00001640 fputc('\n', stderr);
Tim Petersddea2082002-03-23 10:03:50 +00001641 }
1642}
1643
Tim Peters9ea89d22006-06-04 03:26:02 +00001644static size_t
1645printone(const char* msg, size_t value)
Tim Peters16bcb6b2002-04-05 05:45:31 +00001646{
Tim Peters49f26812002-04-06 01:45:35 +00001647 int i, k;
1648 char buf[100];
Tim Peters9ea89d22006-06-04 03:26:02 +00001649 size_t origvalue = value;
Tim Peters16bcb6b2002-04-05 05:45:31 +00001650
1651 fputs(msg, stderr);
Tim Peters49f26812002-04-06 01:45:35 +00001652 for (i = (int)strlen(msg); i < 35; ++i)
Tim Peters16bcb6b2002-04-05 05:45:31 +00001653 fputc(' ', stderr);
Tim Peters49f26812002-04-06 01:45:35 +00001654 fputc('=', stderr);
1655
1656 /* Write the value with commas. */
1657 i = 22;
1658 buf[i--] = '\0';
1659 buf[i--] = '\n';
1660 k = 3;
1661 do {
Tim Peters9ea89d22006-06-04 03:26:02 +00001662 size_t nextvalue = value / 10;
1663 uint digit = (uint)(value - nextvalue * 10);
Tim Peters49f26812002-04-06 01:45:35 +00001664 value = nextvalue;
1665 buf[i--] = (char)(digit + '0');
1666 --k;
1667 if (k == 0 && value && i >= 0) {
1668 k = 3;
1669 buf[i--] = ',';
1670 }
1671 } while (value && i >= 0);
1672
1673 while (i >= 0)
1674 buf[i--] = ' ';
1675 fputs(buf, stderr);
1676
1677 return origvalue;
Tim Peters16bcb6b2002-04-05 05:45:31 +00001678}
1679
Tim Peters08d82152002-04-18 22:25:03 +00001680/* Print summary info to stderr about the state of pymalloc's structures.
1681 * In Py_DEBUG mode, also perform some expensive internal consistency
1682 * checks.
1683 */
Tim Peters7ccfadf2002-04-01 06:04:21 +00001684void
Tim Peters0e871182002-04-13 08:29:14 +00001685_PyObject_DebugMallocStats(void)
Tim Peters7ccfadf2002-04-01 06:04:21 +00001686{
1687 uint i;
1688 const uint numclasses = SMALL_REQUEST_THRESHOLD >> ALIGNMENT_SHIFT;
Tim Peters16bcb6b2002-04-05 05:45:31 +00001689 /* # of pools, allocated blocks, and free blocks per class index */
Tim Peters9ea89d22006-06-04 03:26:02 +00001690 size_t numpools[SMALL_REQUEST_THRESHOLD >> ALIGNMENT_SHIFT];
1691 size_t numblocks[SMALL_REQUEST_THRESHOLD >> ALIGNMENT_SHIFT];
1692 size_t numfreeblocks[SMALL_REQUEST_THRESHOLD >> ALIGNMENT_SHIFT];
Tim Peters16bcb6b2002-04-05 05:45:31 +00001693 /* total # of allocated bytes in used and full pools */
Tim Peters9ea89d22006-06-04 03:26:02 +00001694 size_t allocated_bytes = 0;
Tim Peters16bcb6b2002-04-05 05:45:31 +00001695 /* total # of available bytes in used pools */
Tim Peters9ea89d22006-06-04 03:26:02 +00001696 size_t available_bytes = 0;
Tim Peters16bcb6b2002-04-05 05:45:31 +00001697 /* # of free pools + pools not yet carved out of current arena */
1698 uint numfreepools = 0;
1699 /* # of bytes for arena alignment padding */
Tim Peters9ea89d22006-06-04 03:26:02 +00001700 size_t arena_alignment = 0;
Tim Peters16bcb6b2002-04-05 05:45:31 +00001701 /* # of bytes in used and full pools used for pool_headers */
Tim Peters9ea89d22006-06-04 03:26:02 +00001702 size_t pool_header_bytes = 0;
Tim Peters16bcb6b2002-04-05 05:45:31 +00001703 /* # of bytes in used and full pools wasted due to quantization,
1704 * i.e. the necessarily leftover space at the ends of used and
1705 * full pools.
1706 */
Tim Peters9ea89d22006-06-04 03:26:02 +00001707 size_t quantization = 0;
Tim Peterscf79aac2006-03-16 01:14:46 +00001708 /* # of arenas actually allocated. */
Tim Peters9ea89d22006-06-04 03:26:02 +00001709 size_t narenas = 0;
Tim Peters16bcb6b2002-04-05 05:45:31 +00001710 /* running total -- should equal narenas * ARENA_SIZE */
Tim Peters9ea89d22006-06-04 03:26:02 +00001711 size_t total;
Tim Peters16bcb6b2002-04-05 05:45:31 +00001712 char buf[128];
Tim Peters7ccfadf2002-04-01 06:04:21 +00001713
Tim Peters7ccfadf2002-04-01 06:04:21 +00001714 fprintf(stderr, "Small block threshold = %d, in %u size classes.\n",
1715 SMALL_REQUEST_THRESHOLD, numclasses);
Tim Peters7ccfadf2002-04-01 06:04:21 +00001716
1717 for (i = 0; i < numclasses; ++i)
1718 numpools[i] = numblocks[i] = numfreeblocks[i] = 0;
1719
Tim Peters6169f092002-04-01 20:12:59 +00001720 /* Because full pools aren't linked to from anything, it's easiest
1721 * to march over all the arenas. If we're lucky, most of the memory
1722 * will be living in full pools -- would be a shame to miss them.
Tim Peters7ccfadf2002-04-01 06:04:21 +00001723 */
Tim Peterscf79aac2006-03-16 01:14:46 +00001724 for (i = 0; i < maxarenas; ++i) {
Tim Peters7ccfadf2002-04-01 06:04:21 +00001725 uint poolsinarena;
1726 uint j;
Tim Peterscf79aac2006-03-16 01:14:46 +00001727 uptr base = arenas[i].address;
1728
1729 /* Skip arenas which are not allocated. */
1730 if (arenas[i].address == (uptr)NULL)
1731 continue;
1732 narenas += 1;
1733
1734 poolsinarena = arenas[i].ntotalpools;
1735 numfreepools += arenas[i].nfreepools;
Tim Peters7ccfadf2002-04-01 06:04:21 +00001736
1737 /* round up to pool alignment */
Tim Peters7ccfadf2002-04-01 06:04:21 +00001738 if (base & (uptr)POOL_SIZE_MASK) {
Tim Peters16bcb6b2002-04-05 05:45:31 +00001739 arena_alignment += POOL_SIZE;
Tim Peters7ccfadf2002-04-01 06:04:21 +00001740 base &= ~(uptr)POOL_SIZE_MASK;
1741 base += POOL_SIZE;
1742 }
1743
Tim Peters7ccfadf2002-04-01 06:04:21 +00001744 /* visit every pool in the arena */
Tim Peterscf79aac2006-03-16 01:14:46 +00001745 assert(base <= (uptr) arenas[i].pool_address);
1746 for (j = 0;
1747 base < (uptr) arenas[i].pool_address;
1748 ++j, base += POOL_SIZE) {
Tim Peters7ccfadf2002-04-01 06:04:21 +00001749 poolp p = (poolp)base;
Tim Peters08d82152002-04-18 22:25:03 +00001750 const uint sz = p->szidx;
1751 uint freeblocks;
1752
Tim Peters7ccfadf2002-04-01 06:04:21 +00001753 if (p->ref.count == 0) {
1754 /* currently unused */
Tim Peterscf79aac2006-03-16 01:14:46 +00001755 assert(pool_is_in_list(p, arenas[i].freepools));
Tim Peters7ccfadf2002-04-01 06:04:21 +00001756 continue;
1757 }
Tim Peters08d82152002-04-18 22:25:03 +00001758 ++numpools[sz];
1759 numblocks[sz] += p->ref.count;
1760 freeblocks = NUMBLOCKS(sz) - p->ref.count;
1761 numfreeblocks[sz] += freeblocks;
1762#ifdef Py_DEBUG
1763 if (freeblocks > 0)
1764 assert(pool_is_in_list(p, usedpools[sz + sz]));
1765#endif
Tim Peters7ccfadf2002-04-01 06:04:21 +00001766 }
1767 }
Tim Peterscf79aac2006-03-16 01:14:46 +00001768 assert(narenas == narenas_currently_allocated);
Tim Peters7ccfadf2002-04-01 06:04:21 +00001769
1770 fputc('\n', stderr);
Tim Peters49f26812002-04-06 01:45:35 +00001771 fputs("class size num pools blocks in use avail blocks\n"
1772 "----- ---- --------- ------------- ------------\n",
Tim Peters7ccfadf2002-04-01 06:04:21 +00001773 stderr);
1774
Tim Peters7ccfadf2002-04-01 06:04:21 +00001775 for (i = 0; i < numclasses; ++i) {
Tim Peters9ea89d22006-06-04 03:26:02 +00001776 size_t p = numpools[i];
1777 size_t b = numblocks[i];
1778 size_t f = numfreeblocks[i];
Tim Peterse70ddf32002-04-05 04:32:29 +00001779 uint size = INDEX2SIZE(i);
Tim Peters7ccfadf2002-04-01 06:04:21 +00001780 if (p == 0) {
1781 assert(b == 0 && f == 0);
1782 continue;
1783 }
Tim Peters9ea89d22006-06-04 03:26:02 +00001784 fprintf(stderr, "%5u %6u "
1785 "%11" PY_FORMAT_SIZE_T "u "
1786 "%15" PY_FORMAT_SIZE_T "u "
1787 "%13" PY_FORMAT_SIZE_T "u\n",
Tim Peters7ccfadf2002-04-01 06:04:21 +00001788 i, size, p, b, f);
Tim Peters16bcb6b2002-04-05 05:45:31 +00001789 allocated_bytes += b * size;
1790 available_bytes += f * size;
1791 pool_header_bytes += p * POOL_OVERHEAD;
1792 quantization += p * ((POOL_SIZE - POOL_OVERHEAD) % size);
Tim Peters7ccfadf2002-04-01 06:04:21 +00001793 }
1794 fputc('\n', stderr);
Tim Peters0e871182002-04-13 08:29:14 +00001795 (void)printone("# times object malloc called", serialno);
Tim Peters16bcb6b2002-04-05 05:45:31 +00001796
Tim Peterscf79aac2006-03-16 01:14:46 +00001797 (void)printone("# arenas allocated total", ntimes_arena_allocated);
1798 (void)printone("# arenas reclaimed", ntimes_arena_allocated - narenas);
1799 (void)printone("# arenas highwater mark", narenas_highwater);
1800 (void)printone("# arenas allocated current", narenas);
1801
Tim Peters16bcb6b2002-04-05 05:45:31 +00001802 PyOS_snprintf(buf, sizeof(buf),
Tim Peters9ea89d22006-06-04 03:26:02 +00001803 "%" PY_FORMAT_SIZE_T "u arenas * %d bytes/arena",
1804 narenas, ARENA_SIZE);
Tim Peterscf79aac2006-03-16 01:14:46 +00001805 (void)printone(buf, narenas * ARENA_SIZE);
Tim Peters16bcb6b2002-04-05 05:45:31 +00001806
1807 fputc('\n', stderr);
1808
Tim Peters49f26812002-04-06 01:45:35 +00001809 total = printone("# bytes in allocated blocks", allocated_bytes);
Tim Peters0e871182002-04-13 08:29:14 +00001810 total += printone("# bytes in available blocks", available_bytes);
Tim Peters49f26812002-04-06 01:45:35 +00001811
Tim Peters16bcb6b2002-04-05 05:45:31 +00001812 PyOS_snprintf(buf, sizeof(buf),
1813 "%u unused pools * %d bytes", numfreepools, POOL_SIZE);
Tim Peters9ea89d22006-06-04 03:26:02 +00001814 total += printone(buf, (size_t)numfreepools * POOL_SIZE);
Tim Peters16bcb6b2002-04-05 05:45:31 +00001815
Tim Peters16bcb6b2002-04-05 05:45:31 +00001816 total += printone("# bytes lost to pool headers", pool_header_bytes);
1817 total += printone("# bytes lost to quantization", quantization);
1818 total += printone("# bytes lost to arena alignment", arena_alignment);
1819 (void)printone("Total", total);
Tim Peters7ccfadf2002-04-01 06:04:21 +00001820}
1821
Tim Petersddea2082002-03-23 10:03:50 +00001822#endif /* PYMALLOC_DEBUG */
Neal Norwitz7eb3c912004-06-06 19:20:22 +00001823
1824#ifdef Py_USING_MEMORY_DEBUGGER
Tim Peterscf79aac2006-03-16 01:14:46 +00001825/* Make this function last so gcc won't inline it since the definition is
1826 * after the reference.
1827 */
Neal Norwitz7eb3c912004-06-06 19:20:22 +00001828int
1829Py_ADDRESS_IN_RANGE(void *P, poolp pool)
1830{
Tim Peterscf79aac2006-03-16 01:14:46 +00001831 return pool->arenaindex < maxarenas &&
1832 (uptr)P - arenas[pool->arenaindex].address < (uptr)ARENA_SIZE &&
1833 arenas[pool->arenaindex].address != 0;
Neal Norwitz7eb3c912004-06-06 19:20:22 +00001834}
1835#endif