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danielk1977bc2ca9e2008-11-13 14:28:28 +00001/*
2** 2008 November 05
3**
4** The author disclaims copyright to this source code. In place of
5** a legal notice, here is a blessing:
6**
7** May you do good and not evil.
8** May you find forgiveness for yourself and forgive others.
9** May you share freely, never taking more than you give.
10**
11*************************************************************************
12**
13** This file implements the default page cache implementation (the
14** sqlite3_pcache interface). It also contains part of the implementation
15** of the SQLITE_CONFIG_PAGECACHE and sqlite3_release_memory() features.
peter.d.reid60ec9142014-09-06 16:39:46 +000016** If the default page cache implementation is overridden, then neither of
danielk1977bc2ca9e2008-11-13 14:28:28 +000017** these two features are available.
drh01c5c002015-07-04 18:15:04 +000018**
19** A Page cache line looks like this:
20**
21** -------------------------------------------------------------
22** | database page content | PgHdr1 | MemPage | PgHdr |
23** -------------------------------------------------------------
24**
25** The database page content is up front (so that buffer overreads tend to
26** flow harmlessly into the PgHdr1, MemPage, and PgHdr extensions). MemPage
27** is the extension added by the btree.c module containing information such
28** as the database page number and how that database page is used. PgHdr
29** is added by the pcache.c layer and contains information used to keep track
30** of which pages are "dirty". PgHdr1 is an extension added by this
31** module (pcache1.c). The PgHdr1 header is a subclass of sqlite3_pcache_page.
32** PgHdr1 contains information needed to look up a page by its page number.
33** The superclass sqlite3_pcache_page.pBuf points to the start of the
34** database page content and sqlite3_pcache_page.pExtra points to PgHdr.
35**
36** The size of the extension (MemPage+PgHdr+PgHdr1) can be determined at
37** runtime using sqlite3_config(SQLITE_CONFIG_PCACHE_HDRSZ, &size). The
38** sizes of the extensions sum to 272 bytes on x64 for 3.8.10, but this
39** size can vary according to architecture, compile-time options, and
40** SQLite library version number.
41**
42** If SQLITE_PCACHE_SEPARATE_HEADER is defined, then the extension is obtained
43** using a separate memory allocation from the database page content. This
drh7b341e62015-07-08 14:13:44 +000044** seeks to overcome the "clownshoe" problem (also called "internal
45** fragmentation" in academic literature) of allocating a few bytes more
drh01c5c002015-07-04 18:15:04 +000046** than a power of two with the memory allocator rounding up to the next
47** power of two, and leaving the rounded-up space unused.
48**
49** This module tracks pointers to PgHdr1 objects. Only pcache.c communicates
50** with this module. Information is passed back and forth as PgHdr1 pointers.
51**
52** The pcache.c and pager.c modules deal pointers to PgHdr objects.
53** The btree.c module deals with pointers to MemPage objects.
drhee70a842015-07-06 18:54:52 +000054**
55** SOURCE OF PAGE CACHE MEMORY:
56**
57** Memory for a page might come from any of three sources:
58**
59** (1) The general-purpose memory allocator - sqlite3Malloc()
60** (2) Global page-cache memory provided using sqlite3_config() with
61** SQLITE_CONFIG_PAGECACHE.
62** (3) PCache-local bulk allocation.
63**
64** The third case is a chunk of heap memory (defaulting to 100 pages worth)
65** that is allocated when the page cache is created. The size of the local
66** bulk allocation can be adjusted using
67**
drha6082f62015-11-26 22:12:41 +000068** sqlite3_config(SQLITE_CONFIG_PAGECACHE, (void*)0, 0, N).
drhee70a842015-07-06 18:54:52 +000069**
70** If N is positive, then N pages worth of memory are allocated using a single
71** sqlite3Malloc() call and that memory is used for the first N pages allocated.
72** Or if N is negative, then -1024*N bytes of memory are allocated and used
73** for as many pages as can be accomodated.
74**
75** Only one of (2) or (3) can be used. Once the memory available to (2) or
76** (3) is exhausted, subsequent allocations fail over to the general-purpose
77** memory allocator (1).
78**
79** Earlier versions of SQLite used only methods (1) and (2). But experiments
80** show that method (3) with N==100 provides about a 5% performance boost for
81** common workloads.
danielk1977bc2ca9e2008-11-13 14:28:28 +000082*/
danielk1977bc2ca9e2008-11-13 14:28:28 +000083#include "sqliteInt.h"
84
85typedef struct PCache1 PCache1;
86typedef struct PgHdr1 PgHdr1;
87typedef struct PgFreeslot PgFreeslot;
drh9f8cf9d2011-01-17 21:32:24 +000088typedef struct PGroup PGroup;
89
drh92af02c2015-09-04 04:31:56 +000090/*
91** Each cache entry is represented by an instance of the following
92** structure. Unless SQLITE_PCACHE_SEPARATE_HEADER is defined, a buffer of
93** PgHdr1.pCache->szPage bytes is allocated directly before this structure
94** in memory.
95*/
96struct PgHdr1 {
97 sqlite3_pcache_page page; /* Base class. Must be first. pBuf & pExtra */
98 unsigned int iKey; /* Key value (page number) */
99 u8 isPinned; /* Page in use, not on the LRU list */
100 u8 isBulkLocal; /* This page from bulk local storage */
101 u8 isAnchor; /* This is the PGroup.lru element */
102 PgHdr1 *pNext; /* Next in hash table chain */
103 PCache1 *pCache; /* Cache that currently owns this page */
104 PgHdr1 *pLruNext; /* Next in LRU list of unpinned pages */
105 PgHdr1 *pLruPrev; /* Previous in LRU list of unpinned pages */
106};
107
drh9f8cf9d2011-01-17 21:32:24 +0000108/* Each page cache (or PCache) belongs to a PGroup. A PGroup is a set
peter.d.reid60ec9142014-09-06 16:39:46 +0000109** of one or more PCaches that are able to recycle each other's unpinned
drh9f8cf9d2011-01-17 21:32:24 +0000110** pages when they are under memory pressure. A PGroup is an instance of
111** the following object.
112**
113** This page cache implementation works in one of two modes:
114**
115** (1) Every PCache is the sole member of its own PGroup. There is
116** one PGroup per PCache.
117**
118** (2) There is a single global PGroup that all PCaches are a member
119** of.
120**
121** Mode 1 uses more memory (since PCache instances are not able to rob
122** unused pages from other PCaches) but it also operates without a mutex,
123** and is therefore often faster. Mode 2 requires a mutex in order to be
drh45d29302012-01-08 22:18:33 +0000124** threadsafe, but recycles pages more efficiently.
drh9f8cf9d2011-01-17 21:32:24 +0000125**
126** For mode (1), PGroup.mutex is NULL. For mode (2) there is only a single
127** PGroup which is the pcache1.grp global variable and its mutex is
128** SQLITE_MUTEX_STATIC_LRU.
129*/
130struct PGroup {
131 sqlite3_mutex *mutex; /* MUTEX_STATIC_LRU or NULL */
drha69085c2012-01-02 18:00:55 +0000132 unsigned int nMaxPage; /* Sum of nMax for purgeable caches */
133 unsigned int nMinPage; /* Sum of nMin for purgeable caches */
134 unsigned int mxPinned; /* nMaxpage + 10 - nMinPage */
135 unsigned int nCurrentPage; /* Number of purgeable pages allocated */
drh92af02c2015-09-04 04:31:56 +0000136 PgHdr1 lru; /* The beginning and end of the LRU list */
drh9f8cf9d2011-01-17 21:32:24 +0000137};
danielk1977bc2ca9e2008-11-13 14:28:28 +0000138
drh9d13f112010-08-24 18:06:35 +0000139/* Each page cache is an instance of the following object. Every
140** open database file (including each in-memory database and each
141** temporary or transient database) has a single page cache which
142** is an instance of this object.
143**
144** Pointers to structures of this type are cast and returned as
145** opaque sqlite3_pcache* handles.
danielk1977bc2ca9e2008-11-13 14:28:28 +0000146*/
147struct PCache1 {
148 /* Cache configuration parameters. Page size (szPage) and the purgeable
149 ** flag (bPurgeable) are set when the cache is created. nMax may be
drh45d29302012-01-08 22:18:33 +0000150 ** modified at any time by a call to the pcache1Cachesize() method.
drh9f8cf9d2011-01-17 21:32:24 +0000151 ** The PGroup mutex must be held when accessing nMax.
danielk1977bc2ca9e2008-11-13 14:28:28 +0000152 */
drh9f8cf9d2011-01-17 21:32:24 +0000153 PGroup *pGroup; /* PGroup this cache belongs to */
drhee70a842015-07-06 18:54:52 +0000154 int szPage; /* Size of database content section */
155 int szExtra; /* sizeof(MemPage)+sizeof(PgHdr) */
156 int szAlloc; /* Total size of one pcache line */
danielk1977bc2ca9e2008-11-13 14:28:28 +0000157 int bPurgeable; /* True if cache is purgeable */
danielk197744cd45c2008-11-15 11:22:45 +0000158 unsigned int nMin; /* Minimum number of pages reserved */
159 unsigned int nMax; /* Configured "cache_size" value */
drh25ca5682011-01-26 00:07:03 +0000160 unsigned int n90pct; /* nMax*9/10 */
drh2cbd78b2012-02-02 19:37:18 +0000161 unsigned int iMaxKey; /* Largest key seen since xTruncate() */
danielk1977bc2ca9e2008-11-13 14:28:28 +0000162
163 /* Hash table of all pages. The following variables may only be accessed
drh9f8cf9d2011-01-17 21:32:24 +0000164 ** when the accessor is holding the PGroup mutex.
danielk1977bc2ca9e2008-11-13 14:28:28 +0000165 */
danielk197744cd45c2008-11-15 11:22:45 +0000166 unsigned int nRecyclable; /* Number of pages in the LRU list */
167 unsigned int nPage; /* Total number of pages in apHash */
168 unsigned int nHash; /* Number of slots in apHash[] */
danielk1977bc2ca9e2008-11-13 14:28:28 +0000169 PgHdr1 **apHash; /* Hash table for fast lookup by key */
drhee70a842015-07-06 18:54:52 +0000170 PgHdr1 *pFree; /* List of unused pcache-local pages */
171 void *pBulk; /* Bulk memory used by pcache-local */
danielk1977bc2ca9e2008-11-13 14:28:28 +0000172};
173
174/*
drhee70a842015-07-06 18:54:52 +0000175** Free slots in the allocator used to divide up the global page cache
176** buffer provided using the SQLITE_CONFIG_PAGECACHE mechanism.
danielk1977bc2ca9e2008-11-13 14:28:28 +0000177*/
178struct PgFreeslot {
179 PgFreeslot *pNext; /* Next free slot */
180};
181
182/*
183** Global data used by this cache.
184*/
185static SQLITE_WSD struct PCacheGlobal {
drh9f8cf9d2011-01-17 21:32:24 +0000186 PGroup grp; /* The global PGroup for mode (2) */
danielk1977bc2ca9e2008-11-13 14:28:28 +0000187
drh9f8cf9d2011-01-17 21:32:24 +0000188 /* Variables related to SQLITE_CONFIG_PAGECACHE settings. The
189 ** szSlot, nSlot, pStart, pEnd, nReserve, and isInit values are all
190 ** fixed at sqlite3_initialize() time and do not require mutex protection.
191 ** The nFreeSlot and pFree values do require mutex protection.
192 */
193 int isInit; /* True if initialized */
drhdb7ae892015-07-06 20:57:22 +0000194 int separateCache; /* Use a new PGroup for each PCache */
drh957026a2015-07-16 18:18:19 +0000195 int nInitPage; /* Initial bulk allocation size */
drh9f8cf9d2011-01-17 21:32:24 +0000196 int szSlot; /* Size of each free slot */
197 int nSlot; /* The number of pcache slots */
198 int nReserve; /* Try to keep nFreeSlot above this */
drhee70a842015-07-06 18:54:52 +0000199 void *pStart, *pEnd; /* Bounds of global page cache memory */
drh9f8cf9d2011-01-17 21:32:24 +0000200 /* Above requires no mutex. Use mutex below for variable that follow. */
201 sqlite3_mutex *mutex; /* Mutex for accessing the following: */
drh9f8cf9d2011-01-17 21:32:24 +0000202 PgFreeslot *pFree; /* Free page blocks */
drh2cbd78b2012-02-02 19:37:18 +0000203 int nFreeSlot; /* Number of unused pcache slots */
drh9f8cf9d2011-01-17 21:32:24 +0000204 /* The following value requires a mutex to change. We skip the mutex on
205 ** reading because (1) most platforms read a 32-bit integer atomically and
206 ** (2) even if an incorrect value is read, no great harm is done since this
207 ** is really just an optimization. */
208 int bUnderPressure; /* True if low on PAGECACHE memory */
danielk197744cd45c2008-11-15 11:22:45 +0000209} pcache1_g;
danielk1977bc2ca9e2008-11-13 14:28:28 +0000210
211/*
212** All code in this file should access the global structure above via the
213** alias "pcache1". This ensures that the WSD emulation is used when
214** compiling for systems that do not support real WSD.
215*/
216#define pcache1 (GLOBAL(struct PCacheGlobal, pcache1_g))
217
218/*
drh9f8cf9d2011-01-17 21:32:24 +0000219** Macros to enter and leave the PCache LRU mutex.
danielk1977bc2ca9e2008-11-13 14:28:28 +0000220*/
drh982215a2015-06-13 11:10:55 +0000221#if !defined(SQLITE_ENABLE_MEMORY_MANAGEMENT) || SQLITE_THREADSAFE==0
222# define pcache1EnterMutex(X) assert((X)->mutex==0)
223# define pcache1LeaveMutex(X) assert((X)->mutex==0)
224# define PCACHE1_MIGHT_USE_GROUP_MUTEX 0
225#else
226# define pcache1EnterMutex(X) sqlite3_mutex_enter((X)->mutex)
227# define pcache1LeaveMutex(X) sqlite3_mutex_leave((X)->mutex)
228# define PCACHE1_MIGHT_USE_GROUP_MUTEX 1
229#endif
danielk1977bc2ca9e2008-11-13 14:28:28 +0000230
231/******************************************************************************/
232/******** Page Allocation/SQLITE_CONFIG_PCACHE Related Functions **************/
233
drh92af02c2015-09-04 04:31:56 +0000234
danielk1977bc2ca9e2008-11-13 14:28:28 +0000235/*
236** This function is called during initialization if a static buffer is
237** supplied to use for the page-cache by passing the SQLITE_CONFIG_PAGECACHE
238** verb to sqlite3_config(). Parameter pBuf points to an allocation large
239** enough to contain 'n' buffers of 'sz' bytes each.
drh9f8cf9d2011-01-17 21:32:24 +0000240**
241** This routine is called from sqlite3_initialize() and so it is guaranteed
242** to be serialized already. There is no need for further mutexing.
danielk1977bc2ca9e2008-11-13 14:28:28 +0000243*/
244void sqlite3PCacheBufferSetup(void *pBuf, int sz, int n){
drhf4622dc2009-05-22 11:10:24 +0000245 if( pcache1.isInit ){
246 PgFreeslot *p;
drhee70a842015-07-06 18:54:52 +0000247 if( pBuf==0 ) sz = n = 0;
drhf4622dc2009-05-22 11:10:24 +0000248 sz = ROUNDDOWN8(sz);
249 pcache1.szSlot = sz;
drh50d1b5f2010-08-27 12:21:06 +0000250 pcache1.nSlot = pcache1.nFreeSlot = n;
251 pcache1.nReserve = n>90 ? 10 : (n/10 + 1);
drhf4622dc2009-05-22 11:10:24 +0000252 pcache1.pStart = pBuf;
253 pcache1.pFree = 0;
drh9f8cf9d2011-01-17 21:32:24 +0000254 pcache1.bUnderPressure = 0;
drhf4622dc2009-05-22 11:10:24 +0000255 while( n-- ){
256 p = (PgFreeslot*)pBuf;
257 p->pNext = pcache1.pFree;
258 pcache1.pFree = p;
259 pBuf = (void*)&((char*)pBuf)[sz];
260 }
261 pcache1.pEnd = pBuf;
danielk1977bc2ca9e2008-11-13 14:28:28 +0000262 }
danielk1977bc2ca9e2008-11-13 14:28:28 +0000263}
264
265/*
drh957026a2015-07-16 18:18:19 +0000266** Try to initialize the pCache->pFree and pCache->pBulk fields. Return
267** true if pCache->pFree ends up containing one or more free pages.
268*/
269static int pcache1InitBulk(PCache1 *pCache){
drh939d4bc2015-07-16 18:37:53 +0000270 i64 szBulk;
drh957026a2015-07-16 18:18:19 +0000271 char *zBulk;
272 if( pcache1.nInitPage==0 ) return 0;
273 /* Do not bother with a bulk allocation if the cache size very small */
274 if( pCache->nMax<3 ) return 0;
275 sqlite3BeginBenignMalloc();
276 if( pcache1.nInitPage>0 ){
drh939d4bc2015-07-16 18:37:53 +0000277 szBulk = pCache->szAlloc * (i64)pcache1.nInitPage;
drh957026a2015-07-16 18:18:19 +0000278 }else{
drh939d4bc2015-07-16 18:37:53 +0000279 szBulk = -1024 * (i64)pcache1.nInitPage;
drh957026a2015-07-16 18:18:19 +0000280 }
drh939d4bc2015-07-16 18:37:53 +0000281 if( szBulk > pCache->szAlloc*(i64)pCache->nMax ){
drh989412a2016-10-13 12:56:18 +0000282 szBulk = pCache->szAlloc*(i64)pCache->nMax;
drh957026a2015-07-16 18:18:19 +0000283 }
284 zBulk = pCache->pBulk = sqlite3Malloc( szBulk );
285 sqlite3EndBenignMalloc();
286 if( zBulk ){
287 int nBulk = sqlite3MallocSize(zBulk)/pCache->szAlloc;
288 int i;
289 for(i=0; i<nBulk; i++){
290 PgHdr1 *pX = (PgHdr1*)&zBulk[pCache->szPage];
291 pX->page.pBuf = zBulk;
292 pX->page.pExtra = &pX[1];
293 pX->isBulkLocal = 1;
drh92af02c2015-09-04 04:31:56 +0000294 pX->isAnchor = 0;
drh957026a2015-07-16 18:18:19 +0000295 pX->pNext = pCache->pFree;
296 pCache->pFree = pX;
297 zBulk += pCache->szAlloc;
298 }
299 }
300 return pCache->pFree!=0;
301}
302
303/*
danielk1977bc2ca9e2008-11-13 14:28:28 +0000304** Malloc function used within this file to allocate space from the buffer
305** configured using sqlite3_config(SQLITE_CONFIG_PAGECACHE) option. If no
306** such buffer exists or there is no space left in it, this function falls
307** back to sqlite3Malloc().
drh9f8cf9d2011-01-17 21:32:24 +0000308**
309** Multiple threads can run this routine at the same time. Global variables
310** in pcache1 need to be protected via mutex.
danielk1977bc2ca9e2008-11-13 14:28:28 +0000311*/
312static void *pcache1Alloc(int nByte){
drh9f8cf9d2011-01-17 21:32:24 +0000313 void *p = 0;
314 assert( sqlite3_mutex_notheld(pcache1.grp.mutex) );
drh9f8cf9d2011-01-17 21:32:24 +0000315 if( nByte<=pcache1.szSlot ){
316 sqlite3_mutex_enter(pcache1.mutex);
danielk1977bc2ca9e2008-11-13 14:28:28 +0000317 p = (PgHdr1 *)pcache1.pFree;
drh9f8cf9d2011-01-17 21:32:24 +0000318 if( p ){
319 pcache1.pFree = pcache1.pFree->pNext;
320 pcache1.nFreeSlot--;
321 pcache1.bUnderPressure = pcache1.nFreeSlot<pcache1.nReserve;
322 assert( pcache1.nFreeSlot>=0 );
drhb02392e2015-10-15 15:28:56 +0000323 sqlite3StatusHighwater(SQLITE_STATUS_PAGECACHE_SIZE, nByte);
drhaf89fe62015-03-23 17:25:18 +0000324 sqlite3StatusUp(SQLITE_STATUS_PAGECACHE_USED, 1);
drh9f8cf9d2011-01-17 21:32:24 +0000325 }
326 sqlite3_mutex_leave(pcache1.mutex);
327 }
328 if( p==0 ){
329 /* Memory is not available in the SQLITE_CONFIG_PAGECACHE pool. Get
330 ** it from sqlite3Malloc instead.
danielk1977bc2ca9e2008-11-13 14:28:28 +0000331 */
danielk1977bc2ca9e2008-11-13 14:28:28 +0000332 p = sqlite3Malloc(nByte);
drh4bd69522012-06-07 02:35:29 +0000333#ifndef SQLITE_DISABLE_PAGECACHE_OVERFLOW_STATS
danielk1977bc2ca9e2008-11-13 14:28:28 +0000334 if( p ){
335 int sz = sqlite3MallocSize(p);
drh9bf3da8e2011-01-26 13:24:40 +0000336 sqlite3_mutex_enter(pcache1.mutex);
drhb02392e2015-10-15 15:28:56 +0000337 sqlite3StatusHighwater(SQLITE_STATUS_PAGECACHE_SIZE, nByte);
drhaf89fe62015-03-23 17:25:18 +0000338 sqlite3StatusUp(SQLITE_STATUS_PAGECACHE_OVERFLOW, sz);
drh9bf3da8e2011-01-26 13:24:40 +0000339 sqlite3_mutex_leave(pcache1.mutex);
danielk1977bc2ca9e2008-11-13 14:28:28 +0000340 }
drh4bd69522012-06-07 02:35:29 +0000341#endif
drh107b56e2010-03-12 16:32:53 +0000342 sqlite3MemdebugSetType(p, MEMTYPE_PCACHE);
danielk1977bc2ca9e2008-11-13 14:28:28 +0000343 }
344 return p;
345}
346
347/*
348** Free an allocated buffer obtained from pcache1Alloc().
349*/
drhee70a842015-07-06 18:54:52 +0000350static void pcache1Free(void *p){
drhee70a842015-07-06 18:54:52 +0000351 if( p==0 ) return;
drh8b0ba7b2015-12-16 13:07:35 +0000352 if( SQLITE_WITHIN(p, pcache1.pStart, pcache1.pEnd) ){
danielk1977bc2ca9e2008-11-13 14:28:28 +0000353 PgFreeslot *pSlot;
drh9f8cf9d2011-01-17 21:32:24 +0000354 sqlite3_mutex_enter(pcache1.mutex);
drhaf89fe62015-03-23 17:25:18 +0000355 sqlite3StatusDown(SQLITE_STATUS_PAGECACHE_USED, 1);
danielk1977bc2ca9e2008-11-13 14:28:28 +0000356 pSlot = (PgFreeslot*)p;
357 pSlot->pNext = pcache1.pFree;
358 pcache1.pFree = pSlot;
drh50d1b5f2010-08-27 12:21:06 +0000359 pcache1.nFreeSlot++;
drh9f8cf9d2011-01-17 21:32:24 +0000360 pcache1.bUnderPressure = pcache1.nFreeSlot<pcache1.nReserve;
drh50d1b5f2010-08-27 12:21:06 +0000361 assert( pcache1.nFreeSlot<=pcache1.nSlot );
drh9f8cf9d2011-01-17 21:32:24 +0000362 sqlite3_mutex_leave(pcache1.mutex);
danielk1977bc2ca9e2008-11-13 14:28:28 +0000363 }else{
drh107b56e2010-03-12 16:32:53 +0000364 assert( sqlite3MemdebugHasType(p, MEMTYPE_PCACHE) );
365 sqlite3MemdebugSetType(p, MEMTYPE_HEAP);
drh4bd69522012-06-07 02:35:29 +0000366#ifndef SQLITE_DISABLE_PAGECACHE_OVERFLOW_STATS
drh9493caf2016-03-17 23:16:37 +0000367 {
368 int nFreed = 0;
369 nFreed = sqlite3MallocSize(p);
370 sqlite3_mutex_enter(pcache1.mutex);
371 sqlite3StatusDown(SQLITE_STATUS_PAGECACHE_OVERFLOW, nFreed);
372 sqlite3_mutex_leave(pcache1.mutex);
373 }
drh4bd69522012-06-07 02:35:29 +0000374#endif
danielk1977bc2ca9e2008-11-13 14:28:28 +0000375 sqlite3_free(p);
376 }
377}
378
drhc8f503a2010-08-20 09:14:13 +0000379#ifdef SQLITE_ENABLE_MEMORY_MANAGEMENT
380/*
drh9d13f112010-08-24 18:06:35 +0000381** Return the size of a pcache allocation
drhc8f503a2010-08-20 09:14:13 +0000382*/
383static int pcache1MemSize(void *p){
drhc8f503a2010-08-20 09:14:13 +0000384 if( p>=pcache1.pStart && p<pcache1.pEnd ){
385 return pcache1.szSlot;
386 }else{
387 int iSize;
388 assert( sqlite3MemdebugHasType(p, MEMTYPE_PCACHE) );
389 sqlite3MemdebugSetType(p, MEMTYPE_HEAP);
390 iSize = sqlite3MallocSize(p);
391 sqlite3MemdebugSetType(p, MEMTYPE_PCACHE);
392 return iSize;
393 }
394}
395#endif /* SQLITE_ENABLE_MEMORY_MANAGEMENT */
396
dand2925702011-08-19 18:15:00 +0000397/*
danielk1977bc2ca9e2008-11-13 14:28:28 +0000398** Allocate a new page object initially associated with cache pCache.
399*/
drh3c0c4312015-09-01 19:51:37 +0000400static PgHdr1 *pcache1AllocPage(PCache1 *pCache, int benignMalloc){
danb5126dd2011-09-22 14:56:31 +0000401 PgHdr1 *p = 0;
402 void *pPg;
dand2925702011-08-19 18:15:00 +0000403
dand2925702011-08-19 18:15:00 +0000404 assert( sqlite3_mutex_held(pCache->pGroup->mutex) );
drh957026a2015-07-16 18:18:19 +0000405 if( pCache->pFree || (pCache->nPage==0 && pcache1InitBulk(pCache)) ){
drhee70a842015-07-06 18:54:52 +0000406 p = pCache->pFree;
407 pCache->pFree = p->pNext;
408 p->pNext = 0;
409 }else{
drhdb7ae892015-07-06 20:57:22 +0000410#ifdef SQLITE_ENABLE_MEMORY_MANAGEMENT
drhee70a842015-07-06 18:54:52 +0000411 /* The group mutex must be released before pcache1Alloc() is called. This
drhdb7ae892015-07-06 20:57:22 +0000412 ** is because it might call sqlite3_release_memory(), which assumes that
drhee70a842015-07-06 18:54:52 +0000413 ** this mutex is not held. */
drhdb7ae892015-07-06 20:57:22 +0000414 assert( pcache1.separateCache==0 );
415 assert( pCache->pGroup==&pcache1.grp );
drhee70a842015-07-06 18:54:52 +0000416 pcache1LeaveMutex(pCache->pGroup);
drhdb7ae892015-07-06 20:57:22 +0000417#endif
drh8faee872015-09-19 18:08:13 +0000418 if( benignMalloc ){ sqlite3BeginBenignMalloc(); }
dan22e21ff2011-11-08 20:08:44 +0000419#ifdef SQLITE_PCACHE_SEPARATE_HEADER
drhee70a842015-07-06 18:54:52 +0000420 pPg = pcache1Alloc(pCache->szPage);
421 p = sqlite3Malloc(sizeof(PgHdr1) + pCache->szExtra);
422 if( !pPg || !p ){
423 pcache1Free(pPg);
424 sqlite3_free(p);
425 pPg = 0;
426 }
dan22e21ff2011-11-08 20:08:44 +0000427#else
drhee70a842015-07-06 18:54:52 +0000428 pPg = pcache1Alloc(pCache->szAlloc);
429 p = (PgHdr1 *)&((u8 *)pPg)[pCache->szPage];
dan22e21ff2011-11-08 20:08:44 +0000430#endif
drh8faee872015-09-19 18:08:13 +0000431 if( benignMalloc ){ sqlite3EndBenignMalloc(); }
drhdb7ae892015-07-06 20:57:22 +0000432#ifdef SQLITE_ENABLE_MEMORY_MANAGEMENT
drhee70a842015-07-06 18:54:52 +0000433 pcache1EnterMutex(pCache->pGroup);
drhdb7ae892015-07-06 20:57:22 +0000434#endif
drhee70a842015-07-06 18:54:52 +0000435 if( pPg==0 ) return 0;
dan22e21ff2011-11-08 20:08:44 +0000436 p->page.pBuf = pPg;
437 p->page.pExtra = &p[1];
drhee70a842015-07-06 18:54:52 +0000438 p->isBulkLocal = 0;
drh92af02c2015-09-04 04:31:56 +0000439 p->isAnchor = 0;
danielk1977bc2ca9e2008-11-13 14:28:28 +0000440 }
drhee70a842015-07-06 18:54:52 +0000441 if( pCache->bPurgeable ){
442 pCache->pGroup->nCurrentPage++;
443 }
444 return p;
danielk1977bc2ca9e2008-11-13 14:28:28 +0000445}
446
447/*
448** Free a page object allocated by pcache1AllocPage().
449*/
450static void pcache1FreePage(PgHdr1 *p){
drhdb7ae892015-07-06 20:57:22 +0000451 PCache1 *pCache;
452 assert( p!=0 );
453 pCache = p->pCache;
454 assert( sqlite3_mutex_held(p->pCache->pGroup->mutex) );
455 if( p->isBulkLocal ){
456 p->pNext = pCache->pFree;
457 pCache->pFree = p;
458 }else{
459 pcache1Free(p->page.pBuf);
dan22e21ff2011-11-08 20:08:44 +0000460#ifdef SQLITE_PCACHE_SEPARATE_HEADER
drhdb7ae892015-07-06 20:57:22 +0000461 sqlite3_free(p);
dan22e21ff2011-11-08 20:08:44 +0000462#endif
drhdb7ae892015-07-06 20:57:22 +0000463 }
464 if( pCache->bPurgeable ){
465 pCache->pGroup->nCurrentPage--;
danielk1977bc2ca9e2008-11-13 14:28:28 +0000466 }
467}
468
469/*
470** Malloc function used by SQLite to obtain space from the buffer configured
471** using sqlite3_config(SQLITE_CONFIG_PAGECACHE) option. If no such buffer
472** exists, this function falls back to sqlite3Malloc().
473*/
474void *sqlite3PageMalloc(int sz){
drh9f8cf9d2011-01-17 21:32:24 +0000475 return pcache1Alloc(sz);
danielk1977bc2ca9e2008-11-13 14:28:28 +0000476}
477
478/*
479** Free an allocated buffer obtained from sqlite3PageMalloc().
480*/
481void sqlite3PageFree(void *p){
danielk1977bc2ca9e2008-11-13 14:28:28 +0000482 pcache1Free(p);
danielk1977bc2ca9e2008-11-13 14:28:28 +0000483}
484
drh50d1b5f2010-08-27 12:21:06 +0000485
486/*
487** Return true if it desirable to avoid allocating a new page cache
488** entry.
489**
490** If memory was allocated specifically to the page cache using
491** SQLITE_CONFIG_PAGECACHE but that memory has all been used, then
492** it is desirable to avoid allocating a new page cache entry because
493** presumably SQLITE_CONFIG_PAGECACHE was suppose to be sufficient
494** for all page cache needs and we should not need to spill the
495** allocation onto the heap.
496**
drh45d29302012-01-08 22:18:33 +0000497** Or, the heap is used for all page cache memory but the heap is
drh50d1b5f2010-08-27 12:21:06 +0000498** under memory pressure, then again it is desirable to avoid
499** allocating a new page cache entry in order to avoid stressing
500** the heap even further.
501*/
502static int pcache1UnderMemoryPressure(PCache1 *pCache){
dan22e21ff2011-11-08 20:08:44 +0000503 if( pcache1.nSlot && (pCache->szPage+pCache->szExtra)<=pcache1.szSlot ){
drh9f8cf9d2011-01-17 21:32:24 +0000504 return pcache1.bUnderPressure;
drh50d1b5f2010-08-27 12:21:06 +0000505 }else{
506 return sqlite3HeapNearlyFull();
507 }
508}
509
danielk1977bc2ca9e2008-11-13 14:28:28 +0000510/******************************************************************************/
511/******** General Implementation Functions ************************************/
512
513/*
514** This function is used to resize the hash table used by the cache passed
515** as the first argument.
516**
drh9f8cf9d2011-01-17 21:32:24 +0000517** The PCache mutex must be held when this function is called.
danielk1977bc2ca9e2008-11-13 14:28:28 +0000518*/
drhefbf0442014-08-23 23:15:31 +0000519static void pcache1ResizeHash(PCache1 *p){
danielk1977bc2ca9e2008-11-13 14:28:28 +0000520 PgHdr1 **apNew;
danielk197744cd45c2008-11-15 11:22:45 +0000521 unsigned int nNew;
danielk1977bc2ca9e2008-11-13 14:28:28 +0000522 unsigned int i;
523
drh9f8cf9d2011-01-17 21:32:24 +0000524 assert( sqlite3_mutex_held(p->pGroup->mutex) );
danielk1977bc2ca9e2008-11-13 14:28:28 +0000525
526 nNew = p->nHash*2;
527 if( nNew<256 ){
528 nNew = 256;
529 }
530
drh9f8cf9d2011-01-17 21:32:24 +0000531 pcache1LeaveMutex(p->pGroup);
drh085bb7f2008-12-06 14:34:33 +0000532 if( p->nHash ){ sqlite3BeginBenignMalloc(); }
dan6809c962012-07-30 14:53:54 +0000533 apNew = (PgHdr1 **)sqlite3MallocZero(sizeof(PgHdr1 *)*nNew);
drh085bb7f2008-12-06 14:34:33 +0000534 if( p->nHash ){ sqlite3EndBenignMalloc(); }
drh9f8cf9d2011-01-17 21:32:24 +0000535 pcache1EnterMutex(p->pGroup);
danielk1977bc2ca9e2008-11-13 14:28:28 +0000536 if( apNew ){
danielk1977bc2ca9e2008-11-13 14:28:28 +0000537 for(i=0; i<p->nHash; i++){
538 PgHdr1 *pPage;
539 PgHdr1 *pNext = p->apHash[i];
drhb27b7f52008-12-10 18:03:45 +0000540 while( (pPage = pNext)!=0 ){
danielk1977bc2ca9e2008-11-13 14:28:28 +0000541 unsigned int h = pPage->iKey % nNew;
542 pNext = pPage->pNext;
543 pPage->pNext = apNew[h];
544 apNew[h] = pPage;
545 }
546 }
547 sqlite3_free(p->apHash);
548 p->apHash = apNew;
549 p->nHash = nNew;
550 }
danielk1977bc2ca9e2008-11-13 14:28:28 +0000551}
552
553/*
554** This function is used internally to remove the page pPage from the
drh9f8cf9d2011-01-17 21:32:24 +0000555** PGroup LRU list, if is part of it. If pPage is not part of the PGroup
danielk1977bc2ca9e2008-11-13 14:28:28 +0000556** LRU list, then this function is a no-op.
557**
drh9f8cf9d2011-01-17 21:32:24 +0000558** The PGroup mutex must be held when this function is called.
danielk1977bc2ca9e2008-11-13 14:28:28 +0000559*/
drh55a46c92015-06-12 13:49:26 +0000560static PgHdr1 *pcache1PinPage(PgHdr1 *pPage){
drh9f8cf9d2011-01-17 21:32:24 +0000561 PCache1 *pCache;
drh9f8cf9d2011-01-17 21:32:24 +0000562
drh5d56dd22013-12-13 18:50:40 +0000563 assert( pPage!=0 );
564 assert( pPage->isPinned==0 );
drh9f8cf9d2011-01-17 21:32:24 +0000565 pCache = pPage->pCache;
drh92af02c2015-09-04 04:31:56 +0000566 assert( pPage->pLruNext );
567 assert( pPage->pLruPrev );
drhb230a522015-06-12 13:04:51 +0000568 assert( sqlite3_mutex_held(pCache->pGroup->mutex) );
drh92af02c2015-09-04 04:31:56 +0000569 pPage->pLruPrev->pLruNext = pPage->pLruNext;
570 pPage->pLruNext->pLruPrev = pPage->pLruPrev;
drh5d56dd22013-12-13 18:50:40 +0000571 pPage->pLruNext = 0;
572 pPage->pLruPrev = 0;
573 pPage->isPinned = 1;
drh92af02c2015-09-04 04:31:56 +0000574 assert( pPage->isAnchor==0 );
575 assert( pCache->pGroup->lru.isAnchor==1 );
drh5d56dd22013-12-13 18:50:40 +0000576 pCache->nRecyclable--;
drh55a46c92015-06-12 13:49:26 +0000577 return pPage;
danielk1977bc2ca9e2008-11-13 14:28:28 +0000578}
579
580
581/*
582** Remove the page supplied as an argument from the hash table
583** (PCache1.apHash structure) that it is currently stored in.
drh95c91e12015-06-29 00:21:00 +0000584** Also free the page if freePage is true.
danielk1977bc2ca9e2008-11-13 14:28:28 +0000585**
drh9f8cf9d2011-01-17 21:32:24 +0000586** The PGroup mutex must be held when this function is called.
danielk1977bc2ca9e2008-11-13 14:28:28 +0000587*/
drh95c91e12015-06-29 00:21:00 +0000588static void pcache1RemoveFromHash(PgHdr1 *pPage, int freeFlag){
danielk1977bc2ca9e2008-11-13 14:28:28 +0000589 unsigned int h;
590 PCache1 *pCache = pPage->pCache;
591 PgHdr1 **pp;
592
drh9f8cf9d2011-01-17 21:32:24 +0000593 assert( sqlite3_mutex_held(pCache->pGroup->mutex) );
danielk1977bc2ca9e2008-11-13 14:28:28 +0000594 h = pPage->iKey % pCache->nHash;
595 for(pp=&pCache->apHash[h]; (*pp)!=pPage; pp=&(*pp)->pNext);
596 *pp = (*pp)->pNext;
597
598 pCache->nPage--;
drh95c91e12015-06-29 00:21:00 +0000599 if( freeFlag ) pcache1FreePage(pPage);
danielk1977bc2ca9e2008-11-13 14:28:28 +0000600}
601
602/*
drh9f8cf9d2011-01-17 21:32:24 +0000603** If there are currently more than nMaxPage pages allocated, try
604** to recycle pages to reduce the number allocated to nMaxPage.
danielk1977bc2ca9e2008-11-13 14:28:28 +0000605*/
drh957026a2015-07-16 18:18:19 +0000606static void pcache1EnforceMaxPage(PCache1 *pCache){
607 PGroup *pGroup = pCache->pGroup;
drh92af02c2015-09-04 04:31:56 +0000608 PgHdr1 *p;
drh9f8cf9d2011-01-17 21:32:24 +0000609 assert( sqlite3_mutex_held(pGroup->mutex) );
drh92af02c2015-09-04 04:31:56 +0000610 while( pGroup->nCurrentPage>pGroup->nMaxPage
611 && (p=pGroup->lru.pLruPrev)->isAnchor==0
612 ){
drh9f8cf9d2011-01-17 21:32:24 +0000613 assert( p->pCache->pGroup==pGroup );
drh5d56dd22013-12-13 18:50:40 +0000614 assert( p->isPinned==0 );
danielk1977bc2ca9e2008-11-13 14:28:28 +0000615 pcache1PinPage(p);
drh95c91e12015-06-29 00:21:00 +0000616 pcache1RemoveFromHash(p, 1);
danielk1977bc2ca9e2008-11-13 14:28:28 +0000617 }
drh957026a2015-07-16 18:18:19 +0000618 if( pCache->nPage==0 && pCache->pBulk ){
619 sqlite3_free(pCache->pBulk);
620 pCache->pBulk = pCache->pFree = 0;
621 }
danielk1977bc2ca9e2008-11-13 14:28:28 +0000622}
623
624/*
625** Discard all pages from cache pCache with a page number (key value)
626** greater than or equal to iLimit. Any pinned pages that meet this
627** criteria are unpinned before they are discarded.
628**
drh9f8cf9d2011-01-17 21:32:24 +0000629** The PCache mutex must be held when this function is called.
danielk1977bc2ca9e2008-11-13 14:28:28 +0000630*/
631static void pcache1TruncateUnsafe(
drh9f8cf9d2011-01-17 21:32:24 +0000632 PCache1 *pCache, /* The cache to truncate */
633 unsigned int iLimit /* Drop pages with this pgno or larger */
danielk1977bc2ca9e2008-11-13 14:28:28 +0000634){
drhd9fabbc2016-08-10 11:50:12 +0000635 TESTONLY( int nPage = 0; ) /* To assert pCache->nPage is correct */
636 unsigned int h, iStop;
drh9f8cf9d2011-01-17 21:32:24 +0000637 assert( sqlite3_mutex_held(pCache->pGroup->mutex) );
drhd9fabbc2016-08-10 11:50:12 +0000638 assert( pCache->iMaxKey >= iLimit );
639 assert( pCache->nHash > 0 );
drhf5dbe7f2016-08-10 15:02:49 +0000640 if( pCache->iMaxKey - iLimit < pCache->nHash ){
drhd9fabbc2016-08-10 11:50:12 +0000641 /* If we are just shaving the last few pages off the end of the
642 ** cache, then there is no point in scanning the entire hash table.
643 ** Only scan those hash slots that might contain pages that need to
644 ** be removed. */
drhf5dbe7f2016-08-10 15:02:49 +0000645 h = iLimit % pCache->nHash;
646 iStop = pCache->iMaxKey % pCache->nHash;
drhd9fabbc2016-08-10 11:50:12 +0000647 TESTONLY( nPage = -10; ) /* Disable the pCache->nPage validity check */
648 }else{
649 /* This is the general case where many pages are being removed.
650 ** It is necessary to scan the entire hash table */
drhf5dbe7f2016-08-10 15:02:49 +0000651 h = pCache->nHash/2;
652 iStop = h - 1;
drhd9fabbc2016-08-10 11:50:12 +0000653 }
654 for(;;){
655 PgHdr1 **pp;
danielk1977bc2ca9e2008-11-13 14:28:28 +0000656 PgHdr1 *pPage;
drhd9fabbc2016-08-10 11:50:12 +0000657 assert( h<pCache->nHash );
658 pp = &pCache->apHash[h];
drhb27b7f52008-12-10 18:03:45 +0000659 while( (pPage = *pp)!=0 ){
danielk1977bc2ca9e2008-11-13 14:28:28 +0000660 if( pPage->iKey>=iLimit ){
danielk1977ea24ac42009-05-08 06:52:47 +0000661 pCache->nPage--;
danielk1977bc2ca9e2008-11-13 14:28:28 +0000662 *pp = pPage->pNext;
drh5d56dd22013-12-13 18:50:40 +0000663 if( !pPage->isPinned ) pcache1PinPage(pPage);
danielk1977bc2ca9e2008-11-13 14:28:28 +0000664 pcache1FreePage(pPage);
665 }else{
666 pp = &pPage->pNext;
drhd9fabbc2016-08-10 11:50:12 +0000667 TESTONLY( if( nPage>=0 ) nPage++; )
danielk1977bc2ca9e2008-11-13 14:28:28 +0000668 }
669 }
drhd9fabbc2016-08-10 11:50:12 +0000670 if( h==iStop ) break;
drhf5dbe7f2016-08-10 15:02:49 +0000671 h = (h+1) % pCache->nHash;
danielk1977bc2ca9e2008-11-13 14:28:28 +0000672 }
drhd9fabbc2016-08-10 11:50:12 +0000673 assert( nPage<0 || pCache->nPage==(unsigned)nPage );
danielk1977bc2ca9e2008-11-13 14:28:28 +0000674}
675
676/******************************************************************************/
677/******** sqlite3_pcache Methods **********************************************/
678
679/*
680** Implementation of the sqlite3_pcache.xInit method.
681*/
danielk197762c14b32008-11-19 09:05:26 +0000682static int pcache1Init(void *NotUsed){
683 UNUSED_PARAMETER(NotUsed);
drhf4622dc2009-05-22 11:10:24 +0000684 assert( pcache1.isInit==0 );
danielk1977bc2ca9e2008-11-13 14:28:28 +0000685 memset(&pcache1, 0, sizeof(pcache1));
drhdb7ae892015-07-06 20:57:22 +0000686
687
688 /*
689 ** The pcache1.separateCache variable is true if each PCache has its own
690 ** private PGroup (mode-1). pcache1.separateCache is false if the single
691 ** PGroup in pcache1.grp is used for all page caches (mode-2).
692 **
693 ** * Always use a unified cache (mode-2) if ENABLE_MEMORY_MANAGEMENT
694 **
695 ** * Use a unified cache in single-threaded applications that have
696 ** configured a start-time buffer for use as page-cache memory using
697 ** sqlite3_config(SQLITE_CONFIG_PAGECACHE, pBuf, sz, N) with non-NULL
698 ** pBuf argument.
699 **
700 ** * Otherwise use separate caches (mode-1)
701 */
702#if defined(SQLITE_ENABLE_MEMORY_MANAGEMENT)
703 pcache1.separateCache = 0;
drhfd5ae962015-07-07 15:14:16 +0000704#elif SQLITE_THREADSAFE
drhdb7ae892015-07-06 20:57:22 +0000705 pcache1.separateCache = sqlite3GlobalConfig.pPage==0
706 || sqlite3GlobalConfig.bCoreMutex>0;
drhfd5ae962015-07-07 15:14:16 +0000707#else
708 pcache1.separateCache = sqlite3GlobalConfig.pPage==0;
drhdb7ae892015-07-06 20:57:22 +0000709#endif
710
drh982215a2015-06-13 11:10:55 +0000711#if SQLITE_THREADSAFE
danielk1977bc2ca9e2008-11-13 14:28:28 +0000712 if( sqlite3GlobalConfig.bCoreMutex ){
drh97a7e5e2016-04-26 18:58:54 +0000713 pcache1.grp.mutex = sqlite3MutexAlloc(SQLITE_MUTEX_STATIC_LRU);
714 pcache1.mutex = sqlite3MutexAlloc(SQLITE_MUTEX_STATIC_PMEM);
danielk1977bc2ca9e2008-11-13 14:28:28 +0000715 }
drh982215a2015-06-13 11:10:55 +0000716#endif
drh957026a2015-07-16 18:18:19 +0000717 if( pcache1.separateCache
718 && sqlite3GlobalConfig.nPage!=0
719 && sqlite3GlobalConfig.pPage==0
720 ){
721 pcache1.nInitPage = sqlite3GlobalConfig.nPage;
722 }else{
723 pcache1.nInitPage = 0;
724 }
drh41692e92011-01-25 04:34:51 +0000725 pcache1.grp.mxPinned = 10;
drhf4622dc2009-05-22 11:10:24 +0000726 pcache1.isInit = 1;
danielk1977bc2ca9e2008-11-13 14:28:28 +0000727 return SQLITE_OK;
728}
729
730/*
731** Implementation of the sqlite3_pcache.xShutdown method.
shane7c7c3112009-08-17 15:31:23 +0000732** Note that the static mutex allocated in xInit does
733** not need to be freed.
danielk1977bc2ca9e2008-11-13 14:28:28 +0000734*/
danielk197762c14b32008-11-19 09:05:26 +0000735static void pcache1Shutdown(void *NotUsed){
736 UNUSED_PARAMETER(NotUsed);
drhf4622dc2009-05-22 11:10:24 +0000737 assert( pcache1.isInit!=0 );
drhb0937192009-05-22 10:53:29 +0000738 memset(&pcache1, 0, sizeof(pcache1));
danielk1977bc2ca9e2008-11-13 14:28:28 +0000739}
740
drhefbf0442014-08-23 23:15:31 +0000741/* forward declaration */
742static void pcache1Destroy(sqlite3_pcache *p);
743
danielk1977bc2ca9e2008-11-13 14:28:28 +0000744/*
745** Implementation of the sqlite3_pcache.xCreate method.
746**
747** Allocate a new cache.
748*/
drhe5c40b12011-11-09 00:06:05 +0000749static sqlite3_pcache *pcache1Create(int szPage, int szExtra, int bPurgeable){
drh9f8cf9d2011-01-17 21:32:24 +0000750 PCache1 *pCache; /* The newly created page cache */
751 PGroup *pGroup; /* The group the new page cache will belong to */
752 int sz; /* Bytes of memory required to allocate the new cache */
danielk1977bc2ca9e2008-11-13 14:28:28 +0000753
drhe73c9142011-11-09 16:12:24 +0000754 assert( (szPage & (szPage-1))==0 && szPage>=512 && szPage<=65536 );
755 assert( szExtra < 300 );
756
drhdb7ae892015-07-06 20:57:22 +0000757 sz = sizeof(PCache1) + sizeof(PGroup)*pcache1.separateCache;
dan6809c962012-07-30 14:53:54 +0000758 pCache = (PCache1 *)sqlite3MallocZero(sz);
danielk1977bc2ca9e2008-11-13 14:28:28 +0000759 if( pCache ){
drhdb7ae892015-07-06 20:57:22 +0000760 if( pcache1.separateCache ){
drh9f8cf9d2011-01-17 21:32:24 +0000761 pGroup = (PGroup*)&pCache[1];
drh41692e92011-01-25 04:34:51 +0000762 pGroup->mxPinned = 10;
drh9f8cf9d2011-01-17 21:32:24 +0000763 }else{
dan9dde7cb2011-06-09 17:53:43 +0000764 pGroup = &pcache1.grp;
drh9f8cf9d2011-01-17 21:32:24 +0000765 }
drh92af02c2015-09-04 04:31:56 +0000766 if( pGroup->lru.isAnchor==0 ){
767 pGroup->lru.isAnchor = 1;
768 pGroup->lru.pLruPrev = pGroup->lru.pLruNext = &pGroup->lru;
769 }
drh9f8cf9d2011-01-17 21:32:24 +0000770 pCache->pGroup = pGroup;
danielk1977bc2ca9e2008-11-13 14:28:28 +0000771 pCache->szPage = szPage;
dan22e21ff2011-11-08 20:08:44 +0000772 pCache->szExtra = szExtra;
drhee70a842015-07-06 18:54:52 +0000773 pCache->szAlloc = szPage + szExtra + ROUND8(sizeof(PgHdr1));
danielk1977bc2ca9e2008-11-13 14:28:28 +0000774 pCache->bPurgeable = (bPurgeable ? 1 : 0);
drhefbf0442014-08-23 23:15:31 +0000775 pcache1EnterMutex(pGroup);
776 pcache1ResizeHash(pCache);
danielk1977bc2ca9e2008-11-13 14:28:28 +0000777 if( bPurgeable ){
778 pCache->nMin = 10;
drh9f8cf9d2011-01-17 21:32:24 +0000779 pGroup->nMinPage += pCache->nMin;
drh41692e92011-01-25 04:34:51 +0000780 pGroup->mxPinned = pGroup->nMaxPage + 10 - pGroup->nMinPage;
drhefbf0442014-08-23 23:15:31 +0000781 }
782 pcache1LeaveMutex(pGroup);
783 if( pCache->nHash==0 ){
784 pcache1Destroy((sqlite3_pcache*)pCache);
785 pCache = 0;
danielk1977bc2ca9e2008-11-13 14:28:28 +0000786 }
787 }
788 return (sqlite3_pcache *)pCache;
789}
790
791/*
792** Implementation of the sqlite3_pcache.xCachesize method.
793**
794** Configure the cache_size limit for a cache.
795*/
796static void pcache1Cachesize(sqlite3_pcache *p, int nMax){
797 PCache1 *pCache = (PCache1 *)p;
798 if( pCache->bPurgeable ){
drh9f8cf9d2011-01-17 21:32:24 +0000799 PGroup *pGroup = pCache->pGroup;
800 pcache1EnterMutex(pGroup);
801 pGroup->nMaxPage += (nMax - pCache->nMax);
drh41692e92011-01-25 04:34:51 +0000802 pGroup->mxPinned = pGroup->nMaxPage + 10 - pGroup->nMinPage;
danielk1977bc2ca9e2008-11-13 14:28:28 +0000803 pCache->nMax = nMax;
drh25ca5682011-01-26 00:07:03 +0000804 pCache->n90pct = pCache->nMax*9/10;
drh957026a2015-07-16 18:18:19 +0000805 pcache1EnforceMaxPage(pCache);
drh9f8cf9d2011-01-17 21:32:24 +0000806 pcache1LeaveMutex(pGroup);
danielk1977bc2ca9e2008-11-13 14:28:28 +0000807 }
808}
809
810/*
drh09419b42011-11-16 19:29:17 +0000811** Implementation of the sqlite3_pcache.xShrink method.
812**
813** Free up as much memory as possible.
814*/
815static void pcache1Shrink(sqlite3_pcache *p){
816 PCache1 *pCache = (PCache1*)p;
817 if( pCache->bPurgeable ){
818 PGroup *pGroup = pCache->pGroup;
819 int savedMaxPage;
820 pcache1EnterMutex(pGroup);
821 savedMaxPage = pGroup->nMaxPage;
822 pGroup->nMaxPage = 0;
drh957026a2015-07-16 18:18:19 +0000823 pcache1EnforceMaxPage(pCache);
drh09419b42011-11-16 19:29:17 +0000824 pGroup->nMaxPage = savedMaxPage;
825 pcache1LeaveMutex(pGroup);
826 }
827}
828
829/*
danielk1977bc2ca9e2008-11-13 14:28:28 +0000830** Implementation of the sqlite3_pcache.xPagecount method.
831*/
832static int pcache1Pagecount(sqlite3_pcache *p){
833 int n;
drh9f8cf9d2011-01-17 21:32:24 +0000834 PCache1 *pCache = (PCache1*)p;
835 pcache1EnterMutex(pCache->pGroup);
836 n = pCache->nPage;
837 pcache1LeaveMutex(pCache->pGroup);
danielk1977bc2ca9e2008-11-13 14:28:28 +0000838 return n;
839}
840
drhefbf0442014-08-23 23:15:31 +0000841
842/*
843** Implement steps 3, 4, and 5 of the pcache1Fetch() algorithm described
844** in the header of the pcache1Fetch() procedure.
845**
846** This steps are broken out into a separate procedure because they are
847** usually not needed, and by avoiding the stack initialization required
848** for these steps, the main pcache1Fetch() procedure can run faster.
849*/
850static SQLITE_NOINLINE PgHdr1 *pcache1FetchStage2(
851 PCache1 *pCache,
852 unsigned int iKey,
853 int createFlag
854){
855 unsigned int nPinned;
856 PGroup *pGroup = pCache->pGroup;
857 PgHdr1 *pPage = 0;
858
859 /* Step 3: Abort if createFlag is 1 but the cache is nearly full */
860 assert( pCache->nPage >= pCache->nRecyclable );
861 nPinned = pCache->nPage - pCache->nRecyclable;
862 assert( pGroup->mxPinned == pGroup->nMaxPage + 10 - pGroup->nMinPage );
863 assert( pCache->n90pct == pCache->nMax*9/10 );
864 if( createFlag==1 && (
865 nPinned>=pGroup->mxPinned
866 || nPinned>=pCache->n90pct
dan5bd8af72014-10-10 19:10:59 +0000867 || (pcache1UnderMemoryPressure(pCache) && pCache->nRecyclable<nPinned)
drhefbf0442014-08-23 23:15:31 +0000868 )){
869 return 0;
870 }
871
872 if( pCache->nPage>=pCache->nHash ) pcache1ResizeHash(pCache);
873 assert( pCache->nHash>0 && pCache->apHash );
874
875 /* Step 4. Try to recycle a page. */
drhc54357c2015-07-07 14:06:18 +0000876 if( pCache->bPurgeable
drh92af02c2015-09-04 04:31:56 +0000877 && !pGroup->lru.pLruPrev->isAnchor
drhc54357c2015-07-07 14:06:18 +0000878 && ((pCache->nPage+1>=pCache->nMax) || pcache1UnderMemoryPressure(pCache))
879 ){
drhefbf0442014-08-23 23:15:31 +0000880 PCache1 *pOther;
drh92af02c2015-09-04 04:31:56 +0000881 pPage = pGroup->lru.pLruPrev;
drhefbf0442014-08-23 23:15:31 +0000882 assert( pPage->isPinned==0 );
drh95c91e12015-06-29 00:21:00 +0000883 pcache1RemoveFromHash(pPage, 0);
drhefbf0442014-08-23 23:15:31 +0000884 pcache1PinPage(pPage);
885 pOther = pPage->pCache;
drhee70a842015-07-06 18:54:52 +0000886 if( pOther->szAlloc != pCache->szAlloc ){
drhefbf0442014-08-23 23:15:31 +0000887 pcache1FreePage(pPage);
888 pPage = 0;
889 }else{
890 pGroup->nCurrentPage -= (pOther->bPurgeable - pCache->bPurgeable);
891 }
892 }
893
894 /* Step 5. If a usable page buffer has still not been found,
895 ** attempt to allocate a new one.
896 */
897 if( !pPage ){
drh3c0c4312015-09-01 19:51:37 +0000898 pPage = pcache1AllocPage(pCache, createFlag==1);
drhefbf0442014-08-23 23:15:31 +0000899 }
900
901 if( pPage ){
902 unsigned int h = iKey % pCache->nHash;
903 pCache->nPage++;
904 pPage->iKey = iKey;
905 pPage->pNext = pCache->apHash[h];
906 pPage->pCache = pCache;
907 pPage->pLruPrev = 0;
908 pPage->pLruNext = 0;
909 pPage->isPinned = 1;
910 *(void **)pPage->page.pExtra = 0;
911 pCache->apHash[h] = pPage;
912 if( iKey>pCache->iMaxKey ){
913 pCache->iMaxKey = iKey;
914 }
915 }
916 return pPage;
917}
918
danielk1977bc2ca9e2008-11-13 14:28:28 +0000919/*
920** Implementation of the sqlite3_pcache.xFetch method.
921**
922** Fetch a page by key value.
923**
924** Whether or not a new page may be allocated by this function depends on
drhf18a61d2009-07-17 11:44:07 +0000925** the value of the createFlag argument. 0 means do not allocate a new
926** page. 1 means allocate a new page if space is easily available. 2
927** means to try really hard to allocate a new page.
928**
929** For a non-purgeable cache (a cache used as the storage for an in-memory
930** database) there is really no difference between createFlag 1 and 2. So
931** the calling function (pcache.c) will never have a createFlag of 1 on
drh45d29302012-01-08 22:18:33 +0000932** a non-purgeable cache.
danielk1977bc2ca9e2008-11-13 14:28:28 +0000933**
934** There are three different approaches to obtaining space for a page,
935** depending on the value of parameter createFlag (which may be 0, 1 or 2).
936**
937** 1. Regardless of the value of createFlag, the cache is searched for a
938** copy of the requested page. If one is found, it is returned.
939**
940** 2. If createFlag==0 and the page is not already in the cache, NULL is
941** returned.
942**
drh50d1b5f2010-08-27 12:21:06 +0000943** 3. If createFlag is 1, and the page is not already in the cache, then
944** return NULL (do not allocate a new page) if any of the following
945** conditions are true:
danielk1977bc2ca9e2008-11-13 14:28:28 +0000946**
947** (a) the number of pages pinned by the cache is greater than
948** PCache1.nMax, or
drh50d1b5f2010-08-27 12:21:06 +0000949**
danielk1977bc2ca9e2008-11-13 14:28:28 +0000950** (b) the number of pages pinned by the cache is greater than
951** the sum of nMax for all purgeable caches, less the sum of
drh50d1b5f2010-08-27 12:21:06 +0000952** nMin for all other purgeable caches, or
danielk1977bc2ca9e2008-11-13 14:28:28 +0000953**
954** 4. If none of the first three conditions apply and the cache is marked
955** as purgeable, and if one of the following is true:
956**
957** (a) The number of pages allocated for the cache is already
958** PCache1.nMax, or
959**
960** (b) The number of pages allocated for all purgeable caches is
961** already equal to or greater than the sum of nMax for all
962** purgeable caches,
963**
drh50d1b5f2010-08-27 12:21:06 +0000964** (c) The system is under memory pressure and wants to avoid
965** unnecessary pages cache entry allocations
966**
danielk1977bc2ca9e2008-11-13 14:28:28 +0000967** then attempt to recycle a page from the LRU list. If it is the right
968** size, return the recycled buffer. Otherwise, free the buffer and
969** proceed to step 5.
970**
971** 5. Otherwise, allocate and return a new page buffer.
drh55a46c92015-06-12 13:49:26 +0000972**
973** There are two versions of this routine. pcache1FetchWithMutex() is
974** the general case. pcache1FetchNoMutex() is a faster implementation for
975** the common case where pGroup->mutex is NULL. The pcache1Fetch() wrapper
976** invokes the appropriate routine.
danielk1977bc2ca9e2008-11-13 14:28:28 +0000977*/
drh55a46c92015-06-12 13:49:26 +0000978static PgHdr1 *pcache1FetchNoMutex(
dan22e21ff2011-11-08 20:08:44 +0000979 sqlite3_pcache *p,
980 unsigned int iKey,
981 int createFlag
982){
danielk1977bc2ca9e2008-11-13 14:28:28 +0000983 PCache1 *pCache = (PCache1 *)p;
984 PgHdr1 *pPage = 0;
985
drh3a5676c2011-01-19 21:58:56 +0000986 /* Step 1: Search the hash table for an existing entry. */
drhefbf0442014-08-23 23:15:31 +0000987 pPage = pCache->apHash[iKey % pCache->nHash];
988 while( pPage && pPage->iKey!=iKey ){ pPage = pPage->pNext; }
danielk1977bc2ca9e2008-11-13 14:28:28 +0000989
drh95a0b372015-09-03 20:43:55 +0000990 /* Step 2: If the page was found in the hash table, then return it.
991 ** If the page was not in the hash table and createFlag is 0, abort.
992 ** Otherwise (page not in hash and createFlag!=0) continue with
993 ** subsequent steps to try to create the page. */
drh5d56dd22013-12-13 18:50:40 +0000994 if( pPage ){
drh55a46c92015-06-12 13:49:26 +0000995 if( !pPage->isPinned ){
996 return pcache1PinPage(pPage);
997 }else{
998 return pPage;
999 }
drhefbf0442014-08-23 23:15:31 +00001000 }else if( createFlag ){
1001 /* Steps 3, 4, and 5 implemented by this subroutine */
drh55a46c92015-06-12 13:49:26 +00001002 return pcache1FetchStage2(pCache, iKey, createFlag);
1003 }else{
1004 return 0;
drh5d56dd22013-12-13 18:50:40 +00001005 }
drh55a46c92015-06-12 13:49:26 +00001006}
drh982215a2015-06-13 11:10:55 +00001007#if PCACHE1_MIGHT_USE_GROUP_MUTEX
drh55a46c92015-06-12 13:49:26 +00001008static PgHdr1 *pcache1FetchWithMutex(
1009 sqlite3_pcache *p,
1010 unsigned int iKey,
1011 int createFlag
1012){
1013 PCache1 *pCache = (PCache1 *)p;
1014 PgHdr1 *pPage;
1015
1016 pcache1EnterMutex(pCache->pGroup);
1017 pPage = pcache1FetchNoMutex(p, iKey, createFlag);
drhefbf0442014-08-23 23:15:31 +00001018 assert( pPage==0 || pCache->iMaxKey>=iKey );
1019 pcache1LeaveMutex(pCache->pGroup);
drh55a46c92015-06-12 13:49:26 +00001020 return pPage;
1021}
drh982215a2015-06-13 11:10:55 +00001022#endif
drh55a46c92015-06-12 13:49:26 +00001023static sqlite3_pcache_page *pcache1Fetch(
1024 sqlite3_pcache *p,
1025 unsigned int iKey,
1026 int createFlag
1027){
drh982215a2015-06-13 11:10:55 +00001028#if PCACHE1_MIGHT_USE_GROUP_MUTEX || defined(SQLITE_DEBUG)
drh55a46c92015-06-12 13:49:26 +00001029 PCache1 *pCache = (PCache1 *)p;
drh982215a2015-06-13 11:10:55 +00001030#endif
drh55a46c92015-06-12 13:49:26 +00001031
1032 assert( offsetof(PgHdr1,page)==0 );
1033 assert( pCache->bPurgeable || createFlag!=1 );
1034 assert( pCache->bPurgeable || pCache->nMin==0 );
1035 assert( pCache->bPurgeable==0 || pCache->nMin==10 );
1036 assert( pCache->nMin==0 || pCache->bPurgeable );
1037 assert( pCache->nHash>0 );
drh982215a2015-06-13 11:10:55 +00001038#if PCACHE1_MIGHT_USE_GROUP_MUTEX
drh55a46c92015-06-12 13:49:26 +00001039 if( pCache->pGroup->mutex ){
1040 return (sqlite3_pcache_page*)pcache1FetchWithMutex(p, iKey, createFlag);
drh982215a2015-06-13 11:10:55 +00001041 }else
1042#endif
1043 {
drh55a46c92015-06-12 13:49:26 +00001044 return (sqlite3_pcache_page*)pcache1FetchNoMutex(p, iKey, createFlag);
1045 }
danielk1977bc2ca9e2008-11-13 14:28:28 +00001046}
1047
1048
1049/*
1050** Implementation of the sqlite3_pcache.xUnpin method.
1051**
1052** Mark a page as unpinned (eligible for asynchronous recycling).
1053*/
dan22e21ff2011-11-08 20:08:44 +00001054static void pcache1Unpin(
1055 sqlite3_pcache *p,
1056 sqlite3_pcache_page *pPg,
1057 int reuseUnlikely
1058){
danielk1977bc2ca9e2008-11-13 14:28:28 +00001059 PCache1 *pCache = (PCache1 *)p;
dan22e21ff2011-11-08 20:08:44 +00001060 PgHdr1 *pPage = (PgHdr1 *)pPg;
drh9f8cf9d2011-01-17 21:32:24 +00001061 PGroup *pGroup = pCache->pGroup;
drh69e931e2009-06-03 21:04:35 +00001062
1063 assert( pPage->pCache==pCache );
drh9f8cf9d2011-01-17 21:32:24 +00001064 pcache1EnterMutex(pGroup);
danielk1977bc2ca9e2008-11-13 14:28:28 +00001065
1066 /* It is an error to call this function if the page is already
drh9f8cf9d2011-01-17 21:32:24 +00001067 ** part of the PGroup LRU list.
danielk1977bc2ca9e2008-11-13 14:28:28 +00001068 */
1069 assert( pPage->pLruPrev==0 && pPage->pLruNext==0 );
drh5d56dd22013-12-13 18:50:40 +00001070 assert( pPage->isPinned==1 );
danielk1977bc2ca9e2008-11-13 14:28:28 +00001071
drh9f8cf9d2011-01-17 21:32:24 +00001072 if( reuseUnlikely || pGroup->nCurrentPage>pGroup->nMaxPage ){
drh95c91e12015-06-29 00:21:00 +00001073 pcache1RemoveFromHash(pPage, 1);
danielk1977bc2ca9e2008-11-13 14:28:28 +00001074 }else{
drh9f8cf9d2011-01-17 21:32:24 +00001075 /* Add the page to the PGroup LRU list. */
drh92af02c2015-09-04 04:31:56 +00001076 PgHdr1 **ppFirst = &pGroup->lru.pLruNext;
1077 pPage->pLruPrev = &pGroup->lru;
1078 (pPage->pLruNext = *ppFirst)->pLruPrev = pPage;
1079 *ppFirst = pPage;
danielk1977bc2ca9e2008-11-13 14:28:28 +00001080 pCache->nRecyclable++;
drh5d56dd22013-12-13 18:50:40 +00001081 pPage->isPinned = 0;
danielk1977bc2ca9e2008-11-13 14:28:28 +00001082 }
1083
drh9f8cf9d2011-01-17 21:32:24 +00001084 pcache1LeaveMutex(pCache->pGroup);
danielk1977bc2ca9e2008-11-13 14:28:28 +00001085}
1086
1087/*
1088** Implementation of the sqlite3_pcache.xRekey method.
1089*/
1090static void pcache1Rekey(
1091 sqlite3_pcache *p,
dan22e21ff2011-11-08 20:08:44 +00001092 sqlite3_pcache_page *pPg,
danielk1977bc2ca9e2008-11-13 14:28:28 +00001093 unsigned int iOld,
1094 unsigned int iNew
1095){
1096 PCache1 *pCache = (PCache1 *)p;
dan22e21ff2011-11-08 20:08:44 +00001097 PgHdr1 *pPage = (PgHdr1 *)pPg;
danielk1977bc2ca9e2008-11-13 14:28:28 +00001098 PgHdr1 **pp;
1099 unsigned int h;
1100 assert( pPage->iKey==iOld );
drh69e931e2009-06-03 21:04:35 +00001101 assert( pPage->pCache==pCache );
danielk1977bc2ca9e2008-11-13 14:28:28 +00001102
drh9f8cf9d2011-01-17 21:32:24 +00001103 pcache1EnterMutex(pCache->pGroup);
danielk1977bc2ca9e2008-11-13 14:28:28 +00001104
1105 h = iOld%pCache->nHash;
1106 pp = &pCache->apHash[h];
1107 while( (*pp)!=pPage ){
1108 pp = &(*pp)->pNext;
1109 }
1110 *pp = pPage->pNext;
1111
1112 h = iNew%pCache->nHash;
1113 pPage->iKey = iNew;
1114 pPage->pNext = pCache->apHash[h];
1115 pCache->apHash[h] = pPage;
drh98829a62009-11-20 13:18:14 +00001116 if( iNew>pCache->iMaxKey ){
danielk1977f90b7262009-01-07 15:18:20 +00001117 pCache->iMaxKey = iNew;
1118 }
1119
drh9f8cf9d2011-01-17 21:32:24 +00001120 pcache1LeaveMutex(pCache->pGroup);
danielk1977bc2ca9e2008-11-13 14:28:28 +00001121}
1122
1123/*
1124** Implementation of the sqlite3_pcache.xTruncate method.
1125**
1126** Discard all unpinned pages in the cache with a page number equal to
1127** or greater than parameter iLimit. Any pinned pages with a page number
1128** equal to or greater than iLimit are implicitly unpinned.
1129*/
1130static void pcache1Truncate(sqlite3_pcache *p, unsigned int iLimit){
1131 PCache1 *pCache = (PCache1 *)p;
drh9f8cf9d2011-01-17 21:32:24 +00001132 pcache1EnterMutex(pCache->pGroup);
danielk1977f90b7262009-01-07 15:18:20 +00001133 if( iLimit<=pCache->iMaxKey ){
1134 pcache1TruncateUnsafe(pCache, iLimit);
1135 pCache->iMaxKey = iLimit-1;
1136 }
drh9f8cf9d2011-01-17 21:32:24 +00001137 pcache1LeaveMutex(pCache->pGroup);
danielk1977bc2ca9e2008-11-13 14:28:28 +00001138}
1139
1140/*
1141** Implementation of the sqlite3_pcache.xDestroy method.
1142**
1143** Destroy a cache allocated using pcache1Create().
1144*/
1145static void pcache1Destroy(sqlite3_pcache *p){
1146 PCache1 *pCache = (PCache1 *)p;
drh9f8cf9d2011-01-17 21:32:24 +00001147 PGroup *pGroup = pCache->pGroup;
danb51d2fa2010-09-22 19:06:02 +00001148 assert( pCache->bPurgeable || (pCache->nMax==0 && pCache->nMin==0) );
drh9f8cf9d2011-01-17 21:32:24 +00001149 pcache1EnterMutex(pGroup);
drhd9fabbc2016-08-10 11:50:12 +00001150 if( pCache->nPage ) pcache1TruncateUnsafe(pCache, 0);
drha69085c2012-01-02 18:00:55 +00001151 assert( pGroup->nMaxPage >= pCache->nMax );
drh9f8cf9d2011-01-17 21:32:24 +00001152 pGroup->nMaxPage -= pCache->nMax;
drha69085c2012-01-02 18:00:55 +00001153 assert( pGroup->nMinPage >= pCache->nMin );
drh9f8cf9d2011-01-17 21:32:24 +00001154 pGroup->nMinPage -= pCache->nMin;
drh41692e92011-01-25 04:34:51 +00001155 pGroup->mxPinned = pGroup->nMaxPage + 10 - pGroup->nMinPage;
drh957026a2015-07-16 18:18:19 +00001156 pcache1EnforceMaxPage(pCache);
drh9f8cf9d2011-01-17 21:32:24 +00001157 pcache1LeaveMutex(pGroup);
drhee70a842015-07-06 18:54:52 +00001158 sqlite3_free(pCache->pBulk);
danielk1977bc2ca9e2008-11-13 14:28:28 +00001159 sqlite3_free(pCache->apHash);
1160 sqlite3_free(pCache);
1161}
1162
1163/*
1164** This function is called during initialization (sqlite3_initialize()) to
1165** install the default pluggable cache module, assuming the user has not
1166** already provided an alternative.
1167*/
1168void sqlite3PCacheSetDefault(void){
dan22e21ff2011-11-08 20:08:44 +00001169 static const sqlite3_pcache_methods2 defaultMethods = {
drh81ef0f92011-11-13 21:44:03 +00001170 1, /* iVersion */
danielk1977bc2ca9e2008-11-13 14:28:28 +00001171 0, /* pArg */
1172 pcache1Init, /* xInit */
1173 pcache1Shutdown, /* xShutdown */
1174 pcache1Create, /* xCreate */
1175 pcache1Cachesize, /* xCachesize */
1176 pcache1Pagecount, /* xPagecount */
1177 pcache1Fetch, /* xFetch */
1178 pcache1Unpin, /* xUnpin */
1179 pcache1Rekey, /* xRekey */
1180 pcache1Truncate, /* xTruncate */
drh09419b42011-11-16 19:29:17 +00001181 pcache1Destroy, /* xDestroy */
1182 pcache1Shrink /* xShrink */
danielk1977bc2ca9e2008-11-13 14:28:28 +00001183 };
dan22e21ff2011-11-08 20:08:44 +00001184 sqlite3_config(SQLITE_CONFIG_PCACHE2, &defaultMethods);
danielk1977bc2ca9e2008-11-13 14:28:28 +00001185}
1186
drhdef68892014-11-04 12:11:23 +00001187/*
1188** Return the size of the header on each page of this PCACHE implementation.
1189*/
drh37c057b2014-12-30 00:57:29 +00001190int sqlite3HeaderSizePcache1(void){ return ROUND8(sizeof(PgHdr1)); }
drhdef68892014-11-04 12:11:23 +00001191
drhaf89fe62015-03-23 17:25:18 +00001192/*
1193** Return the global mutex used by this PCACHE implementation. The
1194** sqlite3_status() routine needs access to this mutex.
1195*/
1196sqlite3_mutex *sqlite3Pcache1Mutex(void){
1197 return pcache1.mutex;
1198}
1199
danielk1977bc2ca9e2008-11-13 14:28:28 +00001200#ifdef SQLITE_ENABLE_MEMORY_MANAGEMENT
1201/*
1202** This function is called to free superfluous dynamically allocated memory
1203** held by the pager system. Memory in use by any SQLite pager allocated
1204** by the current thread may be sqlite3_free()ed.
1205**
1206** nReq is the number of bytes of memory required. Once this much has
1207** been released, the function returns. The return value is the total number
1208** of bytes of memory released.
1209*/
1210int sqlite3PcacheReleaseMemory(int nReq){
1211 int nFree = 0;
drh9f8cf9d2011-01-17 21:32:24 +00001212 assert( sqlite3_mutex_notheld(pcache1.grp.mutex) );
1213 assert( sqlite3_mutex_notheld(pcache1.mutex) );
drhee70a842015-07-06 18:54:52 +00001214 if( sqlite3GlobalConfig.nPage==0 ){
danielk1977bc2ca9e2008-11-13 14:28:28 +00001215 PgHdr1 *p;
drh9f8cf9d2011-01-17 21:32:24 +00001216 pcache1EnterMutex(&pcache1.grp);
drh92af02c2015-09-04 04:31:56 +00001217 while( (nReq<0 || nFree<nReq)
drh88202502015-09-09 19:27:10 +00001218 && (p=pcache1.grp.lru.pLruPrev)!=0
1219 && p->isAnchor==0
drh92af02c2015-09-04 04:31:56 +00001220 ){
dan22e21ff2011-11-08 20:08:44 +00001221 nFree += pcache1MemSize(p->page.pBuf);
1222#ifdef SQLITE_PCACHE_SEPARATE_HEADER
1223 nFree += sqlite3MemSize(p);
1224#endif
drh5d56dd22013-12-13 18:50:40 +00001225 assert( p->isPinned==0 );
danielk1977bc2ca9e2008-11-13 14:28:28 +00001226 pcache1PinPage(p);
drh95c91e12015-06-29 00:21:00 +00001227 pcache1RemoveFromHash(p, 1);
danielk1977bc2ca9e2008-11-13 14:28:28 +00001228 }
drh9f8cf9d2011-01-17 21:32:24 +00001229 pcache1LeaveMutex(&pcache1.grp);
danielk1977bc2ca9e2008-11-13 14:28:28 +00001230 }
1231 return nFree;
1232}
1233#endif /* SQLITE_ENABLE_MEMORY_MANAGEMENT */
1234
1235#ifdef SQLITE_TEST
1236/*
1237** This function is used by test procedures to inspect the internal state
1238** of the global cache.
1239*/
1240void sqlite3PcacheStats(
1241 int *pnCurrent, /* OUT: Total number of pages cached */
1242 int *pnMax, /* OUT: Global maximum cache size */
1243 int *pnMin, /* OUT: Sum of PCache1.nMin for purgeable caches */
1244 int *pnRecyclable /* OUT: Total number of pages available for recycling */
1245){
1246 PgHdr1 *p;
1247 int nRecyclable = 0;
drh0b19c962015-09-10 19:22:25 +00001248 for(p=pcache1.grp.lru.pLruNext; p && !p->isAnchor; p=p->pLruNext){
drh5d56dd22013-12-13 18:50:40 +00001249 assert( p->isPinned==0 );
danielk1977bc2ca9e2008-11-13 14:28:28 +00001250 nRecyclable++;
1251 }
drh9f8cf9d2011-01-17 21:32:24 +00001252 *pnCurrent = pcache1.grp.nCurrentPage;
drha69085c2012-01-02 18:00:55 +00001253 *pnMax = (int)pcache1.grp.nMaxPage;
1254 *pnMin = (int)pcache1.grp.nMinPage;
danielk1977bc2ca9e2008-11-13 14:28:28 +00001255 *pnRecyclable = nRecyclable;
1256}
1257#endif