[73abe95] | 1 | // |
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[c4f68dc] | 2 | // Cforall Version 1.0.0 Copyright (C) 2017 University of Waterloo |
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| 3 | // |
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| 4 | // The contents of this file are covered under the licence agreement in the |
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| 5 | // file "LICENCE" distributed with Cforall. |
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[73abe95] | 6 | // |
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| 7 | // heap.c -- |
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| 8 | // |
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[c4f68dc] | 9 | // Author : Peter A. Buhr |
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| 10 | // Created On : Tue Dec 19 21:58:35 2017 |
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| 11 | // Last Modified By : Peter A. Buhr |
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[4cf617e] | 12 | // Last Modified On : Mon Jul 27 23:16:18 2020 |
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| 13 | // Update Count : 815 |
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[73abe95] | 14 | // |
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[c4f68dc] | 15 | |
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| 16 | #include <unistd.h> // sbrk, sysconf |
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| 17 | #include <stdbool.h> // true, false |
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| 18 | #include <stdio.h> // snprintf, fileno |
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| 19 | #include <errno.h> // errno |
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[1e034d9] | 20 | #include <string.h> // memset, memcpy |
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[1076d05] | 21 | #include <limits.h> // ULONG_MAX |
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[ada0246d] | 22 | #include <malloc.h> // memalign, malloc_usable_size |
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[c4f68dc] | 23 | #include <sys/mman.h> // mmap, munmap |
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| 24 | |
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[bcb14b5] | 25 | #include "bits/align.hfa" // libPow2 |
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| 26 | #include "bits/defs.hfa" // likely, unlikely |
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| 27 | #include "bits/locks.hfa" // __spinlock_t |
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[73abe95] | 28 | #include "startup.hfa" // STARTUP_PRIORITY_MEMORY |
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[1e034d9] | 29 | //#include "stdlib.hfa" // bsearchl |
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[1076d05] | 30 | #include "bitmanip.hfa" // ceiling |
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[c4f68dc] | 31 | |
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[95eb7cf] | 32 | #define MIN(x, y) (y > x ? x : y) |
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[c4f68dc] | 33 | |
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[93c2e0a] | 34 | static bool traceHeap = false; |
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[d46ed6e] | 35 | |
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[baf608a] | 36 | inline bool traceHeap() { return traceHeap; } |
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[d46ed6e] | 37 | |
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[93c2e0a] | 38 | bool traceHeapOn() { |
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| 39 | bool temp = traceHeap; |
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[d46ed6e] | 40 | traceHeap = true; |
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| 41 | return temp; |
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| 42 | } // traceHeapOn |
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| 43 | |
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[93c2e0a] | 44 | bool traceHeapOff() { |
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| 45 | bool temp = traceHeap; |
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[d46ed6e] | 46 | traceHeap = false; |
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| 47 | return temp; |
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| 48 | } // traceHeapOff |
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| 49 | |
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[baf608a] | 50 | bool traceHeapTerm() { return false; } |
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| 51 | |
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[d46ed6e] | 52 | |
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[95eb7cf] | 53 | static bool prtFree = false; |
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[d46ed6e] | 54 | |
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[95eb7cf] | 55 | inline bool prtFree() { |
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| 56 | return prtFree; |
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| 57 | } // prtFree |
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[5d4fa18] | 58 | |
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[95eb7cf] | 59 | bool prtFreeOn() { |
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| 60 | bool temp = prtFree; |
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| 61 | prtFree = true; |
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[5d4fa18] | 62 | return temp; |
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[95eb7cf] | 63 | } // prtFreeOn |
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[5d4fa18] | 64 | |
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[95eb7cf] | 65 | bool prtFreeOff() { |
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| 66 | bool temp = prtFree; |
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| 67 | prtFree = false; |
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[5d4fa18] | 68 | return temp; |
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[95eb7cf] | 69 | } // prtFreeOff |
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[5d4fa18] | 70 | |
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| 71 | |
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[e723100] | 72 | enum { |
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[1e034d9] | 73 | // Define the default extension heap amount in units of bytes. When the uC++ supplied heap reaches the brk address, |
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| 74 | // the brk address is extended by the extension amount. |
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[e723100] | 75 | __CFA_DEFAULT_HEAP_EXPANSION__ = (1 * 1024 * 1024), |
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[1e034d9] | 76 | |
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| 77 | // Define the mmap crossover point during allocation. Allocations less than this amount are allocated from buckets; |
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| 78 | // values greater than or equal to this value are mmap from the operating system. |
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| 79 | __CFA_DEFAULT_MMAP_START__ = (512 * 1024 + 1), |
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[e723100] | 80 | }; |
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| 81 | |
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| 82 | size_t default_heap_expansion() __attribute__(( weak )) { |
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| 83 | return __CFA_DEFAULT_HEAP_EXPANSION__; |
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| 84 | } // default_heap_expansion |
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| 85 | |
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[1076d05] | 86 | size_t default_mmap_start() __attribute__(( weak )) { |
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| 87 | return __CFA_DEFAULT_MMAP_START__; |
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| 88 | } // default_mmap_start |
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| 89 | |
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[e723100] | 90 | |
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[f0b3f51] | 91 | #ifdef __CFA_DEBUG__ |
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[93c2e0a] | 92 | static unsigned int allocFree; // running total of allocations minus frees |
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[d46ed6e] | 93 | |
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[95eb7cf] | 94 | static void prtUnfreed() { |
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[b6830d74] | 95 | if ( allocFree != 0 ) { |
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[d46ed6e] | 96 | // DO NOT USE STREAMS AS THEY MAY BE UNAVAILABLE AT THIS POINT. |
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[4ea1c6d] | 97 | char helpText[512]; |
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| 98 | int len = snprintf( helpText, sizeof(helpText), "CFA warning (UNIX pid:%ld) : program terminating with %u(0x%x) bytes of storage allocated but not freed.\n" |
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| 99 | "Possible cause is unfreed storage allocated by the program or system/library routines called from the program.\n", |
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| 100 | (long int)getpid(), allocFree, allocFree ); // always print the UNIX pid |
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| 101 | __cfaabi_bits_write( STDERR_FILENO, helpText, len ); // print debug/nodebug |
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[b6830d74] | 102 | } // if |
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[95eb7cf] | 103 | } // prtUnfreed |
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[d46ed6e] | 104 | |
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| 105 | extern "C" { |
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[bcb14b5] | 106 | void heapAppStart() { // called by __cfaabi_appready_startup |
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| 107 | allocFree = 0; |
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| 108 | } // heapAppStart |
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| 109 | |
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| 110 | void heapAppStop() { // called by __cfaabi_appready_startdown |
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| 111 | fclose( stdin ); fclose( stdout ); |
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[95eb7cf] | 112 | prtUnfreed(); |
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[bcb14b5] | 113 | } // heapAppStop |
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[d46ed6e] | 114 | } // extern "C" |
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| 115 | #endif // __CFA_DEBUG__ |
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| 116 | |
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[1e034d9] | 117 | |
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[e723100] | 118 | // statically allocated variables => zero filled. |
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| 119 | static size_t pageSize; // architecture pagesize |
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| 120 | static size_t heapExpand; // sbrk advance |
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| 121 | static size_t mmapStart; // cross over point for mmap |
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| 122 | static unsigned int maxBucketsUsed; // maximum number of buckets in use |
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| 123 | |
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| 124 | |
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| 125 | #define SPINLOCK 0 |
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| 126 | #define LOCKFREE 1 |
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| 127 | #define BUCKETLOCK SPINLOCK |
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[9c438546] | 128 | #if BUCKETLOCK == SPINLOCK |
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| 129 | #elif BUCKETLOCK == LOCKFREE |
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| 130 | #include <stackLockFree.hfa> |
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| 131 | #else |
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| 132 | #error undefined lock type for bucket lock |
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[e723100] | 133 | #endif // LOCKFREE |
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| 134 | |
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| 135 | // Recursive definitions: HeapManager needs size of bucket array and bucket area needs sizeof HeapManager storage. |
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| 136 | // Break recusion by hardcoding number of buckets and statically checking number is correct after bucket array defined. |
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[95eb7cf] | 137 | enum { NoBucketSizes = 91 }; // number of buckets sizes |
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[d46ed6e] | 138 | |
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[c4f68dc] | 139 | struct HeapManager { |
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| 140 | struct Storage { |
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[bcb14b5] | 141 | struct Header { // header |
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[c4f68dc] | 142 | union Kind { |
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| 143 | struct RealHeader { |
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| 144 | union { |
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[bcb14b5] | 145 | struct { // 4-byte word => 8-byte header, 8-byte word => 16-byte header |
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[f0b3f51] | 146 | #if __BYTE_ORDER__ == __ORDER_BIG_ENDIAN__ && __SIZEOF_POINTER__ == 4 |
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[9c438546] | 147 | uint64_t padding; // unused, force home/blocksize to overlay alignment in fake header |
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[bcb14b5] | 148 | #endif // __BYTE_ORDER__ == __ORDER_BIG_ENDIAN__ && __SIZEOF_POINTER__ == 4 |
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[c4f68dc] | 149 | |
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| 150 | union { |
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[9c438546] | 151 | // FreeHeader * home; // allocated block points back to home locations (must overlay alignment) |
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[cfbc703d] | 152 | // 2nd low-order bit => zero filled |
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[c4f68dc] | 153 | void * home; // allocated block points back to home locations (must overlay alignment) |
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| 154 | size_t blockSize; // size for munmap (must overlay alignment) |
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[9c438546] | 155 | #if BUCKETLOCK == SPINLOCK |
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[c4f68dc] | 156 | Storage * next; // freed block points next freed block of same size |
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| 157 | #endif // SPINLOCK |
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| 158 | }; |
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[9c438546] | 159 | size_t size; // allocation size in bytes |
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[c4f68dc] | 160 | |
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[f0b3f51] | 161 | #if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__ && __SIZEOF_POINTER__ == 4 |
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[9c438546] | 162 | uint64_t padding; // unused, force home/blocksize to overlay alignment in fake header |
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[bcb14b5] | 163 | #endif // __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__ && __SIZEOF_POINTER__ == 4 |
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[c4f68dc] | 164 | }; |
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[9c438546] | 165 | #if BUCKETLOCK == LOCKFREE |
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| 166 | Link(Storage) next; // freed block points next freed block of same size (double-wide) |
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[c4f68dc] | 167 | #endif // LOCKFREE |
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| 168 | }; |
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[93c2e0a] | 169 | } real; // RealHeader |
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[9c438546] | 170 | |
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[c4f68dc] | 171 | struct FakeHeader { |
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| 172 | #if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__ |
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[9c438546] | 173 | uint32_t alignment; // 1st low-order bit => fake header & alignment |
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[f0b3f51] | 174 | #endif // __ORDER_LITTLE_ENDIAN__ |
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[c4f68dc] | 175 | |
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| 176 | uint32_t offset; |
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| 177 | |
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| 178 | #if __BYTE_ORDER__ == __ORDER_BIG_ENDIAN__ |
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| 179 | uint32_t alignment; // low-order bits of home/blockSize used for tricks |
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[f0b3f51] | 180 | #endif // __ORDER_BIG_ENDIAN__ |
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[93c2e0a] | 181 | } fake; // FakeHeader |
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| 182 | } kind; // Kind |
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[bcb14b5] | 183 | } header; // Header |
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[95eb7cf] | 184 | char pad[libAlign() - sizeof( Header )]; |
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[bcb14b5] | 185 | char data[0]; // storage |
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[c4f68dc] | 186 | }; // Storage |
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| 187 | |
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[95eb7cf] | 188 | static_assert( libAlign() >= sizeof( Storage ), "libAlign() < sizeof( Storage )" ); |
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[c4f68dc] | 189 | |
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| 190 | struct FreeHeader { |
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[9c438546] | 191 | #if BUCKETLOCK == SPINLOCK |
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[bcb14b5] | 192 | __spinlock_t lock; // must be first field for alignment |
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| 193 | Storage * freeList; |
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[c4f68dc] | 194 | #else |
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[9c438546] | 195 | StackLF(Storage) freeList; |
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| 196 | #endif // BUCKETLOCK |
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[bcb14b5] | 197 | size_t blockSize; // size of allocations on this list |
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[c4f68dc] | 198 | }; // FreeHeader |
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| 199 | |
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| 200 | // must be first fields for alignment |
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| 201 | __spinlock_t extlock; // protects allocation-buffer extension |
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| 202 | FreeHeader freeLists[NoBucketSizes]; // buckets for different allocation sizes |
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| 203 | |
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| 204 | void * heapBegin; // start of heap |
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| 205 | void * heapEnd; // logical end of heap |
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| 206 | size_t heapRemaining; // amount of storage not allocated in the current chunk |
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| 207 | }; // HeapManager |
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| 208 | |
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[9c438546] | 209 | #if BUCKETLOCK == LOCKFREE |
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[c45d2fa] | 210 | static inline { |
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[8b58bae] | 211 | Link(HeapManager.Storage) * ?`next( HeapManager.Storage * this ) { return &this->header.kind.real.next; } |
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[c45d2fa] | 212 | void ?{}( HeapManager.FreeHeader & ) {} |
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| 213 | void ^?{}( HeapManager.FreeHeader & ) {} |
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| 214 | } // distribution |
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[9c438546] | 215 | #endif // LOCKFREE |
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| 216 | |
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[7b149bc] | 217 | static inline size_t getKey( const HeapManager.FreeHeader & freeheader ) { return freeheader.blockSize; } |
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[5d4fa18] | 218 | |
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[e723100] | 219 | |
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| 220 | #define FASTLOOKUP |
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| 221 | #define __STATISTICS__ |
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[5d4fa18] | 222 | |
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[1e034d9] | 223 | // Bucket size must be multiple of 16. |
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[5d4fa18] | 224 | // Powers of 2 are common allocation sizes, so make powers of 2 generate the minimum required size. |
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[e723100] | 225 | static const unsigned int bucketSizes[] @= { // different bucket sizes |
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[95eb7cf] | 226 | 16, 32, 48, 64 + sizeof(HeapManager.Storage), // 4 |
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| 227 | 96, 112, 128 + sizeof(HeapManager.Storage), // 3 |
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| 228 | 160, 192, 224, 256 + sizeof(HeapManager.Storage), // 4 |
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| 229 | 320, 384, 448, 512 + sizeof(HeapManager.Storage), // 4 |
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| 230 | 640, 768, 896, 1_024 + sizeof(HeapManager.Storage), // 4 |
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| 231 | 1_536, 2_048 + sizeof(HeapManager.Storage), // 2 |
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| 232 | 2_560, 3_072, 3_584, 4_096 + sizeof(HeapManager.Storage), // 4 |
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| 233 | 6_144, 8_192 + sizeof(HeapManager.Storage), // 2 |
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| 234 | 9_216, 10_240, 11_264, 12_288, 13_312, 14_336, 15_360, 16_384 + sizeof(HeapManager.Storage), // 8 |
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| 235 | 18_432, 20_480, 22_528, 24_576, 26_624, 28_672, 30_720, 32_768 + sizeof(HeapManager.Storage), // 8 |
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| 236 | 36_864, 40_960, 45_056, 49_152, 53_248, 57_344, 61_440, 65_536 + sizeof(HeapManager.Storage), // 8 |
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| 237 | 73_728, 81_920, 90_112, 98_304, 106_496, 114_688, 122_880, 131_072 + sizeof(HeapManager.Storage), // 8 |
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| 238 | 147_456, 163_840, 180_224, 196_608, 212_992, 229_376, 245_760, 262_144 + sizeof(HeapManager.Storage), // 8 |
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| 239 | 294_912, 327_680, 360_448, 393_216, 425_984, 458_752, 491_520, 524_288 + sizeof(HeapManager.Storage), // 8 |
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| 240 | 655_360, 786_432, 917_504, 1_048_576 + sizeof(HeapManager.Storage), // 4 |
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| 241 | 1_179_648, 1_310_720, 1_441_792, 1_572_864, 1_703_936, 1_835_008, 1_966_080, 2_097_152 + sizeof(HeapManager.Storage), // 8 |
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| 242 | 2_621_440, 3_145_728, 3_670_016, 4_194_304 + sizeof(HeapManager.Storage), // 4 |
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[5d4fa18] | 243 | }; |
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[e723100] | 244 | |
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| 245 | static_assert( NoBucketSizes == sizeof(bucketSizes) / sizeof(bucketSizes[0]), "size of bucket array wrong" ); |
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| 246 | |
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[5d4fa18] | 247 | #ifdef FASTLOOKUP |
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[a92a4fe] | 248 | enum { LookupSizes = 65_536 + sizeof(HeapManager.Storage) }; // number of fast lookup sizes |
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[5d4fa18] | 249 | static unsigned char lookup[LookupSizes]; // O(1) lookup for small sizes |
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| 250 | #endif // FASTLOOKUP |
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| 251 | |
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[95eb7cf] | 252 | static int mmapFd = -1; // fake or actual fd for anonymous file |
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[5d4fa18] | 253 | #ifdef __CFA_DEBUG__ |
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[93c2e0a] | 254 | static bool heapBoot = 0; // detect recursion during boot |
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[5d4fa18] | 255 | #endif // __CFA_DEBUG__ |
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[9c438546] | 256 | |
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| 257 | // The constructor for heapManager is called explicitly in memory_startup. |
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[5d4fa18] | 258 | static HeapManager heapManager __attribute__(( aligned (128) )) @= {}; // size of cache line to prevent false sharing |
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| 259 | |
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[c4f68dc] | 260 | |
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| 261 | #ifdef __STATISTICS__ |
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[95eb7cf] | 262 | // Heap statistics counters. |
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| 263 | static unsigned long long int mmap_storage; |
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[c4f68dc] | 264 | static unsigned int mmap_calls; |
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| 265 | static unsigned long long int munmap_storage; |
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| 266 | static unsigned int munmap_calls; |
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| 267 | static unsigned long long int sbrk_storage; |
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| 268 | static unsigned int sbrk_calls; |
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| 269 | static unsigned long long int malloc_storage; |
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| 270 | static unsigned int malloc_calls; |
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| 271 | static unsigned long long int free_storage; |
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| 272 | static unsigned int free_calls; |
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[76e2113] | 273 | static unsigned long long int aalloc_storage; |
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| 274 | static unsigned int aalloc_calls; |
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[c4f68dc] | 275 | static unsigned long long int calloc_storage; |
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| 276 | static unsigned int calloc_calls; |
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| 277 | static unsigned long long int memalign_storage; |
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| 278 | static unsigned int memalign_calls; |
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[76e2113] | 279 | static unsigned long long int amemalign_storage; |
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| 280 | static unsigned int amemalign_calls; |
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[c4f68dc] | 281 | static unsigned long long int cmemalign_storage; |
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| 282 | static unsigned int cmemalign_calls; |
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[cfbc703d] | 283 | static unsigned long long int resize_storage; |
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| 284 | static unsigned int resize_calls; |
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[c4f68dc] | 285 | static unsigned long long int realloc_storage; |
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| 286 | static unsigned int realloc_calls; |
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[95eb7cf] | 287 | // Statistics file descriptor (changed by malloc_stats_fd). |
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| 288 | static int statfd = STDERR_FILENO; // default stderr |
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[c4f68dc] | 289 | |
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| 290 | // Use "write" because streams may be shutdown when calls are made. |
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[d46ed6e] | 291 | static void printStats() { |
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[76e2113] | 292 | char helpText[1024]; |
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[95eb7cf] | 293 | __cfaabi_bits_print_buffer( STDERR_FILENO, helpText, sizeof(helpText), |
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[bcb14b5] | 294 | "\nHeap statistics:\n" |
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| 295 | " malloc: calls %u / storage %llu\n" |
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[76e2113] | 296 | " aalloc: calls %u / storage %llu\n" |
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[bcb14b5] | 297 | " calloc: calls %u / storage %llu\n" |
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| 298 | " memalign: calls %u / storage %llu\n" |
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[76e2113] | 299 | " amemalign: calls %u / storage %llu\n" |
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[bcb14b5] | 300 | " cmemalign: calls %u / storage %llu\n" |
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[cfbc703d] | 301 | " resize: calls %u / storage %llu\n" |
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[bcb14b5] | 302 | " realloc: calls %u / storage %llu\n" |
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| 303 | " free: calls %u / storage %llu\n" |
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| 304 | " mmap: calls %u / storage %llu\n" |
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| 305 | " munmap: calls %u / storage %llu\n" |
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| 306 | " sbrk: calls %u / storage %llu\n", |
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| 307 | malloc_calls, malloc_storage, |
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[76e2113] | 308 | aalloc_calls, calloc_storage, |
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[bcb14b5] | 309 | calloc_calls, calloc_storage, |
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| 310 | memalign_calls, memalign_storage, |
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[76e2113] | 311 | amemalign_calls, amemalign_storage, |
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[bcb14b5] | 312 | cmemalign_calls, cmemalign_storage, |
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[cfbc703d] | 313 | resize_calls, resize_storage, |
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[bcb14b5] | 314 | realloc_calls, realloc_storage, |
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| 315 | free_calls, free_storage, |
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| 316 | mmap_calls, mmap_storage, |
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| 317 | munmap_calls, munmap_storage, |
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| 318 | sbrk_calls, sbrk_storage |
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[c4f68dc] | 319 | ); |
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[d46ed6e] | 320 | } // printStats |
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[c4f68dc] | 321 | |
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[bcb14b5] | 322 | static int printStatsXML( FILE * stream ) { // see malloc_info |
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[76e2113] | 323 | char helpText[1024]; |
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[b6830d74] | 324 | int len = snprintf( helpText, sizeof(helpText), |
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[c4f68dc] | 325 | "<malloc version=\"1\">\n" |
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| 326 | "<heap nr=\"0\">\n" |
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| 327 | "<sizes>\n" |
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| 328 | "</sizes>\n" |
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| 329 | "<total type=\"malloc\" count=\"%u\" size=\"%llu\"/>\n" |
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[76e2113] | 330 | "<total type=\"aalloc\" count=\"%u\" size=\"%llu\"/>\n" |
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[c4f68dc] | 331 | "<total type=\"calloc\" count=\"%u\" size=\"%llu\"/>\n" |
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| 332 | "<total type=\"memalign\" count=\"%u\" size=\"%llu\"/>\n" |
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[76e2113] | 333 | "<total type=\"amemalign\" count=\"%u\" size=\"%llu\"/>\n" |
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[c4f68dc] | 334 | "<total type=\"cmemalign\" count=\"%u\" size=\"%llu\"/>\n" |
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[cfbc703d] | 335 | "<total type=\"resize\" count=\"%u\" size=\"%llu\"/>\n" |
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[c4f68dc] | 336 | "<total type=\"realloc\" count=\"%u\" size=\"%llu\"/>\n" |
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| 337 | "<total type=\"free\" count=\"%u\" size=\"%llu\"/>\n" |
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| 338 | "<total type=\"mmap\" count=\"%u\" size=\"%llu\"/>\n" |
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| 339 | "<total type=\"munmap\" count=\"%u\" size=\"%llu\"/>\n" |
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| 340 | "<total type=\"sbrk\" count=\"%u\" size=\"%llu\"/>\n" |
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| 341 | "</malloc>", |
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| 342 | malloc_calls, malloc_storage, |
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[76e2113] | 343 | aalloc_calls, aalloc_storage, |
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[c4f68dc] | 344 | calloc_calls, calloc_storage, |
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| 345 | memalign_calls, memalign_storage, |
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[76e2113] | 346 | amemalign_calls, amemalign_storage, |
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[c4f68dc] | 347 | cmemalign_calls, cmemalign_storage, |
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[cfbc703d] | 348 | resize_calls, resize_storage, |
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[c4f68dc] | 349 | realloc_calls, realloc_storage, |
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| 350 | free_calls, free_storage, |
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| 351 | mmap_calls, mmap_storage, |
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| 352 | munmap_calls, munmap_storage, |
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| 353 | sbrk_calls, sbrk_storage |
---|
| 354 | ); |
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[95eb7cf] | 355 | __cfaabi_bits_write( fileno( stream ), helpText, len ); // ensures all bytes written or exit |
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| 356 | return len; |
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[d46ed6e] | 357 | } // printStatsXML |
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[c4f68dc] | 358 | #endif // __STATISTICS__ |
---|
| 359 | |
---|
[95eb7cf] | 360 | |
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[1e034d9] | 361 | // thunk problem |
---|
| 362 | size_t Bsearchl( unsigned int key, const unsigned int * vals, size_t dim ) { |
---|
| 363 | size_t l = 0, m, h = dim; |
---|
| 364 | while ( l < h ) { |
---|
| 365 | m = (l + h) / 2; |
---|
| 366 | if ( (unsigned int &)(vals[m]) < key ) { // cast away const |
---|
| 367 | l = m + 1; |
---|
| 368 | } else { |
---|
| 369 | h = m; |
---|
| 370 | } // if |
---|
| 371 | } // while |
---|
| 372 | return l; |
---|
| 373 | } // Bsearchl |
---|
| 374 | |
---|
| 375 | |
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[95eb7cf] | 376 | static inline bool setMmapStart( size_t value ) { // true => mmapped, false => sbrk |
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[1076d05] | 377 | if ( value < pageSize || bucketSizes[NoBucketSizes - 1] < value ) return false; |
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[95eb7cf] | 378 | mmapStart = value; // set global |
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| 379 | |
---|
| 380 | // find the closest bucket size less than or equal to the mmapStart size |
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[1e034d9] | 381 | maxBucketsUsed = Bsearchl( (unsigned int)mmapStart, bucketSizes, NoBucketSizes ); // binary search |
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[95eb7cf] | 382 | assert( maxBucketsUsed < NoBucketSizes ); // subscript failure ? |
---|
| 383 | assert( mmapStart <= bucketSizes[maxBucketsUsed] ); // search failure ? |
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[1076d05] | 384 | return true; |
---|
[95eb7cf] | 385 | } // setMmapStart |
---|
| 386 | |
---|
| 387 | |
---|
[cfbc703d] | 388 | // <-------+----------------------------------------------------> bsize (bucket size) |
---|
| 389 | // |header |addr |
---|
| 390 | //================================================================================== |
---|
| 391 | // align/offset | |
---|
| 392 | // <-----------------<------------+-----------------------------> bsize (bucket size) |
---|
| 393 | // |fake-header | addr |
---|
| 394 | #define headerAddr( addr ) ((HeapManager.Storage.Header *)( (char *)addr - sizeof(HeapManager.Storage) )) |
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| 395 | #define realHeader( header ) ((HeapManager.Storage.Header *)((char *)header - header->kind.fake.offset)) |
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| 396 | |
---|
| 397 | // <-------<<--------------------- dsize ---------------------->> bsize (bucket size) |
---|
| 398 | // |header |addr |
---|
| 399 | //================================================================================== |
---|
| 400 | // align/offset | |
---|
| 401 | // <------------------------------<<---------- dsize --------->>> bsize (bucket size) |
---|
| 402 | // |fake-header |addr |
---|
| 403 | #define dataStorage( bsize, addr, header ) (bsize - ( (char *)addr - (char *)header )) |
---|
| 404 | |
---|
| 405 | |
---|
[9c438546] | 406 | // static inline void noMemory() { |
---|
| 407 | // abort( "Heap memory exhausted at %zu bytes.\n" |
---|
| 408 | // "Possible cause is very large memory allocation and/or large amount of unfreed storage allocated by the program or system/library routines.", |
---|
| 409 | // ((char *)(sbrk( 0 )) - (char *)(heapManager.heapBegin)) ); |
---|
| 410 | // } // noMemory |
---|
| 411 | |
---|
| 412 | |
---|
[cfbc703d] | 413 | static inline void checkAlign( size_t alignment ) { |
---|
| 414 | if ( alignment < libAlign() || ! libPow2( alignment ) ) { |
---|
| 415 | abort( "Alignment %zu for memory allocation is less than %d and/or not a power of 2.", alignment, libAlign() ); |
---|
| 416 | } // if |
---|
| 417 | } // checkAlign |
---|
| 418 | |
---|
| 419 | |
---|
[e3fea42] | 420 | static inline void checkHeader( bool check, const char name[], void * addr ) { |
---|
[b6830d74] | 421 | if ( unlikely( check ) ) { // bad address ? |
---|
[c4f68dc] | 422 | abort( "Attempt to %s storage %p with address outside the heap.\n" |
---|
[bcb14b5] | 423 | "Possible cause is duplicate free on same block or overwriting of memory.", |
---|
| 424 | name, addr ); |
---|
[b6830d74] | 425 | } // if |
---|
[c4f68dc] | 426 | } // checkHeader |
---|
| 427 | |
---|
[95eb7cf] | 428 | |
---|
| 429 | static inline void fakeHeader( HeapManager.Storage.Header *& header, size_t & alignment ) { |
---|
[b6830d74] | 430 | if ( unlikely( (header->kind.fake.alignment & 1) == 1 ) ) { // fake header ? |
---|
[c4f68dc] | 431 | alignment = header->kind.fake.alignment & -2; // remove flag from value |
---|
| 432 | #ifdef __CFA_DEBUG__ |
---|
| 433 | checkAlign( alignment ); // check alignment |
---|
| 434 | #endif // __CFA_DEBUG__ |
---|
[cfbc703d] | 435 | header = realHeader( header ); // backup from fake to real header |
---|
[b6830d74] | 436 | } // if |
---|
[c4f68dc] | 437 | } // fakeHeader |
---|
| 438 | |
---|
[95eb7cf] | 439 | |
---|
[9c438546] | 440 | static inline bool headers( const char name[] __attribute__(( unused )), void * addr, HeapManager.Storage.Header *& header, HeapManager.FreeHeader *& freeElem, |
---|
| 441 | size_t & size, size_t & alignment ) with( heapManager ) { |
---|
[b6830d74] | 442 | header = headerAddr( addr ); |
---|
[c4f68dc] | 443 | |
---|
[b6830d74] | 444 | if ( unlikely( heapEnd < addr ) ) { // mmapped ? |
---|
[95eb7cf] | 445 | fakeHeader( header, alignment ); |
---|
[c4f68dc] | 446 | size = header->kind.real.blockSize & -3; // mmap size |
---|
| 447 | return true; |
---|
[b6830d74] | 448 | } // if |
---|
[c4f68dc] | 449 | |
---|
| 450 | #ifdef __CFA_DEBUG__ |
---|
[1076d05] | 451 | checkHeader( addr < heapBegin, name, addr ); // bad low address ? |
---|
[c4f68dc] | 452 | #endif // __CFA_DEBUG__ |
---|
[b6830d74] | 453 | |
---|
[bcb14b5] | 454 | // header may be safe to dereference |
---|
[95eb7cf] | 455 | fakeHeader( header, alignment ); |
---|
[c4f68dc] | 456 | #ifdef __CFA_DEBUG__ |
---|
[bcb14b5] | 457 | checkHeader( header < (HeapManager.Storage.Header *)heapBegin || (HeapManager.Storage.Header *)heapEnd < header, name, addr ); // bad address ? (offset could be + or -) |
---|
[c4f68dc] | 458 | #endif // __CFA_DEBUG__ |
---|
| 459 | |
---|
[bcb14b5] | 460 | freeElem = (HeapManager.FreeHeader *)((size_t)header->kind.real.home & -3); |
---|
[c4f68dc] | 461 | #ifdef __CFA_DEBUG__ |
---|
[bcb14b5] | 462 | if ( freeElem < &freeLists[0] || &freeLists[NoBucketSizes] <= freeElem ) { |
---|
| 463 | abort( "Attempt to %s storage %p with corrupted header.\n" |
---|
| 464 | "Possible cause is duplicate free on same block or overwriting of header information.", |
---|
| 465 | name, addr ); |
---|
| 466 | } // if |
---|
[c4f68dc] | 467 | #endif // __CFA_DEBUG__ |
---|
[bcb14b5] | 468 | size = freeElem->blockSize; |
---|
| 469 | return false; |
---|
[c4f68dc] | 470 | } // headers |
---|
| 471 | |
---|
| 472 | |
---|
[9c438546] | 473 | static inline void * extend( size_t size ) with( heapManager ) { |
---|
[b6830d74] | 474 | lock( extlock __cfaabi_dbg_ctx2 ); |
---|
| 475 | ptrdiff_t rem = heapRemaining - size; |
---|
| 476 | if ( rem < 0 ) { |
---|
[c4f68dc] | 477 | // If the size requested is bigger than the current remaining storage, increase the size of the heap. |
---|
| 478 | |
---|
| 479 | size_t increase = libCeiling( size > heapExpand ? size : heapExpand, libAlign() ); |
---|
| 480 | if ( sbrk( increase ) == (void *)-1 ) { |
---|
| 481 | unlock( extlock ); |
---|
| 482 | errno = ENOMEM; |
---|
[95eb7cf] | 483 | return 0p; |
---|
[c4f68dc] | 484 | } // if |
---|
[bcb14b5] | 485 | #ifdef __STATISTICS__ |
---|
[c4f68dc] | 486 | sbrk_calls += 1; |
---|
| 487 | sbrk_storage += increase; |
---|
[bcb14b5] | 488 | #endif // __STATISTICS__ |
---|
| 489 | #ifdef __CFA_DEBUG__ |
---|
[c4f68dc] | 490 | // Set new memory to garbage so subsequent uninitialized usages might fail. |
---|
| 491 | memset( (char *)heapEnd + heapRemaining, '\377', increase ); |
---|
[bcb14b5] | 492 | #endif // __CFA_DEBUG__ |
---|
[c4f68dc] | 493 | rem = heapRemaining + increase - size; |
---|
[b6830d74] | 494 | } // if |
---|
[c4f68dc] | 495 | |
---|
[b6830d74] | 496 | HeapManager.Storage * block = (HeapManager.Storage *)heapEnd; |
---|
| 497 | heapRemaining = rem; |
---|
| 498 | heapEnd = (char *)heapEnd + size; |
---|
| 499 | unlock( extlock ); |
---|
| 500 | return block; |
---|
[c4f68dc] | 501 | } // extend |
---|
| 502 | |
---|
| 503 | |
---|
[9c438546] | 504 | static inline void * doMalloc( size_t size ) with( heapManager ) { |
---|
[7b149bc] | 505 | HeapManager.Storage * block; // pointer to new block of storage |
---|
[c4f68dc] | 506 | |
---|
[b6830d74] | 507 | // Look up size in the size list. Make sure the user request includes space for the header that must be allocated |
---|
| 508 | // along with the block and is a multiple of the alignment size. |
---|
[c4f68dc] | 509 | |
---|
[1076d05] | 510 | if ( unlikely( size > ULONG_MAX - sizeof(HeapManager.Storage) ) ) return 0p; |
---|
[b6830d74] | 511 | size_t tsize = size + sizeof(HeapManager.Storage); |
---|
| 512 | if ( likely( tsize < mmapStart ) ) { // small size => sbrk |
---|
[e723100] | 513 | size_t posn; |
---|
| 514 | #ifdef FASTLOOKUP |
---|
| 515 | if ( tsize < LookupSizes ) posn = lookup[tsize]; |
---|
| 516 | else |
---|
| 517 | #endif // FASTLOOKUP |
---|
| 518 | posn = Bsearchl( (unsigned int)tsize, bucketSizes, (size_t)maxBucketsUsed ); |
---|
| 519 | HeapManager.FreeHeader * freeElem = &freeLists[posn]; |
---|
| 520 | // #ifdef FASTLOOKUP |
---|
| 521 | // if ( tsize < LookupSizes ) |
---|
| 522 | // freeElem = &freeLists[lookup[tsize]]; |
---|
| 523 | // else |
---|
| 524 | // #endif // FASTLOOKUP |
---|
| 525 | // freeElem = bsearchl( tsize, freeLists, (size_t)maxBucketsUsed ); // binary search |
---|
| 526 | // HeapManager.FreeHeader * freeElem = |
---|
| 527 | // #ifdef FASTLOOKUP |
---|
| 528 | // tsize < LookupSizes ? &freeLists[lookup[tsize]] : |
---|
| 529 | // #endif // FASTLOOKUP |
---|
| 530 | // bsearchl( tsize, freeLists, (size_t)maxBucketsUsed ); // binary search |
---|
[c4f68dc] | 531 | assert( freeElem <= &freeLists[maxBucketsUsed] ); // subscripting error ? |
---|
| 532 | assert( tsize <= freeElem->blockSize ); // search failure ? |
---|
| 533 | tsize = freeElem->blockSize; // total space needed for request |
---|
| 534 | |
---|
| 535 | // Spin until the lock is acquired for this particular size of block. |
---|
| 536 | |
---|
[9c438546] | 537 | #if BUCKETLOCK == SPINLOCK |
---|
[bcb14b5] | 538 | lock( freeElem->lock __cfaabi_dbg_ctx2 ); |
---|
| 539 | block = freeElem->freeList; // remove node from stack |
---|
[c4f68dc] | 540 | #else |
---|
[9c438546] | 541 | block = pop( freeElem->freeList ); |
---|
| 542 | #endif // BUCKETLOCK |
---|
[95eb7cf] | 543 | if ( unlikely( block == 0p ) ) { // no free block ? |
---|
[9c438546] | 544 | #if BUCKETLOCK == SPINLOCK |
---|
[c4f68dc] | 545 | unlock( freeElem->lock ); |
---|
[9c438546] | 546 | #endif // BUCKETLOCK |
---|
[bcb14b5] | 547 | |
---|
[c4f68dc] | 548 | // Freelist for that size was empty, so carve it out of the heap if there's enough left, or get some more |
---|
| 549 | // and then carve it off. |
---|
| 550 | |
---|
| 551 | block = (HeapManager.Storage *)extend( tsize ); // mutual exclusion on call |
---|
[9c438546] | 552 | if ( unlikely( block == 0p ) ) return 0p; |
---|
| 553 | #if BUCKETLOCK == SPINLOCK |
---|
[c4f68dc] | 554 | } else { |
---|
| 555 | freeElem->freeList = block->header.kind.real.next; |
---|
| 556 | unlock( freeElem->lock ); |
---|
[9c438546] | 557 | #endif // BUCKETLOCK |
---|
[c4f68dc] | 558 | } // if |
---|
| 559 | |
---|
| 560 | block->header.kind.real.home = freeElem; // pointer back to free list of apropriate size |
---|
[bcb14b5] | 561 | } else { // large size => mmap |
---|
[1076d05] | 562 | if ( unlikely( size > ULONG_MAX - pageSize ) ) return 0p; |
---|
[c4f68dc] | 563 | tsize = libCeiling( tsize, pageSize ); // must be multiple of page size |
---|
| 564 | #ifdef __STATISTICS__ |
---|
[bcb14b5] | 565 | __atomic_add_fetch( &mmap_calls, 1, __ATOMIC_SEQ_CST ); |
---|
| 566 | __atomic_add_fetch( &mmap_storage, tsize, __ATOMIC_SEQ_CST ); |
---|
[c4f68dc] | 567 | #endif // __STATISTICS__ |
---|
| 568 | block = (HeapManager.Storage *)mmap( 0, tsize, PROT_READ | PROT_WRITE, MAP_PRIVATE | MAP_ANONYMOUS, mmapFd, 0 ); |
---|
| 569 | if ( block == (HeapManager.Storage *)MAP_FAILED ) { |
---|
| 570 | // Do not call strerror( errno ) as it may call malloc. |
---|
| 571 | abort( "(HeapManager &)0x%p.doMalloc() : internal error, mmap failure, size:%zu error:%d.", &heapManager, tsize, errno ); |
---|
| 572 | } // if |
---|
[bcb14b5] | 573 | #ifdef __CFA_DEBUG__ |
---|
[c4f68dc] | 574 | // Set new memory to garbage so subsequent uninitialized usages might fail. |
---|
| 575 | memset( block, '\377', tsize ); |
---|
[bcb14b5] | 576 | #endif // __CFA_DEBUG__ |
---|
[c4f68dc] | 577 | block->header.kind.real.blockSize = tsize; // storage size for munmap |
---|
[bcb14b5] | 578 | } // if |
---|
[c4f68dc] | 579 | |
---|
[9c438546] | 580 | block->header.kind.real.size = size; // store allocation size |
---|
[95eb7cf] | 581 | void * addr = &(block->data); // adjust off header to user bytes |
---|
[c4f68dc] | 582 | |
---|
| 583 | #ifdef __CFA_DEBUG__ |
---|
[95eb7cf] | 584 | assert( ((uintptr_t)addr & (libAlign() - 1)) == 0 ); // minimum alignment ? |
---|
[bcb14b5] | 585 | __atomic_add_fetch( &allocFree, tsize, __ATOMIC_SEQ_CST ); |
---|
| 586 | if ( traceHeap() ) { |
---|
| 587 | enum { BufferSize = 64 }; |
---|
| 588 | char helpText[BufferSize]; |
---|
[95eb7cf] | 589 | int len = snprintf( helpText, BufferSize, "%p = Malloc( %zu ) (allocated %zu)\n", addr, size, tsize ); |
---|
| 590 | // int len = snprintf( helpText, BufferSize, "Malloc %p %zu\n", addr, size ); |
---|
| 591 | __cfaabi_bits_write( STDERR_FILENO, helpText, len ); // print debug/nodebug |
---|
[bcb14b5] | 592 | } // if |
---|
[c4f68dc] | 593 | #endif // __CFA_DEBUG__ |
---|
| 594 | |
---|
[95eb7cf] | 595 | return addr; |
---|
[c4f68dc] | 596 | } // doMalloc |
---|
| 597 | |
---|
| 598 | |
---|
[9c438546] | 599 | static inline void doFree( void * addr ) with( heapManager ) { |
---|
[c4f68dc] | 600 | #ifdef __CFA_DEBUG__ |
---|
[95eb7cf] | 601 | if ( unlikely( heapManager.heapBegin == 0p ) ) { |
---|
[bcb14b5] | 602 | abort( "doFree( %p ) : internal error, called before heap is initialized.", addr ); |
---|
| 603 | } // if |
---|
[c4f68dc] | 604 | #endif // __CFA_DEBUG__ |
---|
| 605 | |
---|
[b6830d74] | 606 | HeapManager.Storage.Header * header; |
---|
| 607 | HeapManager.FreeHeader * freeElem; |
---|
| 608 | size_t size, alignment; // not used (see realloc) |
---|
[c4f68dc] | 609 | |
---|
[b6830d74] | 610 | if ( headers( "free", addr, header, freeElem, size, alignment ) ) { // mmapped ? |
---|
[c4f68dc] | 611 | #ifdef __STATISTICS__ |
---|
[bcb14b5] | 612 | __atomic_add_fetch( &munmap_calls, 1, __ATOMIC_SEQ_CST ); |
---|
| 613 | __atomic_add_fetch( &munmap_storage, size, __ATOMIC_SEQ_CST ); |
---|
[c4f68dc] | 614 | #endif // __STATISTICS__ |
---|
| 615 | if ( munmap( header, size ) == -1 ) { |
---|
| 616 | #ifdef __CFA_DEBUG__ |
---|
| 617 | abort( "Attempt to deallocate storage %p not allocated or with corrupt header.\n" |
---|
[bcb14b5] | 618 | "Possible cause is invalid pointer.", |
---|
| 619 | addr ); |
---|
[c4f68dc] | 620 | #endif // __CFA_DEBUG__ |
---|
| 621 | } // if |
---|
[bcb14b5] | 622 | } else { |
---|
[c4f68dc] | 623 | #ifdef __CFA_DEBUG__ |
---|
[bcb14b5] | 624 | // Set free memory to garbage so subsequent usages might fail. |
---|
| 625 | memset( ((HeapManager.Storage *)header)->data, '\377', freeElem->blockSize - sizeof( HeapManager.Storage ) ); |
---|
[c4f68dc] | 626 | #endif // __CFA_DEBUG__ |
---|
| 627 | |
---|
| 628 | #ifdef __STATISTICS__ |
---|
[bcb14b5] | 629 | free_storage += size; |
---|
[c4f68dc] | 630 | #endif // __STATISTICS__ |
---|
[9c438546] | 631 | #if BUCKETLOCK == SPINLOCK |
---|
[bcb14b5] | 632 | lock( freeElem->lock __cfaabi_dbg_ctx2 ); // acquire spin lock |
---|
| 633 | header->kind.real.next = freeElem->freeList; // push on stack |
---|
| 634 | freeElem->freeList = (HeapManager.Storage *)header; |
---|
| 635 | unlock( freeElem->lock ); // release spin lock |
---|
[c4f68dc] | 636 | #else |
---|
[9c438546] | 637 | push( freeElem->freeList, *(HeapManager.Storage *)header ); |
---|
| 638 | #endif // BUCKETLOCK |
---|
[bcb14b5] | 639 | } // if |
---|
[c4f68dc] | 640 | |
---|
| 641 | #ifdef __CFA_DEBUG__ |
---|
[bcb14b5] | 642 | __atomic_add_fetch( &allocFree, -size, __ATOMIC_SEQ_CST ); |
---|
| 643 | if ( traceHeap() ) { |
---|
[7b149bc] | 644 | enum { BufferSize = 64 }; |
---|
| 645 | char helpText[BufferSize]; |
---|
[bcb14b5] | 646 | int len = snprintf( helpText, sizeof(helpText), "Free( %p ) size:%zu\n", addr, size ); |
---|
[95eb7cf] | 647 | __cfaabi_bits_write( STDERR_FILENO, helpText, len ); // print debug/nodebug |
---|
[bcb14b5] | 648 | } // if |
---|
[c4f68dc] | 649 | #endif // __CFA_DEBUG__ |
---|
| 650 | } // doFree |
---|
| 651 | |
---|
| 652 | |
---|
[9c438546] | 653 | size_t prtFree( HeapManager & manager ) with( manager ) { |
---|
[b6830d74] | 654 | size_t total = 0; |
---|
[c4f68dc] | 655 | #ifdef __STATISTICS__ |
---|
[95eb7cf] | 656 | __cfaabi_bits_acquire(); |
---|
| 657 | __cfaabi_bits_print_nolock( STDERR_FILENO, "\nBin lists (bin size : free blocks on list)\n" ); |
---|
[c4f68dc] | 658 | #endif // __STATISTICS__ |
---|
[b6830d74] | 659 | for ( unsigned int i = 0; i < maxBucketsUsed; i += 1 ) { |
---|
[d46ed6e] | 660 | size_t size = freeLists[i].blockSize; |
---|
| 661 | #ifdef __STATISTICS__ |
---|
| 662 | unsigned int N = 0; |
---|
| 663 | #endif // __STATISTICS__ |
---|
[b6830d74] | 664 | |
---|
[9c438546] | 665 | #if BUCKETLOCK == SPINLOCK |
---|
[95eb7cf] | 666 | for ( HeapManager.Storage * p = freeLists[i].freeList; p != 0p; p = p->header.kind.real.next ) { |
---|
[d46ed6e] | 667 | #else |
---|
[9c438546] | 668 | for ( HeapManager.Storage * p = top( freeLists[i].freeList ); p != 0p; /* p = getNext( p )->top */) { |
---|
[0f89d4f] | 669 | typeof(p) temp = ( p )`next->top; // FIX ME: direct assignent fails, initialization works |
---|
[9c438546] | 670 | p = temp; |
---|
| 671 | #endif // BUCKETLOCK |
---|
[d46ed6e] | 672 | total += size; |
---|
| 673 | #ifdef __STATISTICS__ |
---|
| 674 | N += 1; |
---|
| 675 | #endif // __STATISTICS__ |
---|
[b6830d74] | 676 | } // for |
---|
| 677 | |
---|
[d46ed6e] | 678 | #ifdef __STATISTICS__ |
---|
[95eb7cf] | 679 | __cfaabi_bits_print_nolock( STDERR_FILENO, "%7zu, %-7u ", size, N ); |
---|
| 680 | if ( (i + 1) % 8 == 0 ) __cfaabi_bits_print_nolock( STDERR_FILENO, "\n" ); |
---|
[d46ed6e] | 681 | #endif // __STATISTICS__ |
---|
| 682 | } // for |
---|
| 683 | #ifdef __STATISTICS__ |
---|
[95eb7cf] | 684 | __cfaabi_bits_print_nolock( STDERR_FILENO, "\ntotal free blocks:%zu\n", total ); |
---|
| 685 | __cfaabi_bits_release(); |
---|
[d46ed6e] | 686 | #endif // __STATISTICS__ |
---|
| 687 | return (char *)heapEnd - (char *)heapBegin - total; |
---|
[95eb7cf] | 688 | } // prtFree |
---|
| 689 | |
---|
| 690 | |
---|
[9c438546] | 691 | static void ?{}( HeapManager & manager ) with( manager ) { |
---|
[95eb7cf] | 692 | pageSize = sysconf( _SC_PAGESIZE ); |
---|
| 693 | |
---|
| 694 | for ( unsigned int i = 0; i < NoBucketSizes; i += 1 ) { // initialize the free lists |
---|
| 695 | freeLists[i].blockSize = bucketSizes[i]; |
---|
| 696 | } // for |
---|
| 697 | |
---|
| 698 | #ifdef FASTLOOKUP |
---|
| 699 | unsigned int idx = 0; |
---|
| 700 | for ( unsigned int i = 0; i < LookupSizes; i += 1 ) { |
---|
| 701 | if ( i > bucketSizes[idx] ) idx += 1; |
---|
| 702 | lookup[i] = idx; |
---|
| 703 | } // for |
---|
| 704 | #endif // FASTLOOKUP |
---|
| 705 | |
---|
[1076d05] | 706 | if ( ! setMmapStart( default_mmap_start() ) ) { |
---|
[95eb7cf] | 707 | abort( "HeapManager : internal error, mmap start initialization failure." ); |
---|
| 708 | } // if |
---|
| 709 | heapExpand = default_heap_expansion(); |
---|
| 710 | |
---|
[1e034d9] | 711 | char * end = (char *)sbrk( 0 ); |
---|
[1076d05] | 712 | heapBegin = heapEnd = sbrk( (char *)libCeiling( (long unsigned int)end, libAlign() ) - end ); // move start of heap to multiple of alignment |
---|
[95eb7cf] | 713 | } // HeapManager |
---|
| 714 | |
---|
| 715 | |
---|
| 716 | static void ^?{}( HeapManager & ) { |
---|
| 717 | #ifdef __STATISTICS__ |
---|
[baf608a] | 718 | if ( traceHeapTerm() ) { |
---|
| 719 | printStats(); |
---|
| 720 | // if ( prtfree() ) prtFree( heapManager, true ); |
---|
| 721 | } // if |
---|
[95eb7cf] | 722 | #endif // __STATISTICS__ |
---|
| 723 | } // ~HeapManager |
---|
| 724 | |
---|
| 725 | |
---|
| 726 | static void memory_startup( void ) __attribute__(( constructor( STARTUP_PRIORITY_MEMORY ) )); |
---|
| 727 | void memory_startup( void ) { |
---|
| 728 | #ifdef __CFA_DEBUG__ |
---|
| 729 | if ( unlikely( heapBoot ) ) { // check for recursion during system boot |
---|
| 730 | // DO NOT USE STREAMS AS THEY MAY BE UNAVAILABLE AT THIS POINT. |
---|
| 731 | abort( "boot() : internal error, recursively invoked during system boot." ); |
---|
| 732 | } // if |
---|
| 733 | heapBoot = true; |
---|
| 734 | #endif // __CFA_DEBUG__ |
---|
| 735 | |
---|
| 736 | //assert( heapManager.heapBegin != 0 ); |
---|
| 737 | //heapManager{}; |
---|
[1076d05] | 738 | if ( heapManager.heapBegin == 0p ) heapManager{}; // sanity check |
---|
[95eb7cf] | 739 | } // memory_startup |
---|
| 740 | |
---|
| 741 | static void memory_shutdown( void ) __attribute__(( destructor( STARTUP_PRIORITY_MEMORY ) )); |
---|
| 742 | void memory_shutdown( void ) { |
---|
| 743 | ^heapManager{}; |
---|
| 744 | } // memory_shutdown |
---|
[c4f68dc] | 745 | |
---|
[bcb14b5] | 746 | |
---|
| 747 | static inline void * mallocNoStats( size_t size ) { // necessary for malloc statistics |
---|
[7117ac3] | 748 | //assert( heapManager.heapBegin != 0 ); |
---|
[95eb7cf] | 749 | if ( unlikely( heapManager.heapBegin == 0p ) ) heapManager{}; // called before memory_startup ? |
---|
[76e2113] | 750 | #if __SIZEOF_POINTER__ == 8 |
---|
| 751 | verify( size < ((typeof(size_t))1 << 48) ); |
---|
| 752 | #endif // __SIZEOF_POINTER__ == 8 |
---|
[95eb7cf] | 753 | void * addr = doMalloc( size ); |
---|
| 754 | if ( unlikely( addr == 0p ) ) errno = ENOMEM; // POSIX |
---|
| 755 | return addr; |
---|
[bcb14b5] | 756 | } // mallocNoStats |
---|
[c4f68dc] | 757 | |
---|
| 758 | |
---|
[76e2113] | 759 | static inline void * callocNoStats( size_t dim, size_t elemSize ) { |
---|
| 760 | size_t size = dim * elemSize; |
---|
[95eb7cf] | 761 | char * addr = (char *)mallocNoStats( size ); |
---|
| 762 | if ( unlikely( addr == 0p ) ) return 0p; |
---|
| 763 | |
---|
| 764 | HeapManager.Storage.Header * header; |
---|
| 765 | HeapManager.FreeHeader * freeElem; |
---|
| 766 | size_t bsize, alignment; |
---|
| 767 | bool mapped __attribute__(( unused )) = headers( "calloc", addr, header, freeElem, bsize, alignment ); |
---|
| 768 | #ifndef __CFA_DEBUG__ |
---|
| 769 | // Mapped storage is zero filled, but in debug mode mapped memory is scrubbed in doMalloc, so it has to be reset to zero. |
---|
| 770 | if ( ! mapped ) |
---|
| 771 | #endif // __CFA_DEBUG__ |
---|
[1e034d9] | 772 | // Zero entire data space even when > than size => realloc without a new allocation and zero fill works. |
---|
| 773 | // <-------00000000000000000000000000000000000000000000000000000> bsize (bucket size) |
---|
| 774 | // `-header`-addr `-size |
---|
[95eb7cf] | 775 | memset( addr, '\0', bsize - sizeof(HeapManager.Storage) ); // set to zeros |
---|
| 776 | |
---|
| 777 | header->kind.real.blockSize |= 2; // mark as zero filled |
---|
| 778 | return addr; |
---|
| 779 | } // callocNoStats |
---|
| 780 | |
---|
| 781 | |
---|
[bcb14b5] | 782 | static inline void * memalignNoStats( size_t alignment, size_t size ) { // necessary for malloc statistics |
---|
| 783 | #ifdef __CFA_DEBUG__ |
---|
[b6830d74] | 784 | checkAlign( alignment ); // check alignment |
---|
[bcb14b5] | 785 | #endif // __CFA_DEBUG__ |
---|
[c4f68dc] | 786 | |
---|
[b6830d74] | 787 | // if alignment <= default alignment, do normal malloc as two headers are unnecessary |
---|
[bcb14b5] | 788 | if ( unlikely( alignment <= libAlign() ) ) return mallocNoStats( size ); |
---|
[b6830d74] | 789 | |
---|
| 790 | // Allocate enough storage to guarantee an address on the alignment boundary, and sufficient space before it for |
---|
| 791 | // administrative storage. NOTE, WHILE THERE ARE 2 HEADERS, THE FIRST ONE IS IMPLICITLY CREATED BY DOMALLOC. |
---|
| 792 | // .-------------v-----------------v----------------v----------, |
---|
| 793 | // | Real Header | ... padding ... | Fake Header | data ... | |
---|
| 794 | // `-------------^-----------------^-+--------------^----------' |
---|
| 795 | // |<--------------------------------' offset/align |<-- alignment boundary |
---|
| 796 | |
---|
| 797 | // subtract libAlign() because it is already the minimum alignment |
---|
| 798 | // add sizeof(Storage) for fake header |
---|
[95eb7cf] | 799 | char * addr = (char *)mallocNoStats( size + alignment - libAlign() + sizeof(HeapManager.Storage) ); |
---|
| 800 | if ( unlikely( addr == 0p ) ) return addr; |
---|
[b6830d74] | 801 | |
---|
| 802 | // address in the block of the "next" alignment address |
---|
[95eb7cf] | 803 | char * user = (char *)libCeiling( (uintptr_t)(addr + sizeof(HeapManager.Storage)), alignment ); |
---|
[b6830d74] | 804 | |
---|
| 805 | // address of header from malloc |
---|
[95eb7cf] | 806 | HeapManager.Storage.Header * realHeader = headerAddr( addr ); |
---|
[4cf617e] | 807 | realHeader->kind.real.size = size; // correct size to eliminate above alignment offset |
---|
[b6830d74] | 808 | // address of fake header * before* the alignment location |
---|
| 809 | HeapManager.Storage.Header * fakeHeader = headerAddr( user ); |
---|
| 810 | // SKULLDUGGERY: insert the offset to the start of the actual storage block and remember alignment |
---|
| 811 | fakeHeader->kind.fake.offset = (char *)fakeHeader - (char *)realHeader; |
---|
| 812 | // SKULLDUGGERY: odd alignment imples fake header |
---|
| 813 | fakeHeader->kind.fake.alignment = alignment | 1; |
---|
| 814 | |
---|
| 815 | return user; |
---|
[bcb14b5] | 816 | } // memalignNoStats |
---|
[c4f68dc] | 817 | |
---|
| 818 | |
---|
[76e2113] | 819 | static inline void * cmemalignNoStats( size_t alignment, size_t dim, size_t elemSize ) { |
---|
| 820 | size_t size = dim * elemSize; |
---|
[95eb7cf] | 821 | char * addr = (char *)memalignNoStats( alignment, size ); |
---|
| 822 | if ( unlikely( addr == 0p ) ) return 0p; |
---|
| 823 | HeapManager.Storage.Header * header; |
---|
| 824 | HeapManager.FreeHeader * freeElem; |
---|
| 825 | size_t bsize; |
---|
| 826 | bool mapped __attribute__(( unused )) = headers( "cmemalign", addr, header, freeElem, bsize, alignment ); |
---|
| 827 | #ifndef __CFA_DEBUG__ |
---|
| 828 | // Mapped storage is zero filled, but in debug mode mapped memory is scrubbed in doMalloc, so it has to be reset to zero. |
---|
| 829 | if ( ! mapped ) |
---|
| 830 | #endif // __CFA_DEBUG__ |
---|
| 831 | memset( addr, '\0', dataStorage( bsize, addr, header ) ); // set to zeros |
---|
| 832 | |
---|
[cfbc703d] | 833 | header->kind.real.blockSize |= 2; // mark as zero filled |
---|
[95eb7cf] | 834 | return addr; |
---|
| 835 | } // cmemalignNoStats |
---|
| 836 | |
---|
| 837 | |
---|
[e723100] | 838 | // supported mallopt options |
---|
| 839 | #ifndef M_MMAP_THRESHOLD |
---|
| 840 | #define M_MMAP_THRESHOLD (-1) |
---|
| 841 | #endif // M_TOP_PAD |
---|
| 842 | #ifndef M_TOP_PAD |
---|
| 843 | #define M_TOP_PAD (-2) |
---|
| 844 | #endif // M_TOP_PAD |
---|
| 845 | |
---|
| 846 | |
---|
[c4f68dc] | 847 | extern "C" { |
---|
[61248a4] | 848 | // Allocates size bytes and returns a pointer to the allocated memory. The contents are undefined. If size is 0, |
---|
| 849 | // then malloc() returns a unique pointer value that can later be successfully passed to free(). |
---|
[b6830d74] | 850 | void * malloc( size_t size ) { |
---|
[c4f68dc] | 851 | #ifdef __STATISTICS__ |
---|
[bcb14b5] | 852 | __atomic_add_fetch( &malloc_calls, 1, __ATOMIC_SEQ_CST ); |
---|
| 853 | __atomic_add_fetch( &malloc_storage, size, __ATOMIC_SEQ_CST ); |
---|
[c4f68dc] | 854 | #endif // __STATISTICS__ |
---|
| 855 | |
---|
[bcb14b5] | 856 | return mallocNoStats( size ); |
---|
| 857 | } // malloc |
---|
[c4f68dc] | 858 | |
---|
[76e2113] | 859 | |
---|
[61248a4] | 860 | // Same as malloc() except size bytes is an array of dim elements each of elemSize bytes. |
---|
[76e2113] | 861 | void * aalloc( size_t dim, size_t elemSize ) { |
---|
| 862 | #ifdef __STATISTICS__ |
---|
| 863 | __atomic_add_fetch( &aalloc_calls, 1, __ATOMIC_SEQ_CST ); |
---|
| 864 | __atomic_add_fetch( &aalloc_storage, dim * elemSize, __ATOMIC_SEQ_CST ); |
---|
| 865 | #endif // __STATISTICS__ |
---|
| 866 | |
---|
[1076d05] | 867 | return mallocNoStats( dim * elemSize ); |
---|
[76e2113] | 868 | } // aalloc |
---|
| 869 | |
---|
| 870 | |
---|
[61248a4] | 871 | // Same as aalloc() with memory set to zero. |
---|
[76e2113] | 872 | void * calloc( size_t dim, size_t elemSize ) { |
---|
[c4f68dc] | 873 | #ifdef __STATISTICS__ |
---|
[bcb14b5] | 874 | __atomic_add_fetch( &calloc_calls, 1, __ATOMIC_SEQ_CST ); |
---|
[76e2113] | 875 | __atomic_add_fetch( &calloc_storage, dim * elemSize, __ATOMIC_SEQ_CST ); |
---|
[c4f68dc] | 876 | #endif // __STATISTICS__ |
---|
| 877 | |
---|
[76e2113] | 878 | return callocNoStats( dim, elemSize ); |
---|
[bcb14b5] | 879 | } // calloc |
---|
[c4f68dc] | 880 | |
---|
[61248a4] | 881 | // Change the size of the memory block pointed to by oaddr to size bytes. The contents are undefined. If oaddr is |
---|
| 882 | // 0p, then the call is equivalent to malloc(size), for all values of size; if size is equal to zero, and oaddr is |
---|
| 883 | // not 0p, then the call is equivalent to free(oaddr). Unless oaddr is 0p, it must have been returned by an earlier |
---|
| 884 | // call to malloc(), alloc(), calloc() or realloc(). If the area pointed to was moved, a free(oaddr) is done. |
---|
[cfbc703d] | 885 | void * resize( void * oaddr, size_t size ) { |
---|
| 886 | #ifdef __STATISTICS__ |
---|
| 887 | __atomic_add_fetch( &resize_calls, 1, __ATOMIC_SEQ_CST ); |
---|
| 888 | __atomic_add_fetch( &resize_storage, size, __ATOMIC_SEQ_CST ); |
---|
| 889 | #endif // __STATISTICS__ |
---|
| 890 | |
---|
| 891 | // If size is equal to 0, either NULL or a pointer suitable to be passed to free() is returned. |
---|
| 892 | if ( unlikely( size == 0 ) ) { free( oaddr ); return mallocNoStats( size ); } // special cases |
---|
| 893 | if ( unlikely( oaddr == 0p ) ) return mallocNoStats( size ); |
---|
| 894 | |
---|
| 895 | HeapManager.Storage.Header * header; |
---|
| 896 | HeapManager.FreeHeader * freeElem; |
---|
| 897 | size_t bsize, oalign = 0; |
---|
| 898 | headers( "resize", oaddr, header, freeElem, bsize, oalign ); |
---|
| 899 | |
---|
[76e2113] | 900 | size_t odsize = dataStorage( bsize, oaddr, header ); // data storage available in bucket |
---|
[cfbc703d] | 901 | // same size, DO NOT preserve STICKY PROPERTIES. |
---|
[76e2113] | 902 | if ( oalign == 0 && size <= odsize && odsize <= size * 2 ) { // allow 50% wasted storage for smaller size |
---|
[cfbc703d] | 903 | header->kind.real.blockSize &= -2; // no alignment and turn off 0 fill |
---|
[2b23d78] | 904 | if ( size != odsize ) header->kind.real.size = size; // reset allocation size |
---|
[cfbc703d] | 905 | return oaddr; |
---|
| 906 | } // if |
---|
[0f89d4f] | 907 | |
---|
[cfbc703d] | 908 | // change size, DO NOT preserve STICKY PROPERTIES. |
---|
| 909 | free( oaddr ); |
---|
[1076d05] | 910 | void * naddr = mallocNoStats( size ); // create new area |
---|
[cfbc703d] | 911 | return naddr; |
---|
| 912 | } // resize |
---|
| 913 | |
---|
| 914 | |
---|
[61248a4] | 915 | // Same as resize() but the contents are unchanged in the range from the start of the region up to the minimum of |
---|
[cfbc703d] | 916 | // the old and new sizes. |
---|
[95eb7cf] | 917 | void * realloc( void * oaddr, size_t size ) { |
---|
[c4f68dc] | 918 | #ifdef __STATISTICS__ |
---|
[bcb14b5] | 919 | __atomic_add_fetch( &realloc_calls, 1, __ATOMIC_SEQ_CST ); |
---|
[cfbc703d] | 920 | __atomic_add_fetch( &realloc_storage, size, __ATOMIC_SEQ_CST ); |
---|
[c4f68dc] | 921 | #endif // __STATISTICS__ |
---|
| 922 | |
---|
[1f6de372] | 923 | // If size is equal to 0, either NULL or a pointer suitable to be passed to free() is returned. |
---|
| 924 | if ( unlikely( size == 0 ) ) { free( oaddr ); return mallocNoStats( size ); } // special cases |
---|
[95eb7cf] | 925 | if ( unlikely( oaddr == 0p ) ) return mallocNoStats( size ); |
---|
[c4f68dc] | 926 | |
---|
| 927 | HeapManager.Storage.Header * header; |
---|
| 928 | HeapManager.FreeHeader * freeElem; |
---|
[95eb7cf] | 929 | size_t bsize, oalign = 0; |
---|
| 930 | headers( "realloc", oaddr, header, freeElem, bsize, oalign ); |
---|
| 931 | |
---|
| 932 | size_t odsize = dataStorage( bsize, oaddr, header ); // data storage available in bucket |
---|
[2b23d78] | 933 | if ( size <= odsize && odsize <= size * 2 ) { // allow up to 50% wasted storage in smaller size |
---|
| 934 | if ( size != odsize ) header->kind.real.size = size; // reset allocation size |
---|
[95eb7cf] | 935 | return oaddr; |
---|
[c4f68dc] | 936 | } // if |
---|
| 937 | |
---|
[95eb7cf] | 938 | // change size and copy old content to new storage |
---|
| 939 | |
---|
| 940 | void * naddr; |
---|
| 941 | if ( unlikely( oalign != 0 ) ) { // previous request memalign? |
---|
| 942 | if ( unlikely( header->kind.real.blockSize & 2 ) ) { // previous request zero fill |
---|
| 943 | naddr = cmemalignNoStats( oalign, 1, size ); // create new aligned area |
---|
| 944 | } else { |
---|
| 945 | naddr = memalignNoStats( oalign, size ); // create new aligned area |
---|
| 946 | } // if |
---|
[c4f68dc] | 947 | } else { |
---|
[95eb7cf] | 948 | if ( unlikely( header->kind.real.blockSize & 2 ) ) { // previous request zero fill |
---|
| 949 | naddr = callocNoStats( 1, size ); // create new area |
---|
| 950 | } else { |
---|
| 951 | naddr = mallocNoStats( size ); // create new area |
---|
| 952 | } // if |
---|
[c4f68dc] | 953 | } // if |
---|
[95eb7cf] | 954 | if ( unlikely( naddr == 0p ) ) return 0p; |
---|
[1e034d9] | 955 | |
---|
[95eb7cf] | 956 | headers( "realloc", naddr, header, freeElem, bsize, oalign ); |
---|
| 957 | size_t ndsize = dataStorage( bsize, naddr, header ); // data storage avilable in bucket |
---|
| 958 | // To preserve prior fill, the entire bucket must be copied versus the size. |
---|
| 959 | memcpy( naddr, oaddr, MIN( odsize, ndsize ) ); // copy bytes |
---|
| 960 | free( oaddr ); |
---|
| 961 | return naddr; |
---|
[b6830d74] | 962 | } // realloc |
---|
[c4f68dc] | 963 | |
---|
[61248a4] | 964 | // Same as malloc() except the memory address is a multiple of alignment, which must be a power of two. (obsolete) |
---|
[bcb14b5] | 965 | void * memalign( size_t alignment, size_t size ) { |
---|
[c4f68dc] | 966 | #ifdef __STATISTICS__ |
---|
| 967 | __atomic_add_fetch( &memalign_calls, 1, __ATOMIC_SEQ_CST ); |
---|
| 968 | __atomic_add_fetch( &memalign_storage, size, __ATOMIC_SEQ_CST ); |
---|
| 969 | #endif // __STATISTICS__ |
---|
| 970 | |
---|
[95eb7cf] | 971 | return memalignNoStats( alignment, size ); |
---|
[bcb14b5] | 972 | } // memalign |
---|
[c4f68dc] | 973 | |
---|
[95eb7cf] | 974 | |
---|
[76e2113] | 975 | // Same as aalloc() with memory alignment. |
---|
| 976 | void * amemalign( size_t alignment, size_t dim, size_t elemSize ) { |
---|
| 977 | #ifdef __STATISTICS__ |
---|
| 978 | __atomic_add_fetch( &cmemalign_calls, 1, __ATOMIC_SEQ_CST ); |
---|
| 979 | __atomic_add_fetch( &cmemalign_storage, dim * elemSize, __ATOMIC_SEQ_CST ); |
---|
| 980 | #endif // __STATISTICS__ |
---|
| 981 | |
---|
[1076d05] | 982 | return memalignNoStats( alignment, dim * elemSize ); |
---|
[76e2113] | 983 | } // amemalign |
---|
| 984 | |
---|
| 985 | |
---|
[ca7949b] | 986 | // Same as calloc() with memory alignment. |
---|
[76e2113] | 987 | void * cmemalign( size_t alignment, size_t dim, size_t elemSize ) { |
---|
[95eb7cf] | 988 | #ifdef __STATISTICS__ |
---|
| 989 | __atomic_add_fetch( &cmemalign_calls, 1, __ATOMIC_SEQ_CST ); |
---|
[76e2113] | 990 | __atomic_add_fetch( &cmemalign_storage, dim * elemSize, __ATOMIC_SEQ_CST ); |
---|
[95eb7cf] | 991 | #endif // __STATISTICS__ |
---|
| 992 | |
---|
[76e2113] | 993 | return cmemalignNoStats( alignment, dim, elemSize ); |
---|
[95eb7cf] | 994 | } // cmemalign |
---|
| 995 | |
---|
[ca7949b] | 996 | // Same as memalign(), but ISO/IEC 2011 C11 Section 7.22.2 states: the value of size shall be an integral multiple |
---|
| 997 | // of alignment. This requirement is universally ignored. |
---|
[b6830d74] | 998 | void * aligned_alloc( size_t alignment, size_t size ) { |
---|
[c4f68dc] | 999 | return memalign( alignment, size ); |
---|
[b6830d74] | 1000 | } // aligned_alloc |
---|
[c4f68dc] | 1001 | |
---|
| 1002 | |
---|
[ca7949b] | 1003 | // Allocates size bytes and places the address of the allocated memory in *memptr. The address of the allocated |
---|
| 1004 | // memory shall be a multiple of alignment, which must be a power of two and a multiple of sizeof(void *). If size |
---|
| 1005 | // is 0, then posix_memalign() returns either 0p, or a unique pointer value that can later be successfully passed to |
---|
| 1006 | // free(3). |
---|
[b6830d74] | 1007 | int posix_memalign( void ** memptr, size_t alignment, size_t size ) { |
---|
[bcb14b5] | 1008 | if ( alignment < sizeof(void *) || ! libPow2( alignment ) ) return EINVAL; // check alignment |
---|
[c4f68dc] | 1009 | * memptr = memalign( alignment, size ); |
---|
[95eb7cf] | 1010 | if ( unlikely( * memptr == 0p ) ) return ENOMEM; |
---|
[c4f68dc] | 1011 | return 0; |
---|
[b6830d74] | 1012 | } // posix_memalign |
---|
[c4f68dc] | 1013 | |
---|
[ca7949b] | 1014 | // Allocates size bytes and returns a pointer to the allocated memory. The memory address shall be a multiple of the |
---|
| 1015 | // page size. It is equivalent to memalign(sysconf(_SC_PAGESIZE),size). |
---|
[b6830d74] | 1016 | void * valloc( size_t size ) { |
---|
[c4f68dc] | 1017 | return memalign( pageSize, size ); |
---|
[b6830d74] | 1018 | } // valloc |
---|
[c4f68dc] | 1019 | |
---|
| 1020 | |
---|
[ca7949b] | 1021 | // Same as valloc but rounds size to multiple of page size. |
---|
| 1022 | void * pvalloc( size_t size ) { |
---|
| 1023 | return memalign( pageSize, libCeiling( size, pageSize ) ); |
---|
| 1024 | } // pvalloc |
---|
| 1025 | |
---|
| 1026 | |
---|
| 1027 | // Frees the memory space pointed to by ptr, which must have been returned by a previous call to malloc(), calloc() |
---|
[1076d05] | 1028 | // or realloc(). Otherwise, or if free(ptr) has already been called before, undefined behaviour occurs. If ptr is |
---|
[ca7949b] | 1029 | // 0p, no operation is performed. |
---|
[b6830d74] | 1030 | void free( void * addr ) { |
---|
[c4f68dc] | 1031 | #ifdef __STATISTICS__ |
---|
[bcb14b5] | 1032 | __atomic_add_fetch( &free_calls, 1, __ATOMIC_SEQ_CST ); |
---|
[c4f68dc] | 1033 | #endif // __STATISTICS__ |
---|
| 1034 | |
---|
[95eb7cf] | 1035 | if ( unlikely( addr == 0p ) ) { // special case |
---|
| 1036 | // #ifdef __CFA_DEBUG__ |
---|
| 1037 | // if ( traceHeap() ) { |
---|
| 1038 | // #define nullmsg "Free( 0x0 ) size:0\n" |
---|
[1e034d9] | 1039 | // // Do not debug print free( 0p ), as it can cause recursive entry from sprintf. |
---|
[95eb7cf] | 1040 | // __cfaabi_dbg_write( nullmsg, sizeof(nullmsg) - 1 ); |
---|
| 1041 | // } // if |
---|
| 1042 | // #endif // __CFA_DEBUG__ |
---|
[c4f68dc] | 1043 | return; |
---|
| 1044 | } // exit |
---|
| 1045 | |
---|
| 1046 | doFree( addr ); |
---|
[b6830d74] | 1047 | } // free |
---|
[93c2e0a] | 1048 | |
---|
[c4f68dc] | 1049 | |
---|
[76e2113] | 1050 | // Returns the alignment of an allocation. |
---|
[b6830d74] | 1051 | size_t malloc_alignment( void * addr ) { |
---|
[95eb7cf] | 1052 | if ( unlikely( addr == 0p ) ) return libAlign(); // minimum alignment |
---|
[1aa6ecb] | 1053 | HeapManager.Storage.Header * header = headerAddr( addr ); |
---|
[c4f68dc] | 1054 | if ( (header->kind.fake.alignment & 1) == 1 ) { // fake header ? |
---|
| 1055 | return header->kind.fake.alignment & -2; // remove flag from value |
---|
| 1056 | } else { |
---|
[cfbc703d] | 1057 | return libAlign(); // minimum alignment |
---|
[c4f68dc] | 1058 | } // if |
---|
[bcb14b5] | 1059 | } // malloc_alignment |
---|
[c4f68dc] | 1060 | |
---|
[76e2113] | 1061 | // Set the alignment for an the allocation and return previous alignment or 0 if no alignment. |
---|
| 1062 | size_t $malloc_alignment_set( void * addr, size_t alignment ) { |
---|
| 1063 | if ( unlikely( addr == 0p ) ) return libAlign(); // minimum alignment |
---|
| 1064 | size_t ret; |
---|
| 1065 | HeapManager.Storage.Header * header = headerAddr( addr ); |
---|
| 1066 | if ( (header->kind.fake.alignment & 1) == 1 ) { // fake header ? |
---|
| 1067 | ret = header->kind.fake.alignment & -2; // remove flag from old value |
---|
| 1068 | header->kind.fake.alignment = alignment | 1; // add flag to new value |
---|
| 1069 | } else { |
---|
| 1070 | ret = 0; // => no alignment to change |
---|
| 1071 | } // if |
---|
| 1072 | return ret; |
---|
| 1073 | } // $malloc_alignment_set |
---|
| 1074 | |
---|
[c4f68dc] | 1075 | |
---|
[76e2113] | 1076 | // Returns true if the allocation is zero filled, e.g., allocated by calloc(). |
---|
[b6830d74] | 1077 | bool malloc_zero_fill( void * addr ) { |
---|
[95eb7cf] | 1078 | if ( unlikely( addr == 0p ) ) return false; // null allocation is not zero fill |
---|
[1aa6ecb] | 1079 | HeapManager.Storage.Header * header = headerAddr( addr ); |
---|
[c4f68dc] | 1080 | if ( (header->kind.fake.alignment & 1) == 1 ) { // fake header ? |
---|
[cfbc703d] | 1081 | header = realHeader( header ); // backup from fake to real header |
---|
[c4f68dc] | 1082 | } // if |
---|
[76e2113] | 1083 | return (header->kind.real.blockSize & 2) != 0; // zero filled ? |
---|
[bcb14b5] | 1084 | } // malloc_zero_fill |
---|
[c4f68dc] | 1085 | |
---|
[76e2113] | 1086 | // Set allocation is zero filled and return previous zero filled. |
---|
| 1087 | bool $malloc_zero_fill_set( void * addr ) { |
---|
| 1088 | if ( unlikely( addr == 0p ) ) return false; // null allocation is not zero fill |
---|
| 1089 | HeapManager.Storage.Header * header = headerAddr( addr ); |
---|
| 1090 | if ( (header->kind.fake.alignment & 1) == 1 ) { // fake header ? |
---|
| 1091 | header = realHeader( header ); // backup from fake to real header |
---|
| 1092 | } // if |
---|
| 1093 | bool ret = (header->kind.real.blockSize & 2) != 0; // zero filled ? |
---|
| 1094 | header->kind.real.blockSize |= 2; // mark as zero filled |
---|
| 1095 | return ret; |
---|
| 1096 | } // $malloc_zero_fill_set |
---|
| 1097 | |
---|
[c4f68dc] | 1098 | |
---|
[76e2113] | 1099 | // Returns original total allocation size (not bucket size) => array size is dimension * sizeif(T). |
---|
| 1100 | size_t malloc_size( void * addr ) { |
---|
[849fb370] | 1101 | if ( unlikely( addr == 0p ) ) return 0; // null allocation has zero size |
---|
[cfbc703d] | 1102 | HeapManager.Storage.Header * header = headerAddr( addr ); |
---|
| 1103 | if ( (header->kind.fake.alignment & 1) == 1 ) { // fake header ? |
---|
| 1104 | header = realHeader( header ); // backup from fake to real header |
---|
| 1105 | } // if |
---|
[9c438546] | 1106 | return header->kind.real.size; |
---|
[76e2113] | 1107 | } // malloc_size |
---|
| 1108 | |
---|
| 1109 | // Set allocation size and return previous size. |
---|
| 1110 | size_t $malloc_size_set( void * addr, size_t size ) { |
---|
[849fb370] | 1111 | if ( unlikely( addr == 0p ) ) return 0; // null allocation has 0 size |
---|
[76e2113] | 1112 | HeapManager.Storage.Header * header = headerAddr( addr ); |
---|
| 1113 | if ( (header->kind.fake.alignment & 1) == 1 ) { // fake header ? |
---|
| 1114 | header = realHeader( header ); // backup from fake to real header |
---|
| 1115 | } // if |
---|
[9c438546] | 1116 | size_t ret = header->kind.real.size; |
---|
| 1117 | header->kind.real.size = size; |
---|
[76e2113] | 1118 | return ret; |
---|
| 1119 | } // $malloc_size_set |
---|
[cfbc703d] | 1120 | |
---|
| 1121 | |
---|
[ca7949b] | 1122 | // Returns the number of usable bytes in the block pointed to by ptr, a pointer to a block of memory allocated by |
---|
| 1123 | // malloc or a related function. |
---|
[95eb7cf] | 1124 | size_t malloc_usable_size( void * addr ) { |
---|
| 1125 | if ( unlikely( addr == 0p ) ) return 0; // null allocation has 0 size |
---|
| 1126 | HeapManager.Storage.Header * header; |
---|
| 1127 | HeapManager.FreeHeader * freeElem; |
---|
| 1128 | size_t bsize, alignment; |
---|
| 1129 | |
---|
| 1130 | headers( "malloc_usable_size", addr, header, freeElem, bsize, alignment ); |
---|
| 1131 | return dataStorage( bsize, addr, header ); // data storage in bucket |
---|
| 1132 | } // malloc_usable_size |
---|
| 1133 | |
---|
| 1134 | |
---|
[ca7949b] | 1135 | // Prints (on default standard error) statistics about memory allocated by malloc and related functions. |
---|
[b6830d74] | 1136 | void malloc_stats( void ) { |
---|
[c4f68dc] | 1137 | #ifdef __STATISTICS__ |
---|
[bcb14b5] | 1138 | printStats(); |
---|
[95eb7cf] | 1139 | if ( prtFree() ) prtFree( heapManager ); |
---|
[c4f68dc] | 1140 | #endif // __STATISTICS__ |
---|
[bcb14b5] | 1141 | } // malloc_stats |
---|
[c4f68dc] | 1142 | |
---|
[ca7949b] | 1143 | // Changes the file descripter where malloc_stats() writes statistics. |
---|
[95eb7cf] | 1144 | int malloc_stats_fd( int fd __attribute__(( unused )) ) { |
---|
[c4f68dc] | 1145 | #ifdef __STATISTICS__ |
---|
[bcb14b5] | 1146 | int temp = statfd; |
---|
| 1147 | statfd = fd; |
---|
| 1148 | return temp; |
---|
[c4f68dc] | 1149 | #else |
---|
[bcb14b5] | 1150 | return -1; |
---|
[c4f68dc] | 1151 | #endif // __STATISTICS__ |
---|
[bcb14b5] | 1152 | } // malloc_stats_fd |
---|
[c4f68dc] | 1153 | |
---|
[95eb7cf] | 1154 | |
---|
[1076d05] | 1155 | // Adjusts parameters that control the behaviour of the memory-allocation functions (see malloc). The param argument |
---|
[ca7949b] | 1156 | // specifies the parameter to be modified, and value specifies the new value for that parameter. |
---|
[95eb7cf] | 1157 | int mallopt( int option, int value ) { |
---|
| 1158 | choose( option ) { |
---|
| 1159 | case M_TOP_PAD: |
---|
[1076d05] | 1160 | heapExpand = ceiling( value, pageSize ); return 1; |
---|
[95eb7cf] | 1161 | case M_MMAP_THRESHOLD: |
---|
| 1162 | if ( setMmapStart( value ) ) return 1; |
---|
[1076d05] | 1163 | break; |
---|
[95eb7cf] | 1164 | } // switch |
---|
| 1165 | return 0; // error, unsupported |
---|
| 1166 | } // mallopt |
---|
| 1167 | |
---|
[ca7949b] | 1168 | // Attempt to release free memory at the top of the heap (by calling sbrk with a suitable argument). |
---|
[95eb7cf] | 1169 | int malloc_trim( size_t ) { |
---|
| 1170 | return 0; // => impossible to release memory |
---|
| 1171 | } // malloc_trim |
---|
| 1172 | |
---|
| 1173 | |
---|
[ca7949b] | 1174 | // Exports an XML string that describes the current state of the memory-allocation implementation in the caller. |
---|
| 1175 | // The string is printed on the file stream stream. The exported string includes information about all arenas (see |
---|
| 1176 | // malloc). |
---|
[c4f68dc] | 1177 | int malloc_info( int options, FILE * stream ) { |
---|
[95eb7cf] | 1178 | if ( options != 0 ) { errno = EINVAL; return -1; } |
---|
[d46ed6e] | 1179 | return printStatsXML( stream ); |
---|
[c4f68dc] | 1180 | } // malloc_info |
---|
| 1181 | |
---|
| 1182 | |
---|
[ca7949b] | 1183 | // Records the current state of all malloc internal bookkeeping variables (but not the actual contents of the heap |
---|
| 1184 | // or the state of malloc_hook functions pointers). The state is recorded in a system-dependent opaque data |
---|
| 1185 | // structure dynamically allocated via malloc, and a pointer to that data structure is returned as the function |
---|
| 1186 | // result. (The caller must free this memory.) |
---|
[c4f68dc] | 1187 | void * malloc_get_state( void ) { |
---|
[95eb7cf] | 1188 | return 0p; // unsupported |
---|
[c4f68dc] | 1189 | } // malloc_get_state |
---|
| 1190 | |
---|
[bcb14b5] | 1191 | |
---|
[ca7949b] | 1192 | // Restores the state of all malloc internal bookkeeping variables to the values recorded in the opaque data |
---|
| 1193 | // structure pointed to by state. |
---|
[c4f68dc] | 1194 | int malloc_set_state( void * ptr ) { |
---|
[bcb14b5] | 1195 | return 0; // unsupported |
---|
[c4f68dc] | 1196 | } // malloc_set_state |
---|
| 1197 | } // extern "C" |
---|
| 1198 | |
---|
| 1199 | |
---|
[95eb7cf] | 1200 | // Must have CFA linkage to overload with C linkage realloc. |
---|
[cfbc703d] | 1201 | void * resize( void * oaddr, size_t nalign, size_t size ) { |
---|
[1e034d9] | 1202 | #ifdef __STATISTICS__ |
---|
[cfbc703d] | 1203 | __atomic_add_fetch( &resize_calls, 1, __ATOMIC_SEQ_CST ); |
---|
| 1204 | __atomic_add_fetch( &resize_storage, size, __ATOMIC_SEQ_CST ); |
---|
[1e034d9] | 1205 | #endif // __STATISTICS__ |
---|
[95eb7cf] | 1206 | |
---|
[1f6de372] | 1207 | // If size is equal to 0, either NULL or a pointer suitable to be passed to free() is returned. |
---|
[cfbc703d] | 1208 | if ( unlikely( size == 0 ) ) { free( oaddr ); return memalignNoStats( nalign, size ); } // special cases |
---|
| 1209 | if ( unlikely( oaddr == 0p ) ) return memalignNoStats( nalign, size ); |
---|
| 1210 | |
---|
[95eb7cf] | 1211 | |
---|
[1e034d9] | 1212 | if ( unlikely( nalign == 0 ) ) nalign = libAlign(); // reset alignment to minimum |
---|
[95eb7cf] | 1213 | #ifdef __CFA_DEBUG__ |
---|
[1e034d9] | 1214 | else |
---|
[95eb7cf] | 1215 | checkAlign( nalign ); // check alignment |
---|
| 1216 | #endif // __CFA_DEBUG__ |
---|
| 1217 | |
---|
[cfbc703d] | 1218 | HeapManager.Storage.Header * header; |
---|
| 1219 | HeapManager.FreeHeader * freeElem; |
---|
| 1220 | size_t bsize, oalign = 0; |
---|
| 1221 | headers( "resize", oaddr, header, freeElem, bsize, oalign ); |
---|
| 1222 | size_t odsize = dataStorage( bsize, oaddr, header ); // data storage available in bucket |
---|
| 1223 | |
---|
| 1224 | if ( oalign <= nalign && (uintptr_t)oaddr % nalign == 0 ) { // <= alignment and new alignment happens to match |
---|
| 1225 | if ( oalign >= libAlign() ) { // fake header ? |
---|
| 1226 | headerAddr( oaddr )->kind.fake.alignment = nalign | 1; // update alignment (could be the same) |
---|
| 1227 | } // if |
---|
| 1228 | if ( size <= odsize && odsize <= size * 2 ) { // allow 50% wasted storage for smaller size |
---|
| 1229 | header->kind.real.blockSize &= -2; // turn off 0 fill |
---|
[2b23d78] | 1230 | if ( size != odsize ) header->kind.real.size = size; // reset allocation size |
---|
[cfbc703d] | 1231 | return oaddr; |
---|
| 1232 | } // if |
---|
| 1233 | } // if |
---|
| 1234 | |
---|
| 1235 | // change size |
---|
| 1236 | |
---|
| 1237 | void * naddr; |
---|
| 1238 | if ( unlikely( header->kind.real.blockSize & 2 ) ) { // previous request zero fill |
---|
| 1239 | naddr = cmemalignNoStats( nalign, 1, size ); // create new aligned area |
---|
| 1240 | } else { |
---|
| 1241 | naddr = memalignNoStats( nalign, size ); // create new aligned area |
---|
| 1242 | } // if |
---|
| 1243 | |
---|
| 1244 | free( oaddr ); |
---|
| 1245 | return naddr; |
---|
| 1246 | } // resize |
---|
| 1247 | |
---|
| 1248 | |
---|
| 1249 | void * realloc( void * oaddr, size_t nalign, size_t size ) { |
---|
| 1250 | if ( unlikely( nalign == 0 ) ) nalign = libAlign(); // reset alignment to minimum |
---|
| 1251 | #ifdef __CFA_DEBUG__ |
---|
| 1252 | else |
---|
| 1253 | checkAlign( nalign ); // check alignment |
---|
| 1254 | #endif // __CFA_DEBUG__ |
---|
| 1255 | |
---|
[95eb7cf] | 1256 | HeapManager.Storage.Header * header; |
---|
| 1257 | HeapManager.FreeHeader * freeElem; |
---|
| 1258 | size_t bsize, oalign = 0; |
---|
| 1259 | headers( "realloc", oaddr, header, freeElem, bsize, oalign ); |
---|
[1e034d9] | 1260 | size_t odsize = dataStorage( bsize, oaddr, header ); // data storage available in bucket |
---|
[95eb7cf] | 1261 | |
---|
[cfbc703d] | 1262 | if ( oalign <= nalign && (uintptr_t)oaddr % nalign == 0 ) { // <= alignment and new alignment happens to match |
---|
| 1263 | if ( oalign >= libAlign() ) { // fake header ? |
---|
| 1264 | headerAddr( oaddr )->kind.fake.alignment = nalign | 1; // update alignment (could be the same) |
---|
| 1265 | } // if |
---|
[95eb7cf] | 1266 | return realloc( oaddr, size ); |
---|
[1e034d9] | 1267 | } // if |
---|
[95eb7cf] | 1268 | |
---|
[cfbc703d] | 1269 | // change size and copy old content to new storage |
---|
| 1270 | |
---|
[1e034d9] | 1271 | #ifdef __STATISTICS__ |
---|
[cfbc703d] | 1272 | __atomic_add_fetch( &realloc_calls, 1, __ATOMIC_SEQ_CST ); |
---|
[95eb7cf] | 1273 | __atomic_add_fetch( &realloc_storage, size, __ATOMIC_SEQ_CST ); |
---|
[1e034d9] | 1274 | #endif // __STATISTICS__ |
---|
| 1275 | |
---|
[cfbc703d] | 1276 | // If size is equal to 0, either NULL or a pointer suitable to be passed to free() is returned. |
---|
| 1277 | if ( unlikely( size == 0 ) ) { free( oaddr ); return memalignNoStats( nalign, size ); } // special cases |
---|
| 1278 | if ( unlikely( oaddr == 0p ) ) return memalignNoStats( nalign, size ); |
---|
[95eb7cf] | 1279 | |
---|
[1e034d9] | 1280 | void * naddr; |
---|
| 1281 | if ( unlikely( header->kind.real.blockSize & 2 ) ) { // previous request zero fill |
---|
| 1282 | naddr = cmemalignNoStats( nalign, 1, size ); // create new aligned area |
---|
| 1283 | } else { |
---|
| 1284 | naddr = memalignNoStats( nalign, size ); // create new aligned area |
---|
| 1285 | } // if |
---|
[95eb7cf] | 1286 | |
---|
[1e034d9] | 1287 | headers( "realloc", naddr, header, freeElem, bsize, oalign ); |
---|
[cfbc703d] | 1288 | size_t ndsize = dataStorage( bsize, naddr, header ); // data storage available in bucket |
---|
[95eb7cf] | 1289 | // To preserve prior fill, the entire bucket must be copied versus the size. |
---|
[1e034d9] | 1290 | memcpy( naddr, oaddr, MIN( odsize, ndsize ) ); // copy bytes |
---|
| 1291 | free( oaddr ); |
---|
| 1292 | return naddr; |
---|
[95eb7cf] | 1293 | } // realloc |
---|
| 1294 | |
---|
| 1295 | |
---|
[c4f68dc] | 1296 | // Local Variables: // |
---|
| 1297 | // tab-width: 4 // |
---|
[f8cd310] | 1298 | // compile-command: "cfa -nodebug -O2 heap.cfa" // |
---|
[c4f68dc] | 1299 | // End: // |
---|