| 1 | // Copyright (C) 2016 The Qt Company Ltd. | 
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| 2 | // SPDX-License-Identifier: LicenseRef-Qt-Commercial OR LGPL-3.0-only OR GPL-2.0-only OR GPL-3.0-only | 
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| 3 | #ifndef QV4MMDEFS_P_H | 
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| 4 | #define QV4MMDEFS_P_H | 
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| 5 |  | 
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| 6 | // | 
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| 7 | //  W A R N I N G | 
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| 8 | //  ------------- | 
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| 9 | // | 
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| 10 | // This file is not part of the Qt API.  It exists purely as an | 
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| 11 | // implementation detail.  This header file may change from version to | 
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| 12 | // version without notice, or even be removed. | 
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| 13 | // | 
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| 14 | // We mean it. | 
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| 15 | // | 
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| 16 |  | 
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| 17 | #include <private/qv4global_p.h> | 
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| 18 | #include <private/qv4runtimeapi_p.h> | 
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| 19 | #include <QtCore/qalgorithms.h> | 
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| 20 | #include <QtCore/qmath.h> | 
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| 21 |  | 
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| 22 | QT_BEGIN_NAMESPACE | 
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| 23 |  | 
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| 24 | class QDeadlineTimer; | 
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| 25 |  | 
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| 26 | namespace QV4 { | 
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| 27 |  | 
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| 28 | struct MarkStack; | 
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| 29 |  | 
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| 30 | typedef void(*ClassDestroyStatsCallback)(const char *); | 
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| 31 |  | 
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| 32 | /* | 
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| 33 | * Chunks are the basic structure containing GC managed objects. | 
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| 34 | * | 
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| 35 | * Chunks are 64k aligned in memory, so that retrieving the Chunk pointer from a Heap object | 
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| 36 | * is a simple masking operation. Each Chunk has 4 bitmaps for managing purposes, | 
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| 37 | * and 32byte wide slots for the objects following afterwards. | 
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| 38 | * | 
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| 39 | * The gray and black bitmaps are used for mark/sweep. | 
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| 40 | * The object bitmap has a bit set if this location represents the start of a Heap object. | 
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| 41 | * The extends bitmap denotes the extend of an object. It has a cleared bit at the start of the object | 
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| 42 | * and a set bit for all following slots used by the object. | 
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| 43 | * | 
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| 44 | * Free memory has both used and extends bits set to 0. | 
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| 45 | * | 
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| 46 | * This gives the following operations when allocating an object of size s: | 
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| 47 | * Find s/Alignment consecutive free slots in the chunk. Set the object bit for the first | 
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| 48 | * slot to 1. Set the extends bits for all following slots to 1. | 
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| 49 | * | 
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| 50 | * All used slots can be found by object|extents. | 
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| 51 | * | 
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| 52 | * When sweeping, simply copy the black bits over to the object bits. | 
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| 53 | * | 
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| 54 | */ | 
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| 55 | struct HeapItem; | 
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| 56 | struct Chunk { | 
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| 57 | enum { | 
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| 58 | ChunkSize = 64*1024, | 
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| 59 | ChunkShift = 16, | 
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| 60 | SlotSize = 32, | 
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| 61 | SlotSizeShift = 5, | 
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| 62 | NumSlots = ChunkSize/SlotSize, | 
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| 63 | BitmapSize = NumSlots/8, | 
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| 64 | = 3*BitmapSize, | 
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| 65 | DataSize = ChunkSize - HeaderSize, | 
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| 66 | AvailableSlots = DataSize/SlotSize, | 
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| 67 | #if QT_POINTER_SIZE == 8 | 
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| 68 | Bits = 64, | 
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| 69 | BitShift = 6, | 
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| 70 | #else | 
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| 71 | Bits = 32, | 
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| 72 | BitShift = 5, | 
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| 73 | #endif | 
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| 74 | EntriesInBitmap = BitmapSize/sizeof(quintptr) | 
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| 75 | }; | 
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| 76 | quintptr blackBitmap[BitmapSize/sizeof(quintptr)]; | 
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| 77 | quintptr objectBitmap[BitmapSize/sizeof(quintptr)]; | 
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| 78 | quintptr extendsBitmap[BitmapSize/sizeof(quintptr)]; | 
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| 79 | char data[ChunkSize - HeaderSize]; | 
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| 80 |  | 
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| 81 | HeapItem *realBase(); | 
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| 82 | HeapItem *first(); | 
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| 83 |  | 
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| 84 | static Q_ALWAYS_INLINE size_t bitmapIndex(size_t index) { | 
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| 85 | return index >> BitShift; | 
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| 86 | } | 
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| 87 | static Q_ALWAYS_INLINE quintptr bitForIndex(size_t index) { | 
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| 88 | return static_cast<quintptr>(1) << (index & (Bits - 1)); | 
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| 89 | } | 
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| 90 |  | 
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| 91 | static void setBit(quintptr *bitmap, size_t index) { | 
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| 92 | //        Q_ASSERT(index >= HeaderSize/SlotSize && index < ChunkSize/SlotSize); | 
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| 93 | bitmap += bitmapIndex(index); | 
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| 94 | quintptr bit = bitForIndex(index); | 
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| 95 | *bitmap |= bit; | 
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| 96 | } | 
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| 97 | static void clearBit(quintptr *bitmap, size_t index) { | 
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| 98 | //        Q_ASSERT(index >= HeaderSize/SlotSize && index < ChunkSize/SlotSize); | 
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| 99 | bitmap += bitmapIndex(index); | 
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| 100 | quintptr bit = bitForIndex(index); | 
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| 101 | *bitmap &= ~bit; | 
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| 102 | } | 
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| 103 | static bool testBit(quintptr *bitmap, size_t index) { | 
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| 104 | //        Q_ASSERT(index >= HeaderSize/SlotSize && index < ChunkSize/SlotSize); | 
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| 105 | bitmap += bitmapIndex(index); | 
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| 106 | quintptr bit = bitForIndex(index); | 
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| 107 | return (*bitmap & bit); | 
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| 108 | } | 
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| 109 | static void setBits(quintptr *bitmap, size_t index, size_t nBits) { | 
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| 110 | //        Q_ASSERT(index >= HeaderSize/SlotSize && index + nBits <= ChunkSize/SlotSize); | 
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| 111 | if (!nBits) | 
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| 112 | return; | 
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| 113 | bitmap += index >> BitShift; | 
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| 114 | index &= (Bits - 1); | 
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| 115 | while (1) { | 
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| 116 | size_t bitsToSet = qMin(a: nBits, b: Bits - index); | 
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| 117 | quintptr mask = static_cast<quintptr>(-1) >> (Bits - bitsToSet) << index; | 
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| 118 | *bitmap |= mask; | 
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| 119 | nBits -= bitsToSet; | 
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| 120 | if (!nBits) | 
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| 121 | return; | 
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| 122 | index = 0; | 
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| 123 | ++bitmap; | 
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| 124 | } | 
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| 125 | } | 
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| 126 | static bool hasNonZeroBit(quintptr *bitmap) { | 
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| 127 | for (uint i = 0; i < EntriesInBitmap; ++i) | 
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| 128 | if (bitmap[i]) | 
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| 129 | return true; | 
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| 130 | return false; | 
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| 131 | } | 
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| 132 | static uint lowestNonZeroBit(quintptr *bitmap) { | 
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| 133 | for (uint i = 0; i < EntriesInBitmap; ++i) { | 
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| 134 | if (bitmap[i]) { | 
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| 135 | quintptr b = bitmap[i]; | 
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| 136 | return i*Bits + qCountTrailingZeroBits(v: b); | 
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| 137 | } | 
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| 138 | } | 
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| 139 | return 0; | 
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| 140 | } | 
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| 141 |  | 
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| 142 | uint nFreeSlots() const { | 
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| 143 | return AvailableSlots - nUsedSlots(); | 
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| 144 | } | 
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| 145 | uint nUsedSlots() const { | 
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| 146 | uint usedSlots = 0; | 
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| 147 | for (uint i = 0; i < EntriesInBitmap; ++i) { | 
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| 148 | quintptr used = objectBitmap[i] | extendsBitmap[i]; | 
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| 149 | usedSlots += qPopulationCount(v: used); | 
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| 150 | } | 
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| 151 | return usedSlots; | 
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| 152 | } | 
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| 153 |  | 
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| 154 | bool sweep(ClassDestroyStatsCallback classCountPtr); | 
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| 155 | void resetBlackBits(); | 
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| 156 | bool sweep(ExecutionEngine *engine); | 
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| 157 | void freeAll(ExecutionEngine *engine); | 
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| 158 |  | 
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| 159 | void sortIntoBins(HeapItem **bins, uint nBins); | 
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| 160 | }; | 
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| 161 |  | 
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| 162 | struct HeapItem { | 
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| 163 | union { | 
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| 164 | struct { | 
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| 165 | HeapItem *next; | 
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| 166 | size_t availableSlots; | 
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| 167 | } freeData; | 
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| 168 | quint64 payload[Chunk::SlotSize/sizeof(quint64)]; | 
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| 169 | }; | 
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| 170 | operator Heap::Base *() { return reinterpret_cast<Heap::Base *>(this); } | 
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| 171 |  | 
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| 172 | template<typename T> | 
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| 173 | T *as() { return static_cast<T *>(reinterpret_cast<Heap::Base *>(this)); } | 
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| 174 |  | 
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| 175 | Chunk *chunk() const { | 
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| 176 | return reinterpret_cast<Chunk *>(reinterpret_cast<quintptr>(this) >> Chunk::ChunkShift << Chunk::ChunkShift); | 
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| 177 | } | 
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| 178 |  | 
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| 179 | bool isBlack() const { | 
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| 180 | Chunk *c = chunk(); | 
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| 181 | std::ptrdiff_t index = this - c->realBase(); | 
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| 182 | return Chunk::testBit(bitmap: c->blackBitmap, index); | 
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| 183 | } | 
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| 184 | bool isInUse() const { | 
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| 185 | Chunk *c = chunk(); | 
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| 186 | std::ptrdiff_t index = this - c->realBase(); | 
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| 187 | return Chunk::testBit(bitmap: c->objectBitmap, index); | 
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| 188 | } | 
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| 189 |  | 
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| 190 | void setAllocatedSlots(size_t nSlots) { | 
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| 191 | //        Q_ASSERT(size && !(size % sizeof(HeapItem))); | 
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| 192 | Chunk *c = chunk(); | 
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| 193 | size_t index = this - c->realBase(); | 
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| 194 | //        Q_ASSERT(!Chunk::testBit(c->objectBitmap, index)); | 
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| 195 | Chunk::setBit(bitmap: c->objectBitmap, index); | 
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| 196 | Chunk::setBits(bitmap: c->extendsBitmap, index: index + 1, nBits: nSlots - 1); | 
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| 197 | //        for (uint i = index + 1; i < nBits - 1; ++i) | 
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| 198 | //            Q_ASSERT(Chunk::testBit(c->extendsBitmap, i)); | 
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| 199 | //        Q_ASSERT(!Chunk::testBit(c->extendsBitmap, index)); | 
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| 200 | } | 
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| 201 |  | 
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| 202 | // Doesn't report correctly for huge items | 
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| 203 | size_t size() const { | 
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| 204 | Chunk *c = chunk(); | 
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| 205 | std::ptrdiff_t index = this - c->realBase(); | 
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| 206 | Q_ASSERT(Chunk::testBit(c->objectBitmap, index)); | 
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| 207 | // ### optimize me | 
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| 208 | std::ptrdiff_t end = index + 1; | 
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| 209 | while (end < Chunk::NumSlots && Chunk::testBit(bitmap: c->extendsBitmap, index: end)) | 
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| 210 | ++end; | 
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| 211 | return (end - index)*sizeof(HeapItem); | 
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| 212 | } | 
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| 213 | }; | 
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| 214 |  | 
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| 215 | inline HeapItem *Chunk::realBase() | 
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| 216 | { | 
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| 217 | return reinterpret_cast<HeapItem *>(this); | 
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| 218 | } | 
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| 219 |  | 
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| 220 | inline HeapItem *Chunk::first() | 
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| 221 | { | 
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| 222 | return reinterpret_cast<HeapItem *>(data); | 
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| 223 | } | 
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| 224 |  | 
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| 225 | Q_STATIC_ASSERT(sizeof(Chunk) == Chunk::ChunkSize); | 
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| 226 | Q_STATIC_ASSERT((1 << Chunk::ChunkShift) == Chunk::ChunkSize); | 
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| 227 | Q_STATIC_ASSERT(1 << Chunk::SlotSizeShift == Chunk::SlotSize); | 
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| 228 | Q_STATIC_ASSERT(sizeof(HeapItem) == Chunk::SlotSize); | 
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| 229 | Q_STATIC_ASSERT(QT_POINTER_SIZE*8 == Chunk::Bits); | 
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| 230 | Q_STATIC_ASSERT((1 << Chunk::BitShift) == Chunk::Bits); | 
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| 231 |  | 
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| 232 | struct Q_QML_EXPORT MarkStack { | 
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| 233 | MarkStack(ExecutionEngine *engine); | 
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| 234 | ~MarkStack() { /* we drain manually */ } | 
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| 235 |  | 
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| 236 | void push(Heap::Base *m) { | 
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| 237 | *(m_top++) = m; | 
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| 238 |  | 
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| 239 | if (m_top < m_softLimit) | 
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| 240 | return; | 
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| 241 |  | 
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| 242 | // If at or above soft limit, partition the remaining space into at most 64 segments and | 
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| 243 | // allow one C++ recursion of drain() per segment, plus one for the fence post. | 
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| 244 | const quintptr segmentSize = qNextPowerOfTwo(v: quintptr(m_hardLimit - m_softLimit) / 64u); | 
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| 245 | if (m_drainRecursion * segmentSize <= quintptr(m_top - m_softLimit)) { | 
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| 246 | ++m_drainRecursion; | 
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| 247 | drain(); | 
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| 248 | --m_drainRecursion; | 
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| 249 | } else if (m_top == m_hardLimit) { | 
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| 250 | qFatal(msg: "GC mark stack overrun. Either simplify your application or" | 
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| 251 | "increase QV4_GC_MAX_STACK_SIZE"); | 
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| 252 | } | 
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| 253 | } | 
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| 254 |  | 
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| 255 | bool isEmpty() const { return m_top == m_base; } | 
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| 256 |  | 
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| 257 | qptrdiff remainingBeforeSoftLimit() const | 
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| 258 | { | 
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| 259 | return m_softLimit - m_top; | 
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| 260 | } | 
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| 261 |  | 
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| 262 | ExecutionEngine *engine() const { return m_engine; } | 
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| 263 |  | 
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| 264 | void drain(); | 
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| 265 | enum class DrainState { Ongoing, Complete }; | 
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| 266 | DrainState drain(QDeadlineTimer deadline); | 
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| 267 | void setSoftLimit(size_t size); | 
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| 268 | private: | 
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| 269 | Heap::Base *pop() { return *(--m_top); } | 
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| 270 |  | 
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| 271 | Heap::Base **m_top = nullptr; | 
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| 272 | Heap::Base **m_base = nullptr; | 
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| 273 | Heap::Base **m_softLimit = nullptr; | 
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| 274 | Heap::Base **m_hardLimit = nullptr; | 
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| 275 |  | 
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| 276 | ExecutionEngine *m_engine = nullptr; | 
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| 277 |  | 
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| 278 | quintptr m_drainRecursion = 0; | 
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| 279 | }; | 
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| 280 |  | 
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| 281 | // Some helper to automate the generation of our | 
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| 282 | // functions used for marking objects | 
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| 283 |  | 
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| 284 | #define HEAP_OBJECT_OFFSET_MEMBER_EXPANSION(c, gcType, type, name) \ | 
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| 285 | HEAP_OBJECT_OFFSET_MEMBER_EXPANSION_##gcType(c, type, name) | 
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| 286 |  | 
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| 287 | #define HEAP_OBJECT_OFFSET_MEMBER_EXPANSION_Pointer(c, type, name) Pointer<type, 0> name; | 
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| 288 | #define HEAP_OBJECT_OFFSET_MEMBER_EXPANSION_NoMark(c, type, name) type name; | 
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| 289 | #define HEAP_OBJECT_OFFSET_MEMBER_EXPANSION_HeapValue(c, type, name) HeapValue<0> name; | 
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| 290 | #define HEAP_OBJECT_OFFSET_MEMBER_EXPANSION_ValueArray(c, type, name) type<0> name; | 
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| 291 |  | 
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| 292 | #define HEAP_OBJECT_MEMBER_EXPANSION(c, gcType, type, name) \ | 
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| 293 | HEAP_OBJECT_MEMBER_EXPANSION_##gcType(c, type, name) | 
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| 294 |  | 
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| 295 | #define HEAP_OBJECT_MEMBER_EXPANSION_Pointer(c, type, name) \ | 
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| 296 | Pointer<type, offsetof(c##OffsetStruct, name) + baseOffset> name; | 
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| 297 | #define HEAP_OBJECT_MEMBER_EXPANSION_NoMark(c, type, name) \ | 
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| 298 | type name; | 
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| 299 | #define HEAP_OBJECT_MEMBER_EXPANSION_HeapValue(c, type, name) \ | 
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| 300 | HeapValue<offsetof(c##OffsetStruct, name) + baseOffset> name; | 
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| 301 | #define HEAP_OBJECT_MEMBER_EXPANSION_ValueArray(c, type, name) \ | 
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| 302 | type<offsetof(c##OffsetStruct, name) + baseOffset> name; | 
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| 303 |  | 
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| 304 | #define HEAP_OBJECT_MARKOBJECTS_EXPANSION(c, gcType, type, name) \ | 
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| 305 | HEAP_OBJECT_MARKOBJECTS_EXPANSION_##gcType(c, type, name) | 
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| 306 | #define HEAP_OBJECT_MARKOBJECTS_EXPANSION_Pointer(c, type, name) \ | 
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| 307 | if (o->name) o->name.heapObject()->mark(stack); | 
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| 308 | #define HEAP_OBJECT_MARKOBJECTS_EXPANSION_NoMark(c, type, name) | 
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| 309 | #define HEAP_OBJECT_MARKOBJECTS_EXPANSION_HeapValue(c, type, name) \ | 
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| 310 | o->name.mark(stack); | 
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| 311 | #define HEAP_OBJECT_MARKOBJECTS_EXPANSION_ValueArray(c, type, name) \ | 
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| 312 | o->name.mark(stack); | 
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| 313 |  | 
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| 314 |  | 
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| 315 | #define DECLARE_HEAP_OBJECT_BASE(name, base) \ | 
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| 316 | struct name##OffsetStruct { \ | 
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| 317 | name##Members(name, HEAP_OBJECT_OFFSET_MEMBER_EXPANSION) \ | 
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| 318 | }; \ | 
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| 319 | struct name##SizeStruct : base, name##OffsetStruct {}; \ | 
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| 320 | struct name##Data { \ | 
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| 321 | typedef base SuperClass; \ | 
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| 322 | static constexpr size_t baseOffset = sizeof(name##SizeStruct) - sizeof(name##OffsetStruct); \ | 
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| 323 | name##Members(name, HEAP_OBJECT_MEMBER_EXPANSION) \ | 
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| 324 | }; \ | 
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| 325 | Q_STATIC_ASSERT(sizeof(name##SizeStruct) == sizeof(name##Data) + name##Data::baseOffset); \ | 
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| 326 |  | 
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| 327 | #define DECLARE_HEAP_OBJECT(name, base) \ | 
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| 328 | DECLARE_HEAP_OBJECT_BASE(name, base) \ | 
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| 329 | struct name : base, name##Data | 
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| 330 | #define DECLARE_EXPORTED_HEAP_OBJECT(name, base) \ | 
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| 331 | DECLARE_HEAP_OBJECT_BASE(name, base) \ | 
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| 332 | struct Q_QML_EXPORT name : base, name##Data | 
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| 333 |  | 
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| 334 | #define DECLARE_MARKOBJECTS(class) \ | 
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| 335 | static void markObjects(Heap::Base *b, MarkStack *stack) { \ | 
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| 336 | class *o = static_cast<class *>(b); \ | 
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| 337 | class##Data::SuperClass::markObjects(o, stack); \ | 
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| 338 | class##Members(class, HEAP_OBJECT_MARKOBJECTS_EXPANSION) \ | 
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| 339 | } | 
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| 340 |  | 
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| 341 | } | 
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| 342 |  | 
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| 343 | QT_END_NAMESPACE | 
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| 344 |  | 
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| 345 | #endif | 
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| 346 |  | 
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