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Linux: added support for transparent huge pages
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@@ -87,14 +87,14 @@ xmrig::CpuWorker<N>::CpuWorker(size_t id, const CpuLaunchData &data) :
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if (!cn_heavyZen3Memory) {
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// Round up number of threads to the multiple of 8
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const size_t num_threads = ((m_threads + 7) / 8) * 8;
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cn_heavyZen3Memory = new VirtualMemory(m_algorithm.l3() * num_threads, data.hugePages, false, false, node());
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cn_heavyZen3Memory = new VirtualMemory(m_algorithm.l3() * num_threads, data.hugePages, false, false, node(), VirtualMemory::kDefaultHugePageSize);
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}
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m_memory = cn_heavyZen3Memory;
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}
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else
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# endif
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{
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m_memory = new VirtualMemory(m_algorithm.l3() * N, data.hugePages, false, true, node());
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m_memory = new VirtualMemory(m_algorithm.l3() * N, data.hugePages, false, true, node(), VirtualMemory::kDefaultHugePageSize);
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}
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# ifdef XMRIG_ALGO_GHOSTRIDER
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@@ -49,7 +49,7 @@ xmrig::MemoryPool::MemoryPool(size_t size, bool hugePages, uint32_t node)
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constexpr size_t alignment = 1 << 24;
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m_memory = new VirtualMemory(size * pageSize + alignment, hugePages, false, false, node);
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m_memory = new VirtualMemory(size * pageSize + alignment, hugePages, false, false, node, VirtualMemory::kDefaultHugePageSize);
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m_alignOffset = (alignment - (((size_t)m_memory->scratchpad()) % alignment)) % alignment;
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}
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@@ -75,6 +75,16 @@ xmrig::VirtualMemory::VirtualMemory(size_t size, bool hugePages, bool oneGbPages
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}
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m_scratchpad = static_cast<uint8_t*>(_mm_malloc(m_size, alignSize));
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// Huge pages failed to allocate, but try to enable transparent huge pages for the range
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if (alignSize >= kDefaultHugePageSize) {
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if (m_scratchpad) {
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adviseLargePages(m_scratchpad, m_size);
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}
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else {
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m_scratchpad = static_cast<uint8_t*>(_mm_malloc(m_size, 64));
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}
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}
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}
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@@ -65,6 +65,7 @@ public:
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static void *allocateExecutableMemory(size_t size, bool hugePages);
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static void *allocateLargePagesMemory(size_t size);
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static void *allocateOneGbPagesMemory(size_t size);
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static bool adviseLargePages(void *p, size_t size);
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static void destroy();
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static void flushInstructionCache(void *p, size_t size);
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static void freeLargePagesMemory(void *p, size_t size);
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@@ -276,6 +276,16 @@ bool xmrig::VirtualMemory::allocateOneGbPagesMemory()
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}
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bool xmrig::VirtualMemory::adviseLargePages(void *p, size_t size)
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{
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# ifdef XMRIG_OS_LINUX
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return (madvise(p, size, MADV_HUGEPAGE) == 0);
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# else
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return false;
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# endif
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}
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void xmrig::VirtualMemory::freeLargePagesMemory()
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{
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if (m_flags.test(FLAG_LOCK)) {
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@@ -260,6 +260,12 @@ bool xmrig::VirtualMemory::allocateOneGbPagesMemory()
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}
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bool xmrig::VirtualMemory::adviseLargePages(void *p, size_t size)
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{
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return false;
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}
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void xmrig::VirtualMemory::freeLargePagesMemory()
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{
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freeLargePagesMemory(m_scratchpad, m_size);
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@@ -215,7 +215,7 @@ void xmrig::RxDataset::allocate(bool hugePages, bool oneGbPages)
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return;
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}
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m_memory = new VirtualMemory(maxSize(), hugePages, oneGbPages, false, m_node);
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m_memory = new VirtualMemory(maxSize(), hugePages, oneGbPages, false, m_node, VirtualMemory::kDefaultHugePageSize);
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if (m_memory->isOneGbPages()) {
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m_scratchpadOffset = maxSize() + RANDOMX_CACHE_MAX_SIZE;
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@@ -115,7 +115,7 @@ static inline void checkHash(const JobBundle &bundle, std::vector<JobResult> &re
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static void getResults(JobBundle &bundle, std::vector<JobResult> &results, uint32_t &errors, bool hwAES)
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{
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const auto &algorithm = bundle.job.algorithm();
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auto memory = new VirtualMemory(algorithm.l3(), false, false, false);
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auto memory = new VirtualMemory(algorithm.l3(), false, false, false, 0, VirtualMemory::kDefaultHugePageSize);
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alignas(16) uint8_t hash[32]{ 0 };
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if (algorithm.family() == Algorithm::RANDOM_X) {
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