| /* |
| * Copyright (c) 1997, 2025, Oracle and/or its affiliates. All rights reserved. |
| * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER. |
| * |
| * This code is free software; you can redistribute it and/or modify it |
| * under the terms of the GNU General Public License version 2 only, as |
| * published by the Free Software Foundation. |
| * |
| * This code is distributed in the hope that it will be useful, but WITHOUT |
| * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or |
| * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License |
| * version 2 for more details (a copy is included in the LICENSE file that |
| * accompanied this code). |
| * |
| * You should have received a copy of the GNU General Public License version |
| * 2 along with this work; if not, write to the Free Software Foundation, |
| * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA. |
| * |
| * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA |
| * or visit www.oracle.com if you need additional information or have any |
| * questions. |
| * |
| */ |
| |
| #ifndef CPU_X86_VM_VERSION_X86_HPP |
| #define CPU_X86_VM_VERSION_X86_HPP |
| |
| #include "runtime/abstract_vm_version.hpp" |
| #include "utilities/debug.hpp" |
| #include "utilities/macros.hpp" |
| #include "utilities/sizes.hpp" |
| |
| class VM_Version : public Abstract_VM_Version { |
| friend class VMStructs; |
| friend class JVMCIVMStructs; |
| |
| public: |
| // cpuid result register layouts. These are all unions of a uint32_t |
| // (in case anyone wants access to the register as a whole) and a bitfield. |
| |
| union StdCpuid1Eax { |
| uint32_t value; |
| struct { |
| uint32_t stepping : 4, |
| model : 4, |
| family : 4, |
| proc_type : 2, |
| : 2, |
| ext_model : 4, |
| ext_family : 8, |
| : 4; |
| } bits; |
| }; |
| |
| union StdCpuid1Ebx { // example, unused |
| uint32_t value; |
| struct { |
| uint32_t brand_id : 8, |
| clflush_size : 8, |
| threads_per_cpu : 8, |
| apic_id : 8; |
| } bits; |
| }; |
| |
| union StdCpuid1Ecx { |
| uint32_t value; |
| struct { |
| uint32_t sse3 : 1, |
| clmul : 1, |
| : 1, |
| monitor : 1, |
| : 1, |
| vmx : 1, |
| : 1, |
| est : 1, |
| : 1, |
| ssse3 : 1, |
| cid : 1, |
| : 1, |
| fma : 1, |
| cmpxchg16: 1, |
| : 4, |
| dca : 1, |
| sse4_1 : 1, |
| sse4_2 : 1, |
| : 2, |
| popcnt : 1, |
| : 1, |
| aes : 1, |
| : 1, |
| osxsave : 1, |
| avx : 1, |
| f16c : 1, |
| : 1, |
| hv : 1; |
| } bits; |
| }; |
| |
| union StdCpuid1Edx { |
| uint32_t value; |
| struct { |
| uint32_t : 4, |
| tsc : 1, |
| : 3, |
| cmpxchg8 : 1, |
| : 6, |
| cmov : 1, |
| : 3, |
| clflush : 1, |
| : 3, |
| mmx : 1, |
| fxsr : 1, |
| sse : 1, |
| sse2 : 1, |
| : 1, |
| ht : 1, |
| : 3; |
| } bits; |
| }; |
| |
| union DcpCpuid4Eax { |
| uint32_t value; |
| struct { |
| uint32_t cache_type : 5, |
| : 21, |
| cores_per_cpu : 6; |
| } bits; |
| }; |
| |
| union DcpCpuid4Ebx { |
| uint32_t value; |
| struct { |
| uint32_t L1_line_size : 12, |
| partitions : 10, |
| associativity : 10; |
| } bits; |
| }; |
| |
| union TplCpuidBEbx { |
| uint32_t value; |
| struct { |
| uint32_t logical_cpus : 16, |
| : 16; |
| } bits; |
| }; |
| |
| union ExtCpuid1Ecx { |
| uint32_t value; |
| struct { |
| uint32_t LahfSahf : 1, |
| CmpLegacy : 1, |
| : 3, |
| lzcnt : 1, |
| sse4a : 1, |
| misalignsse : 1, |
| prefetchw : 1, |
| : 23; |
| } bits; |
| }; |
| |
| union ExtCpuid1Edx { |
| uint32_t value; |
| struct { |
| uint32_t : 22, |
| mmx_amd : 1, |
| mmx : 1, |
| fxsr : 1, |
| fxsr_opt : 1, |
| pdpe1gb : 1, |
| rdtscp : 1, |
| : 1, |
| long_mode : 1, |
| tdnow2 : 1, |
| tdnow : 1; |
| } bits; |
| }; |
| |
| union ExtCpuid5Ex { |
| uint32_t value; |
| struct { |
| uint32_t L1_line_size : 8, |
| L1_tag_lines : 8, |
| L1_assoc : 8, |
| L1_size : 8; |
| } bits; |
| }; |
| |
| union ExtCpuid7Edx { |
| uint32_t value; |
| struct { |
| uint32_t : 8, |
| tsc_invariance : 1, |
| : 23; |
| } bits; |
| }; |
| |
| union ExtCpuid8Ecx { |
| uint32_t value; |
| struct { |
| uint32_t cores_per_cpu : 8, |
| : 24; |
| } bits; |
| }; |
| |
| union SefCpuid7Eax { |
| uint32_t value; |
| }; |
| |
| union SefCpuid7Ebx { |
| uint32_t value; |
| struct { |
| uint32_t fsgsbase : 1, |
| : 2, |
| bmi1 : 1, |
| : 1, |
| avx2 : 1, |
| : 2, |
| bmi2 : 1, |
| erms : 1, |
| : 1, |
| rtm : 1, |
| : 4, |
| avx512f : 1, |
| avx512dq : 1, |
| : 1, |
| adx : 1, |
| : 1, |
| avx512ifma : 1, |
| : 1, |
| clflushopt : 1, |
| clwb : 1, |
| : 1, |
| avx512pf : 1, |
| avx512er : 1, |
| avx512cd : 1, |
| sha : 1, |
| avx512bw : 1, |
| avx512vl : 1; |
| } bits; |
| }; |
| |
| union SefCpuid7Ecx { |
| uint32_t value; |
| struct { |
| uint32_t prefetchwt1 : 1, |
| avx512_vbmi : 1, |
| umip : 1, |
| pku : 1, |
| ospke : 1, |
| : 1, |
| avx512_vbmi2 : 1, |
| cet_ss : 1, |
| gfni : 1, |
| vaes : 1, |
| avx512_vpclmulqdq : 1, |
| avx512_vnni : 1, |
| avx512_bitalg : 1, |
| : 1, |
| avx512_vpopcntdq : 1, |
| : 1, |
| : 1, |
| mawau : 5, |
| rdpid : 1, |
| : 9; |
| } bits; |
| }; |
| |
| union SefCpuid7Edx { |
| uint32_t value; |
| struct { |
| uint32_t : 2, |
| avx512_4vnniw : 1, |
| avx512_4fmaps : 1, |
| fast_short_rep_mov : 1, |
| : 9, |
| serialize : 1, |
| : 5, |
| cet_ibt : 1, |
| : 2, |
| avx512_fp16 : 1, |
| : 8; |
| } bits; |
| }; |
| |
| union SefCpuid7SubLeaf1Eax { |
| uint32_t value; |
| struct { |
| uint32_t sha512 : 1, |
| : 22, |
| avx_ifma : 1, |
| : 8; |
| } bits; |
| }; |
| |
| union SefCpuid7SubLeaf1Edx { |
| uint32_t value; |
| struct { |
| uint32_t : 19, |
| avx10 : 1, |
| : 1, |
| apx_f : 1, |
| : 10; |
| } bits; |
| }; |
| |
| union StdCpuidEax29Ecx0 { |
| uint32_t value; |
| struct { |
| uint32_t apx_nci_ndd_nf : 1, |
| : 31; |
| } bits; |
| }; |
| |
| union StdCpuid24MainLeafEax { |
| uint32_t value; |
| struct { |
| uint32_t sub_leaves_cnt : 31; |
| } bits; |
| }; |
| |
| union StdCpuid24MainLeafEbx { |
| uint32_t value; |
| struct { |
| uint32_t avx10_converged_isa_version : 8, |
| : 8, |
| : 2, |
| avx10_vlen_512 : 1, |
| : 13; |
| } bits; |
| }; |
| |
| union ExtCpuid1EEbx { |
| uint32_t value; |
| struct { |
| uint32_t : 8, |
| threads_per_core : 8, |
| : 16; |
| } bits; |
| }; |
| |
| union XemXcr0Eax { |
| uint32_t value; |
| struct { |
| uint32_t x87 : 1, |
| sse : 1, |
| ymm : 1, |
| bndregs : 1, |
| bndcsr : 1, |
| opmask : 1, |
| zmm512 : 1, |
| zmm32 : 1, |
| : 11, |
| apx_f : 1, |
| : 12; |
| } bits; |
| }; |
| |
| protected: |
| static int _cpu; |
| static int _model; |
| static int _stepping; |
| |
| static bool _has_intel_jcc_erratum; |
| |
| static address _cpuinfo_segv_addr; // address of instruction which causes SEGV |
| static address _cpuinfo_cont_addr; // address of instruction after the one which causes SEGV |
| static address _cpuinfo_segv_addr_apx; // address of instruction which causes APX specific SEGV |
| static address _cpuinfo_cont_addr_apx; // address of instruction after the one which causes APX specific SEGV |
| |
| /* |
| * Update following files when declaring new flags: |
| * test/lib-test/jdk/test/whitebox/CPUInfoTest.java |
| * src/jdk.internal.vm.ci/share/classes/jdk/vm/ci/amd64/AMD64.java |
| */ |
| enum Feature_Flag { |
| #define CPU_FEATURE_FLAGS(decl) \ |
| decl(CX8, "cx8", 0) /* next bits are from cpuid 1 (EDX) */ \ |
| decl(CMOV, "cmov", 1) \ |
| decl(FXSR, "fxsr", 2) \ |
| decl(HT, "ht", 3) \ |
| \ |
| decl(MMX, "mmx", 4) \ |
| decl(3DNOW_PREFETCH, "3dnowpref", 5) /* Processor supports 3dnow prefetch and prefetchw instructions */ \ |
| /* may not necessarily support other 3dnow instructions */ \ |
| decl(SSE, "sse", 6) \ |
| decl(SSE2, "sse2", 7) \ |
| \ |
| decl(SSE3, "sse3", 8 ) /* SSE3 comes from cpuid 1 (ECX) */ \ |
| decl(SSSE3, "ssse3", 9 ) \ |
| decl(SSE4A, "sse4a", 10) \ |
| decl(SSE4_1, "sse4.1", 11) \ |
| \ |
| decl(SSE4_2, "sse4.2", 12) \ |
| decl(POPCNT, "popcnt", 13) \ |
| decl(LZCNT, "lzcnt", 14) \ |
| decl(TSC, "tsc", 15) \ |
| \ |
| decl(TSCINV_BIT, "tscinvbit", 16) \ |
| decl(TSCINV, "tscinv", 17) \ |
| decl(AVX, "avx", 18) \ |
| decl(AVX2, "avx2", 19) \ |
| \ |
| decl(AES, "aes", 20) \ |
| decl(ERMS, "erms", 21) /* enhanced 'rep movsb/stosb' instructions */ \ |
| decl(CLMUL, "clmul", 22) /* carryless multiply for CRC */ \ |
| decl(BMI1, "bmi1", 23) \ |
| \ |
| decl(BMI2, "bmi2", 24) \ |
| decl(RTM, "rtm", 25) /* Restricted Transactional Memory instructions */ \ |
| decl(ADX, "adx", 26) \ |
| decl(AVX512F, "avx512f", 27) /* AVX 512bit foundation instructions */ \ |
| \ |
| decl(AVX512DQ, "avx512dq", 28) \ |
| decl(AVX512PF, "avx512pf", 29) \ |
| decl(AVX512ER, "avx512er", 30) \ |
| decl(AVX512CD, "avx512cd", 31) \ |
| \ |
| decl(AVX512BW, "avx512bw", 32) /* Byte and word vector instructions */ \ |
| decl(AVX512VL, "avx512vl", 33) /* EVEX instructions with smaller vector length */ \ |
| decl(SHA, "sha", 34) /* SHA instructions */ \ |
| decl(FMA, "fma", 35) /* FMA instructions */ \ |
| \ |
| decl(VZEROUPPER, "vzeroupper", 36) /* Vzeroupper instruction */ \ |
| decl(AVX512_VPOPCNTDQ, "avx512_vpopcntdq", 37) /* Vector popcount */ \ |
| decl(AVX512_VPCLMULQDQ, "avx512_vpclmulqdq", 38) /* Vector carryless multiplication */ \ |
| decl(AVX512_VAES, "avx512_vaes", 39) /* Vector AES instruction */ \ |
| \ |
| decl(AVX512_VNNI, "avx512_vnni", 40) /* Vector Neural Network Instructions */ \ |
| decl(FLUSH, "clflush", 41) /* flush instruction */ \ |
| decl(FLUSHOPT, "clflushopt", 42) /* flusopth instruction */ \ |
| decl(CLWB, "clwb", 43) /* clwb instruction */ \ |
| \ |
| decl(AVX512_VBMI2, "avx512_vbmi2", 44) /* VBMI2 shift left double instructions */ \ |
| decl(AVX512_VBMI, "avx512_vbmi", 45) /* Vector BMI instructions */ \ |
| decl(HV, "hv", 46) /* Hypervisor instructions */ \ |
| decl(SERIALIZE, "serialize", 47) /* CPU SERIALIZE */ \ |
| decl(RDTSCP, "rdtscp", 48) /* RDTSCP instruction */ \ |
| decl(RDPID, "rdpid", 49) /* RDPID instruction */ \ |
| decl(FSRM, "fsrm", 50) /* Fast Short REP MOV */ \ |
| decl(GFNI, "gfni", 51) /* Vector GFNI instructions */ \ |
| decl(AVX512_BITALG, "avx512_bitalg", 52) /* Vector sub-word popcount and bit gather instructions */\ |
| decl(F16C, "f16c", 53) /* Half-precision and single precision FP conversion instructions*/ \ |
| decl(PKU, "pku", 54) /* Protection keys for user-mode pages */ \ |
| decl(OSPKE, "ospke", 55) /* OS enables protection keys */ \ |
| decl(CET_IBT, "cet_ibt", 56) /* Control Flow Enforcement - Indirect Branch Tracking */ \ |
| decl(CET_SS, "cet_ss", 57) /* Control Flow Enforcement - Shadow Stack */ \ |
| decl(AVX512_IFMA, "avx512_ifma", 58) /* Integer Vector FMA instructions*/ \ |
| decl(AVX_IFMA, "avx_ifma", 59) /* 256-bit VEX-coded variant of AVX512-IFMA*/ \ |
| decl(APX_F, "apx_f", 60) /* Intel Advanced Performance Extensions*/ \ |
| decl(SHA512, "sha512", 61) /* SHA512 instructions*/ \ |
| decl(AVX512_FP16, "avx512_fp16", 62) /* AVX512 FP16 ISA support*/ \ |
| decl(AVX10_1, "avx10_1", 63) /* AVX10 512 bit vector ISA Version 1 support*/ \ |
| decl(AVX10_2, "avx10_2", 64) /* AVX10 512 bit vector ISA Version 2 support*/ |
| |
| #define DECLARE_CPU_FEATURE_FLAG(id, name, bit) CPU_##id = (bit), |
| CPU_FEATURE_FLAGS(DECLARE_CPU_FEATURE_FLAG) |
| #undef DECLARE_CPU_FEATURE_FLAG |
| MAX_CPU_FEATURES |
| }; |
| |
| class VM_Features { |
| friend class VMStructs; |
| friend class JVMCIVMStructs; |
| |
| private: |
| uint64_t _features_bitmap[(MAX_CPU_FEATURES / BitsPerLong) + 1]; |
| |
| STATIC_ASSERT(sizeof(_features_bitmap) * BitsPerByte >= MAX_CPU_FEATURES); |
| |
| // Number of 8-byte elements in _bitmap. |
| constexpr static int features_bitmap_element_count() { |
| return sizeof(_features_bitmap) / sizeof(uint64_t); |
| } |
| |
| constexpr static int features_bitmap_element_shift_count() { |
| return LogBitsPerLong; |
| } |
| |
| constexpr static uint64_t features_bitmap_element_mask() { |
| return (1ULL << features_bitmap_element_shift_count()) - 1; |
| } |
| |
| static int index(Feature_Flag feature) { |
| int idx = feature >> features_bitmap_element_shift_count(); |
| assert(idx < features_bitmap_element_count(), "Features array index out of bounds"); |
| return idx; |
| } |
| |
| static uint64_t bit_mask(Feature_Flag feature) { |
| return (1ULL << (feature & features_bitmap_element_mask())); |
| } |
| |
| static int _features_bitmap_size; // for JVMCI purposes |
| public: |
| VM_Features() { |
| for (int i = 0; i < features_bitmap_element_count(); i++) { |
| _features_bitmap[i] = 0; |
| } |
| } |
| |
| void set_feature(Feature_Flag feature) { |
| int idx = index(feature); |
| _features_bitmap[idx] |= bit_mask(feature); |
| } |
| |
| void clear_feature(VM_Version::Feature_Flag feature) { |
| int idx = index(feature); |
| _features_bitmap[idx] &= ~bit_mask(feature); |
| } |
| |
| bool supports_feature(VM_Version::Feature_Flag feature) { |
| int idx = index(feature); |
| return (_features_bitmap[idx] & bit_mask(feature)) != 0; |
| } |
| }; |
| |
| // CPU feature flags vector, can be affected by VM settings. |
| static VM_Features _features; |
| |
| // Original CPU feature flags vector, not affected by VM settings. |
| static VM_Features _cpu_features; |
| |
| static const char* _features_names[]; |
| |
| static void clear_cpu_features() { |
| _features = VM_Features(); |
| _cpu_features = VM_Features(); |
| } |
| |
| enum Extended_Family { |
| // AMD |
| CPU_FAMILY_AMD_11H = 0x11, |
| CPU_FAMILY_AMD_17H = 0x17, /* Zen1 & Zen2 */ |
| CPU_FAMILY_AMD_19H = 0x19, /* Zen3 & Zen4 */ |
| // ZX |
| CPU_FAMILY_ZX_CORE_F6 = 6, |
| CPU_FAMILY_ZX_CORE_F7 = 7, |
| // Intel |
| CPU_FAMILY_INTEL_CORE = 6, |
| CPU_MODEL_NEHALEM = 0x1e, |
| CPU_MODEL_NEHALEM_EP = 0x1a, |
| CPU_MODEL_NEHALEM_EX = 0x2e, |
| CPU_MODEL_WESTMERE = 0x25, |
| CPU_MODEL_WESTMERE_EP = 0x2c, |
| CPU_MODEL_WESTMERE_EX = 0x2f, |
| CPU_MODEL_SANDYBRIDGE = 0x2a, |
| CPU_MODEL_SANDYBRIDGE_EP = 0x2d, |
| CPU_MODEL_IVYBRIDGE_EP = 0x3a, |
| CPU_MODEL_HASWELL_E3 = 0x3c, |
| CPU_MODEL_HASWELL_E7 = 0x3f, |
| CPU_MODEL_BROADWELL = 0x3d, |
| CPU_MODEL_SKYLAKE = 0x55 |
| }; |
| |
| // cpuid information block. All info derived from executing cpuid with |
| // various function numbers is stored here. Intel and AMD info is |
| // merged in this block: accessor methods disentangle it. |
| // |
| // The info block is laid out in subblocks of 4 dwords corresponding to |
| // eax, ebx, ecx and edx, whether or not they contain anything useful. |
| class CpuidInfo { |
| public: |
| // cpuid function 0 |
| uint32_t std_max_function; |
| uint32_t std_vendor_name_0; |
| uint32_t std_vendor_name_1; |
| uint32_t std_vendor_name_2; |
| |
| // cpuid function 1 |
| StdCpuid1Eax std_cpuid1_eax; |
| StdCpuid1Ebx std_cpuid1_ebx; |
| StdCpuid1Ecx std_cpuid1_ecx; |
| StdCpuid1Edx std_cpuid1_edx; |
| |
| // cpuid function 4 (deterministic cache parameters) |
| DcpCpuid4Eax dcp_cpuid4_eax; |
| DcpCpuid4Ebx dcp_cpuid4_ebx; |
| uint32_t dcp_cpuid4_ecx; // unused currently |
| uint32_t dcp_cpuid4_edx; // unused currently |
| |
| // cpuid function 7 (structured extended features enumeration leaf) |
| // eax = 7, ecx = 0 |
| SefCpuid7Eax sef_cpuid7_eax; |
| SefCpuid7Ebx sef_cpuid7_ebx; |
| SefCpuid7Ecx sef_cpuid7_ecx; |
| SefCpuid7Edx sef_cpuid7_edx; |
| |
| // cpuid function 7 (structured extended features enumeration sub-leaf 1) |
| // eax = 7, ecx = 1 |
| SefCpuid7SubLeaf1Eax sefsl1_cpuid7_eax; |
| SefCpuid7SubLeaf1Edx sefsl1_cpuid7_edx; |
| |
| // cpuid function 24 converged vector ISA main leaf |
| // eax = 24, ecx = 0 |
| StdCpuid24MainLeafEax std_cpuid24_eax; |
| StdCpuid24MainLeafEbx std_cpuid24_ebx; |
| |
| // cpuid function 0x29 APX Advanced Performance Extensions Leaf |
| // eax = 0x29, ecx = 0 |
| StdCpuidEax29Ecx0 std_cpuid29_ebx; |
| |
| // cpuid function 0xB (processor topology) |
| // ecx = 0 |
| uint32_t tpl_cpuidB0_eax; |
| TplCpuidBEbx tpl_cpuidB0_ebx; |
| uint32_t tpl_cpuidB0_ecx; // unused currently |
| uint32_t tpl_cpuidB0_edx; // unused currently |
| |
| // ecx = 1 |
| uint32_t tpl_cpuidB1_eax; |
| TplCpuidBEbx tpl_cpuidB1_ebx; |
| uint32_t tpl_cpuidB1_ecx; // unused currently |
| uint32_t tpl_cpuidB1_edx; // unused currently |
| |
| // ecx = 2 |
| uint32_t tpl_cpuidB2_eax; |
| TplCpuidBEbx tpl_cpuidB2_ebx; |
| uint32_t tpl_cpuidB2_ecx; // unused currently |
| uint32_t tpl_cpuidB2_edx; // unused currently |
| |
| // cpuid function 0x80000000 // example, unused |
| uint32_t ext_max_function; |
| uint32_t ext_vendor_name_0; |
| uint32_t ext_vendor_name_1; |
| uint32_t ext_vendor_name_2; |
| |
| // cpuid function 0x80000001 |
| uint32_t ext_cpuid1_eax; // reserved |
| uint32_t ext_cpuid1_ebx; // reserved |
| ExtCpuid1Ecx ext_cpuid1_ecx; |
| ExtCpuid1Edx ext_cpuid1_edx; |
| |
| // cpuid functions 0x80000002 thru 0x80000004: example, unused |
| uint32_t proc_name_0, proc_name_1, proc_name_2, proc_name_3; |
| uint32_t proc_name_4, proc_name_5, proc_name_6, proc_name_7; |
| uint32_t proc_name_8, proc_name_9, proc_name_10,proc_name_11; |
| |
| // cpuid function 0x80000005 // AMD L1, Intel reserved |
| uint32_t ext_cpuid5_eax; // unused currently |
| uint32_t ext_cpuid5_ebx; // reserved |
| ExtCpuid5Ex ext_cpuid5_ecx; // L1 data cache info (AMD) |
| ExtCpuid5Ex ext_cpuid5_edx; // L1 instruction cache info (AMD) |
| |
| // cpuid function 0x80000007 |
| uint32_t ext_cpuid7_eax; // reserved |
| uint32_t ext_cpuid7_ebx; // reserved |
| uint32_t ext_cpuid7_ecx; // reserved |
| ExtCpuid7Edx ext_cpuid7_edx; // tscinv |
| |
| // cpuid function 0x80000008 |
| uint32_t ext_cpuid8_eax; // unused currently |
| uint32_t ext_cpuid8_ebx; // reserved |
| ExtCpuid8Ecx ext_cpuid8_ecx; |
| uint32_t ext_cpuid8_edx; // reserved |
| |
| // cpuid function 0x8000001E // AMD 17h |
| uint32_t ext_cpuid1E_eax; |
| ExtCpuid1EEbx ext_cpuid1E_ebx; // threads per core (AMD17h) |
| uint32_t ext_cpuid1E_ecx; |
| uint32_t ext_cpuid1E_edx; // unused currently |
| |
| // extended control register XCR0 (the XFEATURE_ENABLED_MASK register) |
| XemXcr0Eax xem_xcr0_eax; |
| uint32_t xem_xcr0_edx; // reserved |
| |
| // Space to save ymm registers after signal handle |
| int ymm_save[8*4]; // Save ymm0, ymm7, ymm8, ymm15 |
| |
| // Space to save zmm registers after signal handle |
| int zmm_save[16*4]; // Save zmm0, zmm7, zmm8, zmm31 |
| |
| // Space to save apx registers after signal handle |
| jlong apx_save[2]; // Save r16 and r31 |
| |
| VM_Features feature_flags() const; |
| |
| // Asserts |
| void assert_is_initialized() const { |
| assert(std_cpuid1_eax.bits.family != 0, "VM_Version not initialized"); |
| } |
| |
| // Extractors |
| uint32_t extended_cpu_family() const { |
| uint32_t result = std_cpuid1_eax.bits.family; |
| result += std_cpuid1_eax.bits.ext_family; |
| return result; |
| } |
| |
| uint32_t extended_cpu_model() const { |
| uint32_t result = std_cpuid1_eax.bits.model; |
| result |= std_cpuid1_eax.bits.ext_model << 4; |
| return result; |
| } |
| |
| uint32_t cpu_stepping() const { |
| uint32_t result = std_cpuid1_eax.bits.stepping; |
| return result; |
| } |
| }; |
| |
| private: |
| // The actual cpuid info block |
| static CpuidInfo _cpuid_info; |
| |
| // Extractors and predicates |
| static uint logical_processor_count() { |
| uint result = threads_per_core(); |
| return result; |
| } |
| |
| static bool compute_has_intel_jcc_erratum(); |
| |
| static bool os_supports_avx_vectors(); |
| static bool os_supports_apx_egprs(); |
| static void get_processor_features(); |
| |
| public: |
| // Offsets for cpuid asm stub |
| static ByteSize std_cpuid0_offset() { return byte_offset_of(CpuidInfo, std_max_function); } |
| static ByteSize std_cpuid1_offset() { return byte_offset_of(CpuidInfo, std_cpuid1_eax); } |
| static ByteSize std_cpuid24_offset() { return byte_offset_of(CpuidInfo, std_cpuid24_eax); } |
| static ByteSize std_cpuid29_offset() { return byte_offset_of(CpuidInfo, std_cpuid29_ebx); } |
| static ByteSize dcp_cpuid4_offset() { return byte_offset_of(CpuidInfo, dcp_cpuid4_eax); } |
| static ByteSize sef_cpuid7_offset() { return byte_offset_of(CpuidInfo, sef_cpuid7_eax); } |
| static ByteSize sefsl1_cpuid7_offset() { return byte_offset_of(CpuidInfo, sefsl1_cpuid7_eax); } |
| static ByteSize ext_cpuid1_offset() { return byte_offset_of(CpuidInfo, ext_cpuid1_eax); } |
| static ByteSize ext_cpuid5_offset() { return byte_offset_of(CpuidInfo, ext_cpuid5_eax); } |
| static ByteSize ext_cpuid7_offset() { return byte_offset_of(CpuidInfo, ext_cpuid7_eax); } |
| static ByteSize ext_cpuid8_offset() { return byte_offset_of(CpuidInfo, ext_cpuid8_eax); } |
| static ByteSize ext_cpuid1E_offset() { return byte_offset_of(CpuidInfo, ext_cpuid1E_eax); } |
| static ByteSize tpl_cpuidB0_offset() { return byte_offset_of(CpuidInfo, tpl_cpuidB0_eax); } |
| static ByteSize tpl_cpuidB1_offset() { return byte_offset_of(CpuidInfo, tpl_cpuidB1_eax); } |
| static ByteSize tpl_cpuidB2_offset() { return byte_offset_of(CpuidInfo, tpl_cpuidB2_eax); } |
| static ByteSize xem_xcr0_offset() { return byte_offset_of(CpuidInfo, xem_xcr0_eax); } |
| static ByteSize ymm_save_offset() { return byte_offset_of(CpuidInfo, ymm_save); } |
| static ByteSize zmm_save_offset() { return byte_offset_of(CpuidInfo, zmm_save); } |
| static ByteSize apx_save_offset() { return byte_offset_of(CpuidInfo, apx_save); } |
| |
| // The value used to check ymm register after signal handle |
| static int ymm_test_value() { return 0xCAFEBABE; } |
| static jlong egpr_test_value() { return 0xCAFEBABECAFEBABELL; } |
| |
| static void get_cpu_info_wrapper(); |
| static void set_cpuinfo_segv_addr(address pc) { _cpuinfo_segv_addr = pc; } |
| static bool is_cpuinfo_segv_addr(address pc) { return _cpuinfo_segv_addr == pc; } |
| static void set_cpuinfo_cont_addr(address pc) { _cpuinfo_cont_addr = pc; } |
| static address cpuinfo_cont_addr() { return _cpuinfo_cont_addr; } |
| |
| static void set_cpuinfo_segv_addr_apx(address pc) { _cpuinfo_segv_addr_apx = pc; } |
| static bool is_cpuinfo_segv_addr_apx(address pc) { return _cpuinfo_segv_addr_apx == pc; } |
| static void set_cpuinfo_cont_addr_apx(address pc) { _cpuinfo_cont_addr_apx = pc; } |
| static address cpuinfo_cont_addr_apx() { return _cpuinfo_cont_addr_apx; } |
| |
| static void clear_apx_test_state(); |
| |
| static void clean_cpuFeatures() { |
| VM_Version::clear_cpu_features(); |
| } |
| static void set_avx_cpuFeatures() { |
| _features.set_feature(CPU_SSE); |
| _features.set_feature(CPU_SSE2); |
| _features.set_feature(CPU_AVX); |
| _features.set_feature(CPU_VZEROUPPER); |
| } |
| static void set_evex_cpuFeatures() { |
| _features.set_feature(CPU_AVX10_1); |
| _features.set_feature(CPU_AVX512F); |
| _features.set_feature(CPU_SSE); |
| _features.set_feature(CPU_SSE2); |
| _features.set_feature(CPU_VZEROUPPER); |
| } |
| static void set_apx_cpuFeatures() { |
| _features.set_feature(CPU_APX_F); |
| } |
| static void set_bmi_cpuFeatures() { |
| _features.set_feature(CPU_BMI1); |
| _features.set_feature(CPU_BMI2); |
| _features.set_feature(CPU_LZCNT); |
| _features.set_feature(CPU_POPCNT); |
| } |
| |
| // Initialization |
| static void initialize(); |
| |
| // Override Abstract_VM_Version implementation |
| static void print_platform_virtualization_info(outputStream*); |
| |
| // |
| // Processor family: |
| // 3 - 386 |
| // 4 - 486 |
| // 5 - Pentium |
| // 6 - PentiumPro, Pentium II, Celeron, Xeon, Pentium III, Athlon, |
| // Pentium M, Core Solo, Core Duo, Core2 Duo |
| // family 6 model: 9, 13, 14, 15 |
| // 0x0f - Pentium 4, Opteron |
| // |
| // Note: The cpu family should be used to select between |
| // instruction sequences which are valid on all Intel |
| // processors. Use the feature test functions below to |
| // determine whether a particular instruction is supported. |
| // |
| static void assert_is_initialized() { _cpuid_info.assert_is_initialized(); } |
| static uint32_t extended_cpu_family() { return _cpuid_info.extended_cpu_family(); } |
| static uint32_t extended_cpu_model() { return _cpuid_info.extended_cpu_model(); } |
| static uint32_t cpu_stepping() { return _cpuid_info.cpu_stepping(); } |
| static int cpu_family() { return _cpu;} |
| static bool is_P6() { return cpu_family() >= 6; } |
| static bool is_intel_server_family() { return cpu_family() == 6 || cpu_family() == 19; } |
| static bool is_amd() { assert_is_initialized(); return _cpuid_info.std_vendor_name_0 == 0x68747541; } // 'htuA' |
| static bool is_hygon() { assert_is_initialized(); return _cpuid_info.std_vendor_name_0 == 0x6F677948; } // 'ogyH' |
| static bool is_amd_family() { return is_amd() || is_hygon(); } |
| static bool is_intel() { assert_is_initialized(); return _cpuid_info.std_vendor_name_0 == 0x756e6547; } // 'uneG' |
| static bool is_zx() { assert_is_initialized(); return (_cpuid_info.std_vendor_name_0 == 0x746e6543) || (_cpuid_info.std_vendor_name_0 == 0x68532020); } // 'tneC'||'hS ' |
| static bool is_atom_family() { return ((cpu_family() == 0x06) && ((extended_cpu_model() == 0x36) || (extended_cpu_model() == 0x37) || (extended_cpu_model() == 0x4D))); } //Silvermont and Centerton |
| static bool is_knights_family() { return UseKNLSetting || ((cpu_family() == 0x06) && ((extended_cpu_model() == 0x57) || (extended_cpu_model() == 0x85))); } // Xeon Phi 3200/5200/7200 and Future Xeon Phi |
| |
| static bool supports_processor_topology() { |
| return (_cpuid_info.std_max_function >= 0xB) && |
| // eax[4:0] | ebx[0:15] == 0 indicates invalid topology level. |
| // Some cpus have max cpuid >= 0xB but do not support processor topology. |
| (((_cpuid_info.tpl_cpuidB0_eax & 0x1f) | _cpuid_info.tpl_cpuidB0_ebx.bits.logical_cpus) != 0); |
| } |
| |
| static uint cores_per_cpu(); |
| static uint threads_per_core(); |
| static uint L1_line_size(); |
| |
| static uint prefetch_data_size() { |
| return L1_line_size(); |
| } |
| |
| // |
| // Feature identification which can be affected by VM settings |
| // |
| static bool supports_cmov() { return _features.supports_feature(CPU_CMOV); } |
| static bool supports_fxsr() { return _features.supports_feature(CPU_FXSR); } |
| static bool supports_ht() { return _features.supports_feature(CPU_HT); } |
| static bool supports_mmx() { return _features.supports_feature(CPU_MMX); } |
| static bool supports_sse() { return _features.supports_feature(CPU_SSE); } |
| static bool supports_sse2() { return _features.supports_feature(CPU_SSE2); } |
| static bool supports_sse3() { return _features.supports_feature(CPU_SSE3); } |
| static bool supports_ssse3() { return _features.supports_feature(CPU_SSSE3); } |
| static bool supports_sse4_1() { return _features.supports_feature(CPU_SSE4_1); } |
| static bool supports_sse4_2() { return _features.supports_feature(CPU_SSE4_2); } |
| static bool supports_popcnt() { return _features.supports_feature(CPU_POPCNT); } |
| static bool supports_avx() { return _features.supports_feature(CPU_AVX); } |
| static bool supports_avx2() { return _features.supports_feature(CPU_AVX2); } |
| static bool supports_tsc() { return _features.supports_feature(CPU_TSC); } |
| static bool supports_rdtscp() { return _features.supports_feature(CPU_RDTSCP); } |
| static bool supports_rdpid() { return _features.supports_feature(CPU_RDPID); } |
| static bool supports_aes() { return _features.supports_feature(CPU_AES); } |
| static bool supports_erms() { return _features.supports_feature(CPU_ERMS); } |
| static bool supports_fsrm() { return _features.supports_feature(CPU_FSRM); } |
| static bool supports_clmul() { return _features.supports_feature(CPU_CLMUL); } |
| static bool supports_rtm() { return _features.supports_feature(CPU_RTM); } |
| static bool supports_bmi1() { return _features.supports_feature(CPU_BMI1); } |
| static bool supports_bmi2() { return _features.supports_feature(CPU_BMI2); } |
| static bool supports_adx() { return _features.supports_feature(CPU_ADX); } |
| static bool supports_evex() { return _features.supports_feature(CPU_AVX512F); } |
| static bool supports_avx512dq() { return _features.supports_feature(CPU_AVX512DQ); } |
| static bool supports_avx512ifma() { return _features.supports_feature(CPU_AVX512_IFMA); } |
| static bool supports_avxifma() { return _features.supports_feature(CPU_AVX_IFMA); } |
| static bool supports_avx512pf() { return _features.supports_feature(CPU_AVX512PF); } |
| static bool supports_avx512er() { return _features.supports_feature(CPU_AVX512ER); } |
| static bool supports_avx512cd() { return _features.supports_feature(CPU_AVX512CD); } |
| static bool supports_avx512bw() { return _features.supports_feature(CPU_AVX512BW); } |
| static bool supports_avx512vl() { return _features.supports_feature(CPU_AVX512VL); } |
| static bool supports_avx512vlbw() { return (supports_evex() && supports_avx512bw() && supports_avx512vl()); } |
| static bool supports_avx512bwdq() { return (supports_evex() && supports_avx512bw() && supports_avx512dq()); } |
| static bool supports_avx512vldq() { return (supports_evex() && supports_avx512dq() && supports_avx512vl()); } |
| static bool supports_avx512vlbwdq() { return (supports_evex() && supports_avx512vl() && |
| supports_avx512bw() && supports_avx512dq()); } |
| static bool supports_avx512novl() { return (supports_evex() && !supports_avx512vl()); } |
| static bool supports_avx512nobw() { return (supports_evex() && !supports_avx512bw()); } |
| static bool supports_avx256only() { return (supports_avx2() && !supports_evex()); } |
| static bool supports_apx_f() { return _features.supports_feature(CPU_APX_F); } |
| static bool supports_avxonly() { return ((supports_avx2() || supports_avx()) && !supports_evex()); } |
| static bool supports_sha() { return _features.supports_feature(CPU_SHA); } |
| static bool supports_fma() { return _features.supports_feature(CPU_FMA) && supports_avx(); } |
| static bool supports_vzeroupper() { return _features.supports_feature(CPU_VZEROUPPER); } |
| static bool supports_avx512_vpopcntdq() { return _features.supports_feature(CPU_AVX512_VPOPCNTDQ); } |
| static bool supports_avx512_vpclmulqdq() { return _features.supports_feature(CPU_AVX512_VPCLMULQDQ); } |
| static bool supports_avx512_vaes() { return _features.supports_feature(CPU_AVX512_VAES); } |
| static bool supports_gfni() { return _features.supports_feature(CPU_GFNI); } |
| static bool supports_avx512_vnni() { return _features.supports_feature(CPU_AVX512_VNNI); } |
| static bool supports_avx512_bitalg() { return _features.supports_feature(CPU_AVX512_BITALG); } |
| static bool supports_avx512_vbmi() { return _features.supports_feature(CPU_AVX512_VBMI); } |
| static bool supports_avx512_vbmi2() { return _features.supports_feature(CPU_AVX512_VBMI2); } |
| static bool supports_avx512_fp16() { return _features.supports_feature(CPU_AVX512_FP16); } |
| static bool supports_hv() { return _features.supports_feature(CPU_HV); } |
| static bool supports_serialize() { return _features.supports_feature(CPU_SERIALIZE); } |
| static bool supports_f16c() { return _features.supports_feature(CPU_F16C); } |
| static bool supports_pku() { return _features.supports_feature(CPU_PKU); } |
| static bool supports_ospke() { return _features.supports_feature(CPU_OSPKE); } |
| static bool supports_cet_ss() { return _features.supports_feature(CPU_CET_SS); } |
| static bool supports_cet_ibt() { return _features.supports_feature(CPU_CET_IBT); } |
| static bool supports_sha512() { return _features.supports_feature(CPU_SHA512); } |
| |
| // Intel® AVX10 introduces a versioned approach for enumeration that is monotonically increasing, inclusive, |
| // and supporting all vector lengths. Feature set supported by an AVX10 vector ISA version is also supported |
| // by all the versions above it. |
| static bool supports_avx10_1() { return _features.supports_feature(CPU_AVX10_1);} |
| static bool supports_avx10_2() { return _features.supports_feature(CPU_AVX10_2);} |
| |
| // |
| // Feature identification not affected by VM flags |
| // |
| static bool cpu_supports_evex() { return _cpu_features.supports_feature(CPU_AVX512F); } |
| |
| static bool supports_avx512_simd_sort() { |
| if (supports_avx512dq()) { |
| // Disable AVX512 version of SIMD Sort on AMD Zen4 Processors. |
| if (is_amd() && cpu_family() == CPU_FAMILY_AMD_19H) { |
| return false; |
| } |
| return true; |
| } |
| return false; |
| } |
| |
| // Intel features |
| static bool is_intel_family_core() { return is_intel() && |
| extended_cpu_family() == CPU_FAMILY_INTEL_CORE; } |
| |
| static bool is_intel_skylake() { return is_intel_family_core() && |
| extended_cpu_model() == CPU_MODEL_SKYLAKE; } |
| |
| #ifdef COMPILER2 |
| // Determine if it's running on Cascade Lake using default options. |
| static bool is_default_intel_cascade_lake(); |
| #endif |
| |
| static bool is_intel_cascade_lake(); |
| |
| static int avx3_threshold(); |
| |
| static bool is_intel_tsc_synched_at_init(); |
| |
| static void insert_features_names(VM_Version::VM_Features features, char* buf, size_t buflen); |
| |
| // This checks if the JVM is potentially affected by an erratum on Intel CPUs (SKX102) |
| // that causes unpredictable behaviour when jcc crosses 64 byte boundaries. Its microcode |
| // mitigation causes regressions when jumps or fused conditional branches cross or end at |
| // 32 byte boundaries. |
| static bool has_intel_jcc_erratum() { return _has_intel_jcc_erratum; } |
| |
| // AMD features |
| static bool supports_3dnow_prefetch() { return _features.supports_feature(CPU_3DNOW_PREFETCH); } |
| static bool supports_lzcnt() { return _features.supports_feature(CPU_LZCNT); } |
| static bool supports_sse4a() { return _features.supports_feature(CPU_SSE4A); } |
| |
| static bool is_amd_Barcelona() { return is_amd() && |
| extended_cpu_family() == CPU_FAMILY_AMD_11H; } |
| |
| // Intel and AMD newer cores support fast timestamps well |
| static bool supports_tscinv_bit() { |
| return _features.supports_feature(CPU_TSCINV_BIT); |
| } |
| static bool supports_tscinv() { |
| return _features.supports_feature(CPU_TSCINV); |
| } |
| |
| // Intel Core and newer cpus have fast IDIV instruction (excluding Atom). |
| static bool has_fast_idiv() { return is_intel() && is_intel_server_family() && |
| supports_sse3() && _model != 0x1C; } |
| |
| static bool supports_compare_and_exchange() { return true; } |
| |
| static int allocate_prefetch_distance(bool use_watermark_prefetch); |
| |
| // SSE2 and later processors implement a 'pause' instruction |
| // that can be used for efficient implementation of |
| // the intrinsic for java.lang.Thread.onSpinWait() |
| static bool supports_on_spin_wait() { return supports_sse2(); } |
| |
| // x86_64 supports fast class initialization checks |
| static bool supports_fast_class_init_checks() { |
| return true; |
| } |
| |
| // x86_64 supports secondary supers table |
| constexpr static bool supports_secondary_supers_table() { |
| return true; |
| } |
| |
| constexpr static bool supports_stack_watermark_barrier() { |
| return true; |
| } |
| |
| constexpr static bool supports_recursive_lightweight_locking() { |
| return true; |
| } |
| |
| // For AVX CPUs only. f16c support is disabled if UseAVX == 0. |
| static bool supports_float16() { |
| return supports_f16c() || supports_avx512vl() || supports_avx512_fp16(); |
| } |
| |
| // Check intrinsic support |
| static bool is_intrinsic_supported(vmIntrinsicID id); |
| |
| // there are several insns to force cache line sync to memory which |
| // we can use to ensure mapped non-volatile memory is up to date with |
| // pending in-cache changes. |
| // |
| // 64 bit cpus always support clflush which writes back and evicts |
| // on 32 bit cpus support is recorded via a feature flag |
| // |
| // clflushopt is optional and acts like clflush except it does |
| // not synchronize with other memory ops. it needs a preceding |
| // and trailing StoreStore fence |
| // |
| // clwb is an optional intel-specific instruction which |
| // writes back without evicting the line. it also does not |
| // synchronize with other memory ops. so, it needs preceding |
| // and trailing StoreStore fences. |
| |
| static bool supports_clflush(); // Can't inline due to header file conflict |
| |
| // Note: CPU_FLUSHOPT and CPU_CLWB bits should always be zero for 32-bit |
| static bool supports_clflushopt() { return (_features.supports_feature(CPU_FLUSHOPT)); } |
| static bool supports_clwb() { return (_features.supports_feature(CPU_CLWB)); } |
| |
| // Old CPUs perform lea on AGU which causes additional latency transferring the |
| // value from/to ALU for other operations |
| static bool supports_fast_2op_lea() { |
| return (is_intel() && supports_avx()) || // Sandy Bridge and above |
| (is_amd() && supports_avx()); // Jaguar and Bulldozer and above |
| } |
| |
| // Pre Icelake Intels suffer inefficiency regarding 3-operand lea, which contains |
| // all of base register, index register and displacement immediate, with 3 latency. |
| // Note that when the address contains no displacement but the base register is |
| // rbp or r13, the machine code must contain a zero displacement immediate, |
| // effectively transform a 2-operand lea into a 3-operand lea. This can be |
| // replaced by add-add or lea-add |
| static bool supports_fast_3op_lea() { |
| return supports_fast_2op_lea() && |
| ((is_intel() && supports_clwb() && !is_intel_skylake()) || // Icelake and above |
| is_amd()); |
| } |
| |
| #ifdef __APPLE__ |
| // Is the CPU running emulated (for example macOS Rosetta running x86_64 code on M1 ARM (aarch64) |
| static bool is_cpu_emulated(); |
| #endif |
| |
| // support functions for virtualization detection |
| private: |
| static void check_virtualizations(); |
| |
| static const char* cpu_family_description(void); |
| static const char* cpu_model_description(void); |
| static const char* cpu_brand(void); |
| static const char* cpu_brand_string(void); |
| |
| static int cpu_type_description(char* const buf, size_t buf_len); |
| static int cpu_detailed_description(char* const buf, size_t buf_len); |
| static int cpu_extended_brand_string(char* const buf, size_t buf_len); |
| |
| static bool cpu_is_em64t(void); |
| static bool is_netburst(void); |
| |
| // Returns bytes written excluding termninating null byte. |
| static size_t cpu_write_support_string(char* const buf, size_t buf_len); |
| static void resolve_cpu_information_details(void); |
| static int64_t max_qualified_cpu_freq_from_brand_string(void); |
| |
| public: |
| // Offsets for cpuid asm stub brand string |
| static ByteSize proc_name_0_offset() { return byte_offset_of(CpuidInfo, proc_name_0); } |
| static ByteSize proc_name_1_offset() { return byte_offset_of(CpuidInfo, proc_name_1); } |
| static ByteSize proc_name_2_offset() { return byte_offset_of(CpuidInfo, proc_name_2); } |
| static ByteSize proc_name_3_offset() { return byte_offset_of(CpuidInfo, proc_name_3); } |
| static ByteSize proc_name_4_offset() { return byte_offset_of(CpuidInfo, proc_name_4); } |
| static ByteSize proc_name_5_offset() { return byte_offset_of(CpuidInfo, proc_name_5); } |
| static ByteSize proc_name_6_offset() { return byte_offset_of(CpuidInfo, proc_name_6); } |
| static ByteSize proc_name_7_offset() { return byte_offset_of(CpuidInfo, proc_name_7); } |
| static ByteSize proc_name_8_offset() { return byte_offset_of(CpuidInfo, proc_name_8); } |
| static ByteSize proc_name_9_offset() { return byte_offset_of(CpuidInfo, proc_name_9); } |
| static ByteSize proc_name_10_offset() { return byte_offset_of(CpuidInfo, proc_name_10); } |
| static ByteSize proc_name_11_offset() { return byte_offset_of(CpuidInfo, proc_name_11); } |
| |
| static int64_t maximum_qualified_cpu_frequency(void); |
| |
| static bool supports_tscinv_ext(void); |
| |
| static void initialize_tsc(); |
| static void initialize_cpu_information(void); |
| }; |
| |
| #endif // CPU_X86_VM_VERSION_X86_HPP |