be986094a3
Some libraries (e.g. Dinkumware) perform strict checks on whether the symbols defined in classic C library headers (e.g. <stdio.h>), or in C++-style C library headers (e.g. <cmath>) are used correctly (respectively, in the global namespace, or in namespace std). BUG= R=danno@chromium.org Review URL: https://codereview.chromium.org/121303005 git-svn-id: http://v8.googlecode.com/svn/branches/bleeding_edge@18578 ce2b1a6d-e550-0410-aec6-3dcde31c8c00
506 lines
15 KiB
C++
506 lines
15 KiB
C++
// Copyright 2013 the V8 project authors. All rights reserved.
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// Redistribution and use in source and binary forms, with or without
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// modification, are permitted provided that the following conditions are
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// met:
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//
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// * Redistributions of source code must retain the above copyright
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// notice, this list of conditions and the following disclaimer.
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// * Redistributions in binary form must reproduce the above
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// copyright notice, this list of conditions and the following
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// disclaimer in the documentation and/or other materials provided
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// with the distribution.
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// * Neither the name of Google Inc. nor the names of its
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// contributors may be used to endorse or promote products derived
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// from this software without specific prior written permission.
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//
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// THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
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// "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
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// LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
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// A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
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// OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
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// SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
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// LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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// DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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// THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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// (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
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// OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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#include "cpu.h"
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#if V8_CC_MSVC
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#include <intrin.h> // __cpuid()
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#endif
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#if V8_OS_POSIX
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#include <unistd.h> // sysconf()
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#endif
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#if V8_OS_QNX
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#include <sys/syspage.h> // cpuinfo
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#endif
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#include <ctype.h>
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#include <limits.h>
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include <algorithm>
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#include "checks.h"
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#if V8_OS_WIN
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#include "win32-headers.h"
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#endif
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namespace v8 {
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namespace internal {
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#if V8_HOST_ARCH_IA32 || V8_HOST_ARCH_X64
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// Define __cpuid() for non-MSVC compilers.
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#if !V8_CC_MSVC
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static V8_INLINE void __cpuid(int cpu_info[4], int info_type) {
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#if defined(__i386__) && defined(__pic__)
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// Make sure to preserve ebx, which contains the pointer
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// to the GOT in case we're generating PIC.
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__asm__ volatile (
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"mov %%ebx, %%edi\n\t"
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"cpuid\n\t"
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"xchg %%edi, %%ebx\n\t"
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: "=a"(cpu_info[0]), "=D"(cpu_info[1]), "=c"(cpu_info[2]), "=d"(cpu_info[3])
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: "a"(info_type)
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);
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#else
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__asm__ volatile (
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"cpuid \n\t"
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: "=a"(cpu_info[0]), "=b"(cpu_info[1]), "=c"(cpu_info[2]), "=d"(cpu_info[3])
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: "a"(info_type)
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);
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#endif // defined(__i386__) && defined(__pic__)
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}
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#endif // !V8_CC_MSVC
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#elif V8_HOST_ARCH_ARM || V8_HOST_ARCH_MIPS
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#if V8_OS_LINUX
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#if V8_HOST_ARCH_ARM
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// See <uapi/asm/hwcap.h> kernel header.
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/*
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* HWCAP flags - for elf_hwcap (in kernel) and AT_HWCAP
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*/
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#define HWCAP_SWP (1 << 0)
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#define HWCAP_HALF (1 << 1)
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#define HWCAP_THUMB (1 << 2)
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#define HWCAP_26BIT (1 << 3) /* Play it safe */
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#define HWCAP_FAST_MULT (1 << 4)
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#define HWCAP_FPA (1 << 5)
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#define HWCAP_VFP (1 << 6)
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#define HWCAP_EDSP (1 << 7)
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#define HWCAP_JAVA (1 << 8)
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#define HWCAP_IWMMXT (1 << 9)
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#define HWCAP_CRUNCH (1 << 10)
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#define HWCAP_THUMBEE (1 << 11)
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#define HWCAP_NEON (1 << 12)
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#define HWCAP_VFPv3 (1 << 13)
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#define HWCAP_VFPv3D16 (1 << 14) /* also set for VFPv4-D16 */
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#define HWCAP_TLS (1 << 15)
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#define HWCAP_VFPv4 (1 << 16)
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#define HWCAP_IDIVA (1 << 17)
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#define HWCAP_IDIVT (1 << 18)
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#define HWCAP_VFPD32 (1 << 19) /* set if VFP has 32 regs (not 16) */
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#define HWCAP_IDIV (HWCAP_IDIVA | HWCAP_IDIVT)
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#define HWCAP_LPAE (1 << 20)
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#define AT_HWCAP 16
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// Read the ELF HWCAP flags by parsing /proc/self/auxv.
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static uint32_t ReadELFHWCaps() {
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uint32_t result = 0;
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FILE* fp = fopen("/proc/self/auxv", "r");
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if (fp != NULL) {
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struct { uint32_t tag; uint32_t value; } entry;
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for (;;) {
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size_t n = fread(&entry, sizeof(entry), 1, fp);
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if (n == 0 || (entry.tag == 0 && entry.value == 0)) {
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break;
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}
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if (entry.tag == AT_HWCAP) {
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result = entry.value;
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break;
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}
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}
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fclose(fp);
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}
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return result;
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}
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#endif // V8_HOST_ARCH_ARM
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// Extract the information exposed by the kernel via /proc/cpuinfo.
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class CPUInfo V8_FINAL BASE_EMBEDDED {
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public:
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CPUInfo() : datalen_(0) {
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// Get the size of the cpuinfo file by reading it until the end. This is
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// required because files under /proc do not always return a valid size
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// when using fseek(0, SEEK_END) + ftell(). Nor can the be mmap()-ed.
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static const char PATHNAME[] = "/proc/cpuinfo";
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FILE* fp = fopen(PATHNAME, "r");
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if (fp != NULL) {
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for (;;) {
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char buffer[256];
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size_t n = fread(buffer, 1, sizeof(buffer), fp);
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if (n == 0) {
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break;
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}
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datalen_ += n;
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}
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fclose(fp);
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}
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// Read the contents of the cpuinfo file.
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data_ = new char[datalen_ + 1];
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fp = fopen(PATHNAME, "r");
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if (fp != NULL) {
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for (size_t offset = 0; offset < datalen_; ) {
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size_t n = fread(data_ + offset, 1, datalen_ - offset, fp);
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if (n == 0) {
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break;
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}
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offset += n;
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}
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fclose(fp);
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}
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// Zero-terminate the data.
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data_[datalen_] = '\0';
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}
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~CPUInfo() {
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delete[] data_;
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}
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// Extract the content of a the first occurence of a given field in
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// the content of the cpuinfo file and return it as a heap-allocated
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// string that must be freed by the caller using delete[].
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// Return NULL if not found.
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char* ExtractField(const char* field) const {
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ASSERT(field != NULL);
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// Look for first field occurence, and ensure it starts the line.
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size_t fieldlen = strlen(field);
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char* p = data_;
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for (;;) {
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p = strstr(p, field);
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if (p == NULL) {
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return NULL;
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}
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if (p == data_ || p[-1] == '\n') {
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break;
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}
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p += fieldlen;
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}
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// Skip to the first colon followed by a space.
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p = strchr(p + fieldlen, ':');
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if (p == NULL || !isspace(p[1])) {
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return NULL;
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}
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p += 2;
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// Find the end of the line.
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char* q = strchr(p, '\n');
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if (q == NULL) {
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q = data_ + datalen_;
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}
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// Copy the line into a heap-allocated buffer.
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size_t len = q - p;
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char* result = new char[len + 1];
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if (result != NULL) {
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memcpy(result, p, len);
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result[len] = '\0';
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}
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return result;
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}
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private:
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char* data_;
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size_t datalen_;
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};
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// Checks that a space-separated list of items contains one given 'item'.
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static bool HasListItem(const char* list, const char* item) {
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ssize_t item_len = strlen(item);
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const char* p = list;
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if (p != NULL) {
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while (*p != '\0') {
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// Skip whitespace.
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while (isspace(*p)) ++p;
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// Find end of current list item.
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const char* q = p;
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while (*q != '\0' && !isspace(*q)) ++q;
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if (item_len == q - p && memcmp(p, item, item_len) == 0) {
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return true;
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}
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// Skip to next item.
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p = q;
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}
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}
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return false;
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}
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#endif // V8_OS_LINUX
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#endif // V8_HOST_ARCH_IA32 || V8_HOST_ARCH_X64
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CPU::CPU() : stepping_(0),
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model_(0),
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ext_model_(0),
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family_(0),
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ext_family_(0),
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type_(0),
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implementer_(0),
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architecture_(0),
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part_(0),
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has_fpu_(false),
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has_cmov_(false),
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has_sahf_(false),
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has_mmx_(false),
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has_sse_(false),
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has_sse2_(false),
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has_sse3_(false),
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has_ssse3_(false),
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has_sse41_(false),
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has_sse42_(false),
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has_idiva_(false),
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has_neon_(false),
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has_thumbee_(false),
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has_vfp_(false),
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has_vfp3_(false),
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has_vfp3_d32_(false) {
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memcpy(vendor_, "Unknown", 8);
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#if V8_HOST_ARCH_IA32 || V8_HOST_ARCH_X64
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int cpu_info[4];
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// __cpuid with an InfoType argument of 0 returns the number of
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// valid Ids in CPUInfo[0] and the CPU identification string in
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// the other three array elements. The CPU identification string is
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// not in linear order. The code below arranges the information
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// in a human readable form. The human readable order is CPUInfo[1] |
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// CPUInfo[3] | CPUInfo[2]. CPUInfo[2] and CPUInfo[3] are swapped
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// before using memcpy to copy these three array elements to cpu_string.
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__cpuid(cpu_info, 0);
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unsigned num_ids = cpu_info[0];
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std::swap(cpu_info[2], cpu_info[3]);
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memcpy(vendor_, cpu_info + 1, 12);
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vendor_[12] = '\0';
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// Interpret CPU feature information.
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if (num_ids > 0) {
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__cpuid(cpu_info, 1);
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stepping_ = cpu_info[0] & 0xf;
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model_ = ((cpu_info[0] >> 4) & 0xf) + ((cpu_info[0] >> 12) & 0xf0);
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family_ = (cpu_info[0] >> 8) & 0xf;
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type_ = (cpu_info[0] >> 12) & 0x3;
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ext_model_ = (cpu_info[0] >> 16) & 0xf;
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ext_family_ = (cpu_info[0] >> 20) & 0xff;
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has_fpu_ = (cpu_info[3] & 0x00000001) != 0;
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has_cmov_ = (cpu_info[3] & 0x00008000) != 0;
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has_mmx_ = (cpu_info[3] & 0x00800000) != 0;
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has_sse_ = (cpu_info[3] & 0x02000000) != 0;
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has_sse2_ = (cpu_info[3] & 0x04000000) != 0;
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has_sse3_ = (cpu_info[2] & 0x00000001) != 0;
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has_ssse3_ = (cpu_info[2] & 0x00000200) != 0;
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has_sse41_ = (cpu_info[2] & 0x00080000) != 0;
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has_sse42_ = (cpu_info[2] & 0x00100000) != 0;
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}
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// Query extended IDs.
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__cpuid(cpu_info, 0x80000000);
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unsigned num_ext_ids = cpu_info[0];
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// Interpret extended CPU feature information.
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if (num_ext_ids > 0x80000000) {
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__cpuid(cpu_info, 0x80000001);
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// SAHF is always available in compat/legacy mode,
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// but must be probed in long mode.
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#if V8_HOST_ARCH_IA32
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has_sahf_ = true;
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#else
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has_sahf_ = (cpu_info[2] & 0x00000001) != 0;
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#endif
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}
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#elif V8_HOST_ARCH_ARM
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#if V8_OS_LINUX
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CPUInfo cpu_info;
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// Extract implementor from the "CPU implementer" field.
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char* implementer = cpu_info.ExtractField("CPU implementer");
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if (implementer != NULL) {
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char* end ;
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implementer_ = strtol(implementer, &end, 0);
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if (end == implementer) {
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implementer_ = 0;
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}
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delete[] implementer;
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}
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// Extract part number from the "CPU part" field.
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char* part = cpu_info.ExtractField("CPU part");
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if (part != NULL) {
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char* end ;
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part_ = strtol(part, &end, 0);
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if (end == part) {
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part_ = 0;
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}
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delete[] part;
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}
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// Extract architecture from the "CPU Architecture" field.
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// The list is well-known, unlike the the output of
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// the 'Processor' field which can vary greatly.
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// See the definition of the 'proc_arch' array in
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// $KERNEL/arch/arm/kernel/setup.c and the 'c_show' function in
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// same file.
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char* architecture = cpu_info.ExtractField("CPU architecture");
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if (architecture != NULL) {
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char* end;
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architecture_ = strtol(architecture, &end, 10);
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if (end == architecture) {
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architecture_ = 0;
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}
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delete[] architecture;
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// Unfortunately, it seems that certain ARMv6-based CPUs
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// report an incorrect architecture number of 7!
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//
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// See http://code.google.com/p/android/issues/detail?id=10812
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//
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// We try to correct this by looking at the 'elf_format'
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// field reported by the 'Processor' field, which is of the
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// form of "(v7l)" for an ARMv7-based CPU, and "(v6l)" for
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// an ARMv6-one. For example, the Raspberry Pi is one popular
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// ARMv6 device that reports architecture 7.
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if (architecture_ == 7) {
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char* processor = cpu_info.ExtractField("Processor");
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if (HasListItem(processor, "(v6l)")) {
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architecture_ = 6;
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}
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delete[] processor;
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}
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}
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// Try to extract the list of CPU features from ELF hwcaps.
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uint32_t hwcaps = ReadELFHWCaps();
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if (hwcaps != 0) {
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has_idiva_ = (hwcaps & HWCAP_IDIVA) != 0;
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has_neon_ = (hwcaps & HWCAP_NEON) != 0;
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has_thumbee_ = (hwcaps & HWCAP_THUMBEE) != 0;
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has_vfp_ = (hwcaps & HWCAP_VFP) != 0;
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has_vfp3_ = (hwcaps & (HWCAP_VFPv3 | HWCAP_VFPv3D16 | HWCAP_VFPv4)) != 0;
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has_vfp3_d32_ = (has_vfp3_ && ((hwcaps & HWCAP_VFPv3D16) == 0 ||
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(hwcaps & HWCAP_VFPD32) != 0));
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} else {
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// Try to fallback to "Features" CPUInfo field.
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char* features = cpu_info.ExtractField("Features");
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has_idiva_ = HasListItem(features, "idiva");
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has_neon_ = HasListItem(features, "neon");
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has_thumbee_ = HasListItem(features, "thumbee");
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has_vfp_ = HasListItem(features, "vfp");
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if (HasListItem(features, "vfpv3")) {
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has_vfp3_ = true;
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has_vfp3_d32_ = true;
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} else if (HasListItem(features, "vfpv3d16")) {
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has_vfp3_ = true;
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}
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delete[] features;
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}
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// Some old kernels will report vfp not vfpv3. Here we make an attempt
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// to detect vfpv3 by checking for vfp *and* neon, since neon is only
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// available on architectures with vfpv3. Checking neon on its own is
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// not enough as it is possible to have neon without vfp.
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if (has_vfp_ && has_neon_) {
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has_vfp3_ = true;
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}
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// VFPv3 implies ARMv7, see ARM DDI 0406B, page A1-6.
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if (architecture_ < 7 && has_vfp3_) {
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architecture_ = 7;
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}
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// ARMv7 implies ThumbEE.
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if (architecture_ >= 7) {
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has_thumbee_ = true;
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}
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// The earliest architecture with ThumbEE is ARMv6T2.
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if (has_thumbee_ && architecture_ < 6) {
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architecture_ = 6;
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}
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// We don't support any FPUs other than VFP.
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has_fpu_ = has_vfp_;
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#elif V8_OS_QNX
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uint32_t cpu_flags = SYSPAGE_ENTRY(cpuinfo)->flags;
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if (cpu_flags & ARM_CPU_FLAG_V7) {
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architecture_ = 7;
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has_thumbee_ = true;
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} else if (cpu_flags & ARM_CPU_FLAG_V6) {
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architecture_ = 6;
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// QNX doesn't say if ThumbEE is available.
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// Assume false for the architectures older than ARMv7.
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}
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ASSERT(architecture_ >= 6);
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has_fpu_ = (cpu_flags & CPU_FLAG_FPU) != 0;
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has_vfp_ = has_fpu_;
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if (cpu_flags & ARM_CPU_FLAG_NEON) {
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has_neon_ = true;
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has_vfp3_ = has_vfp_;
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#ifdef ARM_CPU_FLAG_VFP_D32
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has_vfp3_d32_ = (cpu_flags & ARM_CPU_FLAG_VFP_D32) != 0;
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#endif
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}
|
|
has_idiva_ = (cpu_flags & ARM_CPU_FLAG_IDIV) != 0;
|
|
|
|
#endif // V8_OS_LINUX
|
|
|
|
#elif V8_HOST_ARCH_MIPS
|
|
|
|
// Simple detection of FPU at runtime for Linux.
|
|
// It is based on /proc/cpuinfo, which reveals hardware configuration
|
|
// to user-space applications. According to MIPS (early 2010), no similar
|
|
// facility is universally available on the MIPS architectures,
|
|
// so it's up to individual OSes to provide such.
|
|
CPUInfo cpu_info;
|
|
char* cpu_model = cpu_info.ExtractField("cpu model");
|
|
has_fpu_ = HasListItem(cpu_model, "FPU");
|
|
delete[] cpu_model;
|
|
|
|
#endif
|
|
}
|
|
|
|
|
|
// static
|
|
int CPU::NumberOfProcessorsOnline() {
|
|
#if V8_OS_WIN
|
|
SYSTEM_INFO info;
|
|
GetSystemInfo(&info);
|
|
return info.dwNumberOfProcessors;
|
|
#else
|
|
return static_cast<int>(sysconf(_SC_NPROCESSORS_ONLN));
|
|
#endif
|
|
}
|
|
|
|
} } // namespace v8::internal
|