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#include "llama-mmap.h" |
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#include "llama-impl.h" |
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#include "ggml.h" |
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#include <cstring> |
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#include <climits> |
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#include <stdexcept> |
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#include <cerrno> |
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#ifdef __has_include |
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#if __has_include(<unistd.h>) |
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#include <unistd.h> |
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#if defined(_POSIX_MAPPED_FILES) |
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#include <sys/mman.h> |
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#include <fcntl.h> |
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#endif |
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#if defined(_POSIX_MEMLOCK_RANGE) |
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#include <sys/resource.h> |
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#endif |
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#endif |
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#endif |
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#if defined(_WIN32) |
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#define WIN32_LEAN_AND_MEAN |
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#ifndef NOMINMAX |
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#define NOMINMAX |
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#endif |
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#include <windows.h> |
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#ifndef PATH_MAX |
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#define PATH_MAX MAX_PATH |
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#endif |
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#include <io.h> |
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#endif |
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#if defined(_WIN32) |
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static std::string llama_format_win_err(DWORD err) { |
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LPSTR buf; |
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size_t size = FormatMessageA(FORMAT_MESSAGE_ALLOCATE_BUFFER | FORMAT_MESSAGE_FROM_SYSTEM | FORMAT_MESSAGE_IGNORE_INSERTS, |
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NULL, err, MAKELANGID(LANG_NEUTRAL, SUBLANG_DEFAULT), (LPSTR)&buf, 0, NULL); |
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if (!size) { |
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return "FormatMessageA failed"; |
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} |
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std::string ret(buf, size); |
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LocalFree(buf); |
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return ret; |
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} |
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#endif |
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struct llama_file::impl { |
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#if defined(_WIN32) |
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HANDLE fp_win32; |
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std::string GetErrorMessageWin32(DWORD error_code) const { |
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std::string ret; |
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LPSTR lpMsgBuf = NULL; |
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DWORD bufLen = FormatMessageA(FORMAT_MESSAGE_ALLOCATE_BUFFER | FORMAT_MESSAGE_FROM_SYSTEM | FORMAT_MESSAGE_IGNORE_INSERTS, |
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NULL, error_code, MAKELANGID(LANG_NEUTRAL, SUBLANG_DEFAULT), (LPSTR)&lpMsgBuf, 0, NULL); |
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if (!bufLen) { |
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ret = format("Win32 error code: %lx", error_code); |
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} else { |
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ret = lpMsgBuf; |
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LocalFree(lpMsgBuf); |
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} |
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return ret; |
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} |
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impl(const char * fname, const char * mode) { |
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fp = ggml_fopen(fname, mode); |
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if (fp == NULL) { |
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throw std::runtime_error(format("failed to open %s: %s", fname, strerror(errno))); |
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} |
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fp_win32 = (HANDLE) _get_osfhandle(_fileno(fp)); |
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seek(0, SEEK_END); |
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size = tell(); |
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seek(0, SEEK_SET); |
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} |
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size_t tell() const { |
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LARGE_INTEGER li; |
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li.QuadPart = 0; |
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BOOL ret = SetFilePointerEx(fp_win32, li, &li, FILE_CURRENT); |
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if (!ret) { |
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throw std::runtime_error(format("read error: %s", GetErrorMessageWin32(GetLastError()).c_str())); |
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} |
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return li.QuadPart; |
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} |
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void seek(size_t offset, int whence) const { |
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static_assert(SEEK_SET == FILE_BEGIN, "SEEK_SET != FILE_BEGIN"); |
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static_assert(SEEK_CUR == FILE_CURRENT, "SEEK_CUR != FILE_CURRENT"); |
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static_assert(SEEK_END == FILE_END, "SEEK_END != FILE_END"); |
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LARGE_INTEGER li; |
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li.QuadPart = offset; |
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BOOL ret = SetFilePointerEx(fp_win32, li, NULL, whence); |
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if (!ret) { |
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throw std::runtime_error(format("read error: %s", GetErrorMessageWin32(GetLastError()).c_str())); |
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} |
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} |
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void read_raw(void * ptr, size_t len) const { |
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size_t bytes_read = 0; |
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while (bytes_read < len) { |
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size_t chunk_size = std::min<size_t>(len - bytes_read, 64*1024*1024); |
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DWORD chunk_read = 0; |
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BOOL result = ReadFile(fp_win32, reinterpret_cast<char*>(ptr) + bytes_read, chunk_size, &chunk_read, NULL); |
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if (!result) { |
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throw std::runtime_error(format("read error: %s", GetErrorMessageWin32(GetLastError()).c_str())); |
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} |
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if (chunk_read < chunk_size || chunk_read == 0) { |
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throw std::runtime_error("unexpectedly reached end of file"); |
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} |
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bytes_read += chunk_read; |
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} |
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} |
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uint32_t read_u32() const { |
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uint32_t val; |
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read_raw(&val, sizeof(val)); |
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return val; |
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} |
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void write_raw(const void * ptr, size_t len) const { |
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size_t bytes_written = 0; |
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while (bytes_written < len) { |
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size_t chunk_size = std::min<size_t>(len - bytes_written, 64*1024*1024); |
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DWORD chunk_written = 0; |
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BOOL result = WriteFile(fp_win32, reinterpret_cast<char const*>(ptr) + bytes_written, chunk_size, &chunk_written, NULL); |
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if (!result) { |
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throw std::runtime_error(format("write error: %s", GetErrorMessageWin32(GetLastError()).c_str())); |
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} |
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if (chunk_written < chunk_size || chunk_written == 0) { |
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throw std::runtime_error("unexpectedly failed to write bytes"); |
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} |
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bytes_written += chunk_written; |
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} |
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} |
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void write_u32(uint32_t val) const { |
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write_raw(&val, sizeof(val)); |
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} |
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~impl() { |
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if (fp) { |
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std::fclose(fp); |
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} |
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} |
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#else |
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impl(const char * fname, const char * mode) { |
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fp = ggml_fopen(fname, mode); |
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if (fp == NULL) { |
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throw std::runtime_error(format("failed to open %s: %s", fname, strerror(errno))); |
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} |
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seek(0, SEEK_END); |
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size = tell(); |
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seek(0, SEEK_SET); |
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} |
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size_t tell() const { |
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#ifdef _WIN32 |
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__int64 ret = _ftelli64(fp); |
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#else |
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long ret = std::ftell(fp); |
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#endif |
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if (ret == -1) { |
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throw std::runtime_error(format("ftell error: %s", strerror(errno))); |
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} |
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return (size_t) ret; |
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} |
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void seek(size_t offset, int whence) const { |
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#ifdef _WIN32 |
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int ret = _fseeki64(fp, (__int64) offset, whence); |
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#else |
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int ret = std::fseek(fp, (long) offset, whence); |
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#endif |
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if (ret != 0) { |
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throw std::runtime_error(format("seek error: %s", strerror(errno))); |
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} |
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} |
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void read_raw(void * ptr, size_t len) const { |
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if (len == 0) { |
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return; |
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} |
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errno = 0; |
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std::size_t ret = std::fread(ptr, len, 1, fp); |
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if (ferror(fp)) { |
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throw std::runtime_error(format("read error: %s", strerror(errno))); |
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} |
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if (ret != 1) { |
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throw std::runtime_error("unexpectedly reached end of file"); |
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} |
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} |
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uint32_t read_u32() const { |
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uint32_t ret; |
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read_raw(&ret, sizeof(ret)); |
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return ret; |
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} |
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void write_raw(const void * ptr, size_t len) const { |
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if (len == 0) { |
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return; |
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} |
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errno = 0; |
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size_t ret = std::fwrite(ptr, len, 1, fp); |
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if (ret != 1) { |
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throw std::runtime_error(format("write error: %s", strerror(errno))); |
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} |
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} |
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void write_u32(uint32_t val) const { |
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write_raw(&val, sizeof(val)); |
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} |
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~impl() { |
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if (fp) { |
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std::fclose(fp); |
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} |
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} |
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#endif |
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FILE * fp; |
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size_t size; |
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}; |
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llama_file::llama_file(const char * fname, const char * mode) : pimpl(std::make_unique<impl>(fname, mode)) {} |
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llama_file::~llama_file() = default; |
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size_t llama_file::tell() const { return pimpl->tell(); } |
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size_t llama_file::size() const { return pimpl->size; } |
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int llama_file::file_id() const { |
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#ifdef _WIN32 |
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return _fileno(pimpl->fp); |
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#else |
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#if defined(fileno) |
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return fileno(pimpl->fp); |
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#else |
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return ::fileno(pimpl->fp); |
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#endif |
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#endif |
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} |
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void llama_file::seek(size_t offset, int whence) const { pimpl->seek(offset, whence); } |
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void llama_file::read_raw(void * ptr, size_t len) const { pimpl->read_raw(ptr, len); } |
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uint32_t llama_file::read_u32() const { return pimpl->read_u32(); } |
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void llama_file::write_raw(const void * ptr, size_t len) const { pimpl->write_raw(ptr, len); } |
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void llama_file::write_u32(uint32_t val) const { pimpl->write_u32(val); } |
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struct llama_mmap::impl { |
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#ifdef _POSIX_MAPPED_FILES |
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std::vector<std::pair<size_t, size_t>> mapped_fragments; |
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impl(struct llama_file * file, size_t prefetch, bool numa) { |
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size = file->size(); |
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int fd = file->file_id(); |
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int flags = MAP_SHARED; |
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if (numa) { prefetch = 0; } |
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#ifdef __linux__ |
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if (posix_fadvise(fd, 0, 0, POSIX_FADV_SEQUENTIAL)) { |
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LLAMA_LOG_WARN("warning: posix_fadvise(.., POSIX_FADV_SEQUENTIAL) failed: %s\n", |
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strerror(errno)); |
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} |
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if (prefetch) { flags |= MAP_POPULATE; } |
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#endif |
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addr = mmap(NULL, file->size(), PROT_READ, flags, fd, 0); |
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if (addr == MAP_FAILED) { |
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throw std::runtime_error(format("mmap failed: %s", strerror(errno))); |
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} |
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if (prefetch > 0) { |
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if (posix_madvise(addr, std::min(file->size(), prefetch), POSIX_MADV_WILLNEED)) { |
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LLAMA_LOG_WARN("warning: posix_madvise(.., POSIX_MADV_WILLNEED) failed: %s\n", |
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strerror(errno)); |
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} |
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} |
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if (numa) { |
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if (posix_madvise(addr, file->size(), POSIX_MADV_RANDOM)) { |
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LLAMA_LOG_WARN("warning: posix_madvise(.., POSIX_MADV_RANDOM) failed: %s\n", |
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strerror(errno)); |
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} |
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} |
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mapped_fragments.emplace_back(0, file->size()); |
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} |
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static void align_range(size_t * first, size_t * last, size_t page_size) { |
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size_t offset_in_page = *first & (page_size - 1); |
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size_t offset_to_page = offset_in_page == 0 ? 0 : page_size - offset_in_page; |
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*first += offset_to_page; |
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*last = *last & ~(page_size - 1); |
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if (*last <= *first) { |
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*last = *first; |
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} |
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} |
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void unmap_fragment(size_t first, size_t last) { |
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int page_size = sysconf(_SC_PAGESIZE); |
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align_range(&first, &last, page_size); |
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size_t len = last - first; |
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if (len == 0) { |
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return; |
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} |
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GGML_ASSERT(first % page_size == 0); |
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GGML_ASSERT(last % page_size == 0); |
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GGML_ASSERT(last > first); |
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void * next_page_start = (uint8_t *) addr + first; |
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if (munmap(next_page_start, len)) { |
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LLAMA_LOG_WARN("warning: munmap failed: %s\n", strerror(errno)); |
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} |
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std::vector<std::pair<size_t, size_t>> new_mapped_fragments; |
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for (const auto & frag : mapped_fragments) { |
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if (frag.first < first && frag.second > last) { |
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new_mapped_fragments.emplace_back(frag.first, first); |
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new_mapped_fragments.emplace_back(last, frag.second); |
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} else if (frag.first < first && frag.second > first) { |
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new_mapped_fragments.emplace_back(frag.first, first); |
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} else if (frag.first < last && frag.second > last) { |
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new_mapped_fragments.emplace_back(last, frag.second); |
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} else if (frag.first >= first && frag.second <= last) { |
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} else { |
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new_mapped_fragments.push_back(frag); |
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} |
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} |
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mapped_fragments = std::move(new_mapped_fragments); |
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} |
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~impl() { |
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for (const auto & frag : mapped_fragments) { |
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if (munmap((char *) addr + frag.first, frag.second - frag.first)) { |
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LLAMA_LOG_WARN("warning: munmap failed: %s\n", strerror(errno)); |
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} |
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} |
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} |
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#elif defined(_WIN32) |
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impl(struct llama_file * file, size_t prefetch, bool numa) { |
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GGML_UNUSED(numa); |
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size = file->size(); |
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HANDLE hFile = (HANDLE) _get_osfhandle(file->file_id()); |
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HANDLE hMapping = CreateFileMappingA(hFile, NULL, PAGE_READONLY, 0, 0, NULL); |
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if (hMapping == NULL) { |
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DWORD error = GetLastError(); |
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throw std::runtime_error(format("CreateFileMappingA failed: %s", llama_format_win_err(error).c_str())); |
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} |
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addr = MapViewOfFile(hMapping, FILE_MAP_READ, 0, 0, 0); |
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DWORD error = GetLastError(); |
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CloseHandle(hMapping); |
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if (addr == NULL) { |
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throw std::runtime_error(format("MapViewOfFile failed: %s", llama_format_win_err(error).c_str())); |
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} |
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if (prefetch > 0) { |
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#if _WIN32_WINNT >= 0x602 |
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BOOL (WINAPI *pPrefetchVirtualMemory) (HANDLE, ULONG_PTR, PWIN32_MEMORY_RANGE_ENTRY, ULONG); |
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HMODULE hKernel32 = GetModuleHandleW(L"kernel32.dll"); |
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pPrefetchVirtualMemory = (decltype(pPrefetchVirtualMemory))(void *) GetProcAddress(hKernel32, "PrefetchVirtualMemory"); |
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if (pPrefetchVirtualMemory) { |
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WIN32_MEMORY_RANGE_ENTRY range; |
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range.VirtualAddress = addr; |
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range.NumberOfBytes = (SIZE_T) std::min(size, prefetch); |
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if (!pPrefetchVirtualMemory(GetCurrentProcess(), 1, &range, 0)) { |
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LLAMA_LOG_WARN("warning: PrefetchVirtualMemory failed: %s\n", |
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llama_format_win_err(GetLastError()).c_str()); |
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} |
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} |
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#else |
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throw std::runtime_error("PrefetchVirtualMemory unavailable"); |
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#endif |
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} |
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} |
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void unmap_fragment(size_t first, size_t last) { |
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GGML_UNUSED(first); |
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GGML_UNUSED(last); |
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} |
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~impl() { |
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if (!UnmapViewOfFile(addr)) { |
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LLAMA_LOG_WARN("warning: UnmapViewOfFile failed: %s\n", |
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llama_format_win_err(GetLastError()).c_str()); |
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} |
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} |
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#else |
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impl(struct llama_file * file, size_t prefetch, bool numa) { |
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GGML_UNUSED(file); |
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GGML_UNUSED(prefetch); |
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GGML_UNUSED(numa); |
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throw std::runtime_error("mmap not supported"); |
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} |
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void unmap_fragment(size_t first, size_t last) { |
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GGML_UNUSED(first); |
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GGML_UNUSED(last); |
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throw std::runtime_error("mmap not supported"); |
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} |
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#endif |
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void * addr; |
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size_t size; |
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}; |
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llama_mmap::llama_mmap(struct llama_file * file, size_t prefetch, bool numa) : pimpl(std::make_unique<impl>(file, prefetch, numa)) {} |
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llama_mmap::~llama_mmap() = default; |
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size_t llama_mmap::size() const { return pimpl->size; } |
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void * llama_mmap::addr() const { return pimpl->addr; } |
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void llama_mmap::unmap_fragment(size_t first, size_t last) { pimpl->unmap_fragment(first, last); } |
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#if defined(_POSIX_MEMLOCK_RANGE) || defined(_WIN32) |
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const bool llama_mmap::SUPPORTED = true; |
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#else |
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const bool llama_mmap::SUPPORTED = false; |
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#endif |
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struct llama_mlock::impl { |
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#ifdef _POSIX_MEMLOCK_RANGE |
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static size_t lock_granularity() { |
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return (size_t) sysconf(_SC_PAGESIZE); |
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} |
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bool raw_lock(const void * addr, size_t size) const { |
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if (!mlock(addr, size)) { |
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return true; |
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} |
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#ifdef __APPLE__ |
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#define MLOCK_SUGGESTION \ |
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"Try increasing the sysctl values 'vm.user_wire_limit' and 'vm.global_user_wire_limit' and/or " \ |
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"decreasing 'vm.global_no_user_wire_amount'. Also try increasing RLIMIT_MEMLOCK (ulimit -l).\n" |
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#else |
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#define MLOCK_SUGGESTION \ |
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"Try increasing RLIMIT_MEMLOCK ('ulimit -l' as root).\n" |
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#endif |
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char* errmsg = std::strerror(errno); |
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bool suggest = (errno == ENOMEM); |
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struct rlimit lock_limit; |
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if (suggest && getrlimit(RLIMIT_MEMLOCK, &lock_limit)) { |
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suggest = false; |
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} |
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if (suggest && (lock_limit.rlim_max > lock_limit.rlim_cur + size)) { |
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suggest = false; |
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} |
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LLAMA_LOG_WARN("warning: failed to mlock %zu-byte buffer (after previously locking %zu bytes): %s\n%s", |
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size, this->size, errmsg, suggest ? MLOCK_SUGGESTION : ""); |
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return false; |
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} |
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static void raw_unlock(void * addr, size_t size) { |
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if (munlock(addr, size)) { |
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LLAMA_LOG_WARN("warning: failed to munlock buffer: %s\n", std::strerror(errno)); |
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} |
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} |
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#elif defined(_WIN32) |
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static size_t lock_granularity() { |
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SYSTEM_INFO si; |
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GetSystemInfo(&si); |
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return (size_t) si.dwPageSize; |
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} |
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bool raw_lock(void * ptr, size_t len) const { |
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for (int tries = 1; ; tries++) { |
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if (VirtualLock(ptr, len)) { |
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return true; |
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} |
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if (tries == 2) { |
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LLAMA_LOG_WARN("warning: failed to VirtualLock %zu-byte buffer (after previously locking %zu bytes): %s\n", |
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len, size, llama_format_win_err(GetLastError()).c_str()); |
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return false; |
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} |
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SIZE_T min_ws_size, max_ws_size; |
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if (!GetProcessWorkingSetSize(GetCurrentProcess(), &min_ws_size, &max_ws_size)) { |
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LLAMA_LOG_WARN("warning: GetProcessWorkingSetSize failed: %s\n", |
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llama_format_win_err(GetLastError()).c_str()); |
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return false; |
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} |
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size_t increment = len + 1048576; |
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min_ws_size += increment; |
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max_ws_size += increment; |
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if (!SetProcessWorkingSetSize(GetCurrentProcess(), min_ws_size, max_ws_size)) { |
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LLAMA_LOG_WARN("warning: SetProcessWorkingSetSize failed: %s\n", |
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llama_format_win_err(GetLastError()).c_str()); |
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return false; |
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} |
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} |
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} |
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static void raw_unlock(void * ptr, size_t len) { |
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if (!VirtualUnlock(ptr, len)) { |
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LLAMA_LOG_WARN("warning: failed to VirtualUnlock buffer: %s\n", |
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llama_format_win_err(GetLastError()).c_str()); |
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} |
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} |
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#else |
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static size_t lock_granularity() { |
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return (size_t) 65536; |
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} |
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bool raw_lock(const void * addr, size_t len) const { |
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LLAMA_LOG_WARN("warning: mlock not supported on this system\n"); |
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return false; |
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} |
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static void raw_unlock(const void * addr, size_t len) {} |
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#endif |
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impl() : addr(NULL), size(0), failed_already(false) {} |
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|
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void init(void * ptr) { |
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GGML_ASSERT(addr == NULL && size == 0); |
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addr = ptr; |
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} |
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|
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void grow_to(size_t target_size) { |
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GGML_ASSERT(addr); |
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if (failed_already) { |
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return; |
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} |
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size_t granularity = lock_granularity(); |
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target_size = (target_size + granularity - 1) & ~(granularity - 1); |
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if (target_size > size) { |
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if (raw_lock((uint8_t *) addr + size, target_size - size)) { |
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size = target_size; |
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} else { |
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failed_already = true; |
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} |
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} |
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} |
|
|
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void * addr; |
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size_t size; |
|
|
|
bool failed_already; |
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}; |
|
|
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llama_mlock::llama_mlock() : pimpl(std::make_unique<impl>()) {} |
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llama_mlock::~llama_mlock() = default; |
|
|
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void llama_mlock::init(void * ptr) { pimpl->init(ptr); } |
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void llama_mlock::grow_to(size_t target_size) { pimpl->grow_to(target_size); } |
|
|
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#if defined(_POSIX_MEMLOCK_RANGE) || defined(_WIN32) |
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const bool llama_mlock::SUPPORTED = true; |
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#else |
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const bool llama_mlock::SUPPORTED = false; |
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#endif |
|
|
|
size_t llama_path_max() { |
|
return PATH_MAX; |
|
} |
|
|