Remove branching in llama-model-loader.cpp and reduce code duplications in llama-mmap.cpp
This commit is contained in:
parent
d2acc3a8a8
commit
f6d79fe1b1
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@ -75,7 +75,7 @@ struct llama_file::impl {
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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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impl(const char * fname, const char * mode, const bool use_direct_io = false) {
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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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@ -154,43 +154,50 @@ struct llama_file::impl {
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write_raw(&val, sizeof(val));
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}
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bool has_direct_io() const {
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return false;
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}
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void read_aligned_chunk(size_t offset, void * dest, size_t size, size_t alignment) const {
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throw std::runtime_error("DirectIO is not implemented on Windows.");
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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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#elif defined(__linux__)
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impl(const char * fname, const char * mode) : impl(fname, mode, false) {}
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impl(const char * fname, const char * mode, bool uncached_read) {
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if (uncached_read) {
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#else
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impl(const char * fname, const char * mode, const bool use_direct_io = false) {
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#ifdef __linux__
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// Try unbuffered I/O for read only
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if (use_direct_io && std::strcmp(mode, "rb") == 0) {
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fd = open(fname, O_RDONLY | O_DIRECT);
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if (fd == -1 && (errno == EINVAL || errno == EOPNOTSUPP)) {
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fd = open(fname, O_RDONLY); // retry without O_DIRECT
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if (fd != -1) {
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struct stat file_stats{};
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fstat(fd, &file_stats);
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size = file_stats.st_size;
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off_t ret = lseek(fd, 0, SEEK_SET);
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if (ret == -1) {
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throw std::runtime_error(format("seek error: %s", strerror(errno)));
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}
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return;
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}
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if (fd == -1) {
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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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struct stat file_stats{};
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fstat(fd, &file_stats);
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size = file_stats.st_size;
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off_t ret = lseek(fd, 0, SEEK_SET);
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if (ret == -1) {
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throw std::runtime_error(format("seek error: %s", strerror(errno)));
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}
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} else {
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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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LLAMA_LOG_WARN("Failed to open model %s with error: %s. Falling back to buffered I/O",
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fname, strerror(errno));
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}
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#endif
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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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@ -226,8 +233,8 @@ struct llama_file::impl {
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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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if (fd == -1) {
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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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@ -255,86 +262,27 @@ struct llama_file::impl {
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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 read_aligned_chunk(size_t offset, void * dest, size_t size, size_t alignment) const {
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off_t aligned_offset = offset & ~(alignment - 1);
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off_t offset_from_alignment = offset - aligned_offset;
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size_t bytes_to_read = (offset_from_alignment + size + alignment - 1) & ~(alignment - 1);
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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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} else if (fd != -1) {
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close(fd);
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}
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}
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int fd = -1;
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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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// TODO: this ifdef is never true?
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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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// TODO: this ifdef is never true?
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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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void * raw_buffer = nullptr;
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int ret = posix_memalign(&raw_buffer, alignment, bytes_to_read);
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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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throw std::runtime_error(format("posix_memalign failed with error %d", ret));
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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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struct aligned_buffer_deleter {
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void operator()(void * p) const { free(p); }
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};
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std::unique_ptr<void, aligned_buffer_deleter> buffer(raw_buffer);
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seek(aligned_offset, SEEK_SET);
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read_raw(buffer.get(), bytes_to_read);
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uintptr_t actual_data = reinterpret_cast<uintptr_t>(buffer.get()) + offset_from_alignment;
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memcpy(dest, reinterpret_cast<void *>(actual_data), size);
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}
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uint32_t read_u32() const {
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@ -358,26 +306,33 @@ struct llama_file::impl {
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write_raw(&val, sizeof(val));
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}
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bool has_direct_io() const {
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return fd != -1;
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}
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~impl() {
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if (fp) {
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if (fd != -1) {
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close(fd);
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} else {
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std::fclose(fp);
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}
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}
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int fd = -1;
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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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#if defined(__linux__)
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llama_file::llama_file(const char * fname, const char * mode, bool uncached_read) : pimpl(std::make_unique<impl>(fname, mode, uncached_read)) {}
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#endif
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llama_file::llama_file(const char * fname, const char * mode, const bool use_direct_io) :
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pimpl(std::make_unique<impl>(fname, mode, use_direct_io)) {}
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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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bool llama_file::has_direct_io() const { return pimpl->has_direct_io(); }
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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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@ -392,6 +347,9 @@ int llama_file::file_id() const {
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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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void llama_file::read_aligned_chunk(size_t offset, void * dest, size_t size, size_t alignment) const
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{ pimpl->read_aligned_chunk(offset, dest, size, alignment); }
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uint32_t llama_file::read_u32() const { return pimpl->read_u32(); }
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@ -13,10 +13,7 @@ using llama_mmaps = std::vector<std::unique_ptr<llama_mmap>>;
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using llama_mlocks = std::vector<std::unique_ptr<llama_mlock>>;
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struct llama_file {
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llama_file(const char * fname, const char * mode);
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#if defined(__linux__)
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llama_file(const char * fname, const char * mode, bool uncached_read);
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#endif
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llama_file(const char * fname, const char * mode, bool use_direct_io = false);
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~llama_file();
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size_t tell() const;
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@ -27,11 +24,13 @@ struct llama_file {
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void seek(size_t offset, int whence) const;
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void read_raw(void * ptr, size_t len) const;
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void read_aligned_chunk(size_t offset, void * dest, size_t size, size_t alignment) const;
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uint32_t read_u32() const;
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void write_raw(const void * ptr, size_t len) const;
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void write_u32(uint32_t val) const;
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bool has_direct_io() const;
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private:
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struct impl;
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std::unique_ptr<impl> pimpl;
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@ -503,11 +503,7 @@ llama_model_loader::llama_model_loader(
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get_key(llm_kv(LLM_KV_GENERAL_ARCHITECTURE), arch_name, false);
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llm_kv = LLM_KV(llm_arch_from_string(arch_name));
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#if defined(__linux__)
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files.emplace_back(new llama_file(fname.c_str(), "rb", !use_mmap));
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#else
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files.emplace_back(new llama_file(fname.c_str(), "rb"));
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#endif
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contexts.emplace_back(ctx);
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// Save tensors data offset of the main file.
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@ -575,11 +571,7 @@ llama_model_loader::llama_model_loader(
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}
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}
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#if defined(__linux__)
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files.emplace_back(new llama_file(fname_split, "rb", !use_mmap));
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#else
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files.emplace_back(new llama_file(fname_split, "rb"));
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#endif
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contexts.emplace_back(ctx);
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// Save tensors data offset info of the shard.
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@ -941,14 +933,17 @@ bool llama_model_loader::load_all_data(
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// 4 staging buffers for async uploads, each sized 1MB seems to be a good default for single NVMe drives.
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// NVMe raid configurations might require more / larger buffers.
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constexpr size_t n_buffers = 4;
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#if defined(__linux__)
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constexpr size_t alignment = 4 * 1024; // 4 KiB for Direct I/O
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bool direct_io = false;
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for (const auto& file : files) {
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direct_io |= file->has_direct_io();
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}
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constexpr size_t alignment = 4 * 1024; // 4 KB for Direct I/O
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// Buffer size: balance between memory usage and I/O efficiency
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// 64MB works well for NVMe drives
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constexpr size_t buffer_size = 64 * 1024 * 1024; // 64 MiB
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#else
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constexpr size_t buffer_size = 1 * 1024 * 1024; // 1MB
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#endif
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const size_t buffer_size = direct_io ? 64 * 1024 * 1024 + 2 * alignment : 1 * 1024 * 1024;
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std::vector<ggml_backend_buffer_t> host_buffers;
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std::vector<ggml_backend_event_t> events;
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@ -997,11 +992,8 @@ bool llama_model_loader::load_all_data(
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// If the backend is supported, create pinned memory buffers and events for synchronisation.
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for (size_t idx = 0; idx < n_buffers; ++idx) {
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#if defined(__linux__)
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auto * buf = ggml_backend_buft_alloc_buffer(host_buft, buffer_size + 2 * alignment);
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#else
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auto * buf = ggml_backend_buft_alloc_buffer(host_buft, buffer_size);
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#endif
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if (!buf) {
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LLAMA_LOG_DEBUG("%s: failed to allocate host buffer for async uploads for device %s\n", func,
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ggml_backend_dev_name(dev));
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@ -1038,35 +1030,6 @@ bool llama_model_loader::load_all_data(
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ggml_backend_name(upload_backend));
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}
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#if defined(__linux__)
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auto read_aligned_chunk = [](const llama_file * file,
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size_t offset,
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void * dest,
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size_t size,
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size_t alignment) {
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off_t aligned_offset = offset & ~(alignment - 1);
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off_t offset_from_alignment = offset - aligned_offset;
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size_t bytes_to_read = (offset_from_alignment + size + alignment - 1) & ~(alignment - 1);
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void * raw_buffer = nullptr;
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int ret = posix_memalign(&raw_buffer, alignment, bytes_to_read);
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if (ret != 0) {
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throw std::runtime_error(format("posix_memalign failed with error %d", ret));
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}
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struct aligned_buffer_deleter {
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void operator()(void * p) const { free(p); }
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};
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std::unique_ptr<void, aligned_buffer_deleter> buffer(raw_buffer);
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file->seek(aligned_offset, SEEK_SET);
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file->read_raw(buffer.get(), bytes_to_read);
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uintptr_t actual_data = reinterpret_cast<uintptr_t>(buffer.get()) + offset_from_alignment;
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memcpy(dest, reinterpret_cast<void *>(actual_data), size);
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};
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#endif
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for (struct ggml_tensor * cur = ggml_get_first_tensor(ctx); cur != NULL; cur = ggml_get_next_tensor(ctx, cur)) {
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const auto * weight = get_weight(ggml_get_name(cur));
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if (weight == nullptr) {
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@ -1112,100 +1075,97 @@ bool llama_model_loader::load_all_data(
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}
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} else {
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const auto & file = files.at(weight->idx);
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#if defined(__linux__)
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auto offset = (off_t) weight->offs;
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off_t aligned_offset = offset & ~(alignment - 1);
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off_t offset_from_alignment = offset - aligned_offset;
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#endif
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if (ggml_backend_buffer_is_host(cur->buffer)) {
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#if defined(__linux__)
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read_aligned_chunk(file.get(), weight->offs, cur->data, n_size, alignment);
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#else
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file->seek(weight->offs, SEEK_SET);
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file->read_raw(cur->data, n_size);
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#endif
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if (file->has_direct_io()) {
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file->read_aligned_chunk(weight->offs, cur->data, n_size, alignment);
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} else {
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file->seek(weight->offs, SEEK_SET);
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file->read_raw(cur->data, n_size);
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}
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if (check_tensors) {
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validation_result.emplace_back(std::async(std::launch::async, [cur, n_size] {
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return std::make_pair(cur, ggml_validate_row_data(cur->type, cur->data, n_size));
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}));
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}
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} else {
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file->seek(weight->offs, SEEK_SET);
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// If upload_backend is valid load the tensor in chunks to pinned memory and upload the buffers asynchronously to the GPU.
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if (upload_backend) {
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#if defined(__linux__)
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// Calculate aligned read boundaries
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size_t read_start = aligned_offset;
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size_t read_end = (offset + n_size + alignment - 1) & ~(alignment - 1);
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if (file->has_direct_io()) {
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auto offset = (off_t) weight->offs;
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off_t aligned_offset = offset & ~(alignment - 1);
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off_t offset_from_alignment = offset - aligned_offset;
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size_t bytes_read = 0;
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size_t data_read = 0; // Actual tensor data copied (excluding padding)
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// Calculate aligned read boundaries
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size_t read_start = aligned_offset;
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size_t read_end = (offset + n_size + alignment - 1) & ~(alignment - 1);
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file->seek(aligned_offset, SEEK_SET);
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size_t bytes_read = 0;
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size_t data_read = 0; // Actual tensor data copied (excluding padding)
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while (bytes_read < read_end - read_start) {
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size_t read_size = std::min<size_t>(buffer_size, read_end - read_start - bytes_read);
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while (bytes_read < read_end - read_start) {
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size_t read_size = std::min<size_t>(buffer_size, read_end - read_start - bytes_read);
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// Align the destination pointer within the pinned buffer
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uintptr_t ptr_dest_aligned = (reinterpret_cast<uintptr_t>(host_ptrs[buffer_idx]) + alignment - 1) & ~(alignment - 1);
|
||||
// Align the destination pointer within the pinned buffer
|
||||
uintptr_t ptr_dest_aligned = (reinterpret_cast<uintptr_t>(host_ptrs[buffer_idx]) + alignment - 1) & ~(alignment - 1);
|
||||
|
||||
// Wait for previous upload to complete before reusing buffer
|
||||
ggml_backend_event_synchronize(events[buffer_idx]);
|
||||
// Wait for previous upload to complete before reusing buffer
|
||||
ggml_backend_event_synchronize(events[buffer_idx]);
|
||||
|
||||
// Read aligned chunk from file
|
||||
file->read_raw(reinterpret_cast<void *>(ptr_dest_aligned), read_size);
|
||||
// Read aligned chunk from file
|
||||
file->read_raw(reinterpret_cast<void *>(ptr_dest_aligned), read_size);
|
||||
|
||||
// Calculate actual data portion (excluding alignment padding)
|
||||
uintptr_t ptr_data = ptr_dest_aligned;
|
||||
size_t data_to_copy = read_size;
|
||||
// Calculate actual data portion (excluding alignment padding)
|
||||
uintptr_t ptr_data = ptr_dest_aligned;
|
||||
size_t data_to_copy = read_size;
|
||||
|
||||
// Skip alignment padding at start of first chunk
|
||||
if (bytes_read == 0) {
|
||||
ptr_data += offset_from_alignment;
|
||||
data_to_copy -= offset_from_alignment;
|
||||
// Skip alignment padding at start of first chunk
|
||||
if (bytes_read == 0) {
|
||||
ptr_data += offset_from_alignment;
|
||||
data_to_copy -= offset_from_alignment;
|
||||
}
|
||||
|
||||
// Trim alignment padding at end of last chunk
|
||||
if (aligned_offset + bytes_read + read_size > offset + n_size) {
|
||||
data_to_copy -= (read_end - (offset + n_size));
|
||||
}
|
||||
|
||||
// Async upload actual data to GPU
|
||||
ggml_backend_tensor_set_async(upload_backend, cur,
|
||||
reinterpret_cast<void *>(ptr_data), data_read, data_to_copy);
|
||||
ggml_backend_event_record(events[buffer_idx], upload_backend);
|
||||
|
||||
data_read += data_to_copy;
|
||||
bytes_read += read_size;
|
||||
|
||||
++buffer_idx;
|
||||
buffer_idx %= n_buffers;
|
||||
}
|
||||
} else {
|
||||
size_t bytes_read = 0;
|
||||
|
||||
// Trim alignment padding at end of last chunk
|
||||
if (aligned_offset + bytes_read + read_size > offset + n_size) {
|
||||
data_to_copy -= (read_end - (offset + n_size));
|
||||
while (bytes_read < n_size) {
|
||||
size_t read_iteration = std::min<size_t>(buffer_size, n_size - bytes_read);
|
||||
|
||||
ggml_backend_event_synchronize(events[buffer_idx]);
|
||||
file->read_raw(host_ptrs[buffer_idx], read_iteration);
|
||||
ggml_backend_tensor_set_async(upload_backend, cur, host_ptrs[buffer_idx], bytes_read, read_iteration);
|
||||
ggml_backend_event_record(events[buffer_idx], upload_backend);
|
||||
|
||||
bytes_read += read_iteration;
|
||||
++buffer_idx;
|
||||
buffer_idx %= n_buffers;
|
||||
}
|
||||
|
||||
// Async upload actual data to GPU
|
||||
ggml_backend_tensor_set_async(upload_backend, cur,
|
||||
reinterpret_cast<void *>(ptr_data), data_read, data_to_copy);
|
||||
ggml_backend_event_record(events[buffer_idx], upload_backend);
|
||||
|
||||
data_read += data_to_copy;
|
||||
bytes_read += read_size;
|
||||
|
||||
++buffer_idx;
|
||||
buffer_idx %= n_buffers;
|
||||
}
|
||||
#else
|
||||
file->seek(weight->offs, SEEK_SET);
|
||||
|
||||
size_t bytes_read = 0;
|
||||
|
||||
while (bytes_read < n_size) {
|
||||
size_t read_iteration = std::min<size_t>(buffer_size, n_size - bytes_read);
|
||||
|
||||
ggml_backend_event_synchronize(events[buffer_idx]);
|
||||
file->read_raw(host_ptrs[buffer_idx], read_iteration);
|
||||
ggml_backend_tensor_set_async(upload_backend, cur, host_ptrs[buffer_idx], bytes_read, read_iteration);
|
||||
ggml_backend_event_record(events[buffer_idx], upload_backend);
|
||||
|
||||
bytes_read += read_iteration;
|
||||
++buffer_idx;
|
||||
buffer_idx %= n_buffers;
|
||||
}
|
||||
#endif
|
||||
} else {
|
||||
read_buf.resize(n_size);
|
||||
#if defined(__linux__)
|
||||
read_aligned_chunk(file.get(), weight->offs, read_buf.data(), n_size, alignment);
|
||||
#else
|
||||
file->seek(weight->offs, SEEK_SET);
|
||||
file->read_raw(read_buf.data(), n_size);
|
||||
#endif
|
||||
if (file->has_direct_io()) {
|
||||
file->read_aligned_chunk(weight->offs, read_buf.data(), n_size, alignment);
|
||||
} else {
|
||||
file->seek(weight->offs, SEEK_SET);
|
||||
file->read_raw(read_buf.data(), n_size);
|
||||
}
|
||||
ggml_backend_tensor_set(cur, read_buf.data(), 0, n_size);
|
||||
if (check_tensors && !ggml_validate_row_data(cur->type, read_buf.data(), n_size)) {
|
||||
throw std::runtime_error(format("tensor '%s' has invalid data", ggml_get_name(cur)));
|
||||
|
|
|
|||
Loading…
Reference in New Issue