mirror of
https://github.com/leejet/stable-diffusion.cpp.git
synced 2026-09-30 01:48:04 -05:00
354 lines
13 KiB
C++
354 lines
13 KiB
C++
#include "model_manager.h"
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#include <algorithm>
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#include <utility>
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#include "core/ggml_extend_backend.h"
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#include "core/util.h"
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ggml_backend_t ModelManager::prefetch_backend_for(ggml_backend_t compute_backend) {
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auto existing = prefetch_backends_.find(compute_backend);
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if (existing != prefetch_backends_.end()) {
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return existing->second;
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}
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if (compute_backend == nullptr) {
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return nullptr;
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}
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ggml_backend_dev_t device = ggml_backend_get_device(compute_backend);
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if (device == nullptr || ggml_backend_dev_type(device) == GGML_BACKEND_DEVICE_TYPE_CPU) {
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return nullptr;
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}
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ggml_backend_t transfer_backend = ggml_backend_dev_init(device, nullptr);
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if (transfer_backend == nullptr) {
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LOG_WARN("model manager failed to create a prefetch backend for %s",
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ggml_backend_name(compute_backend));
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}
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prefetch_backends_[compute_backend] = transfer_backend;
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return transfer_backend;
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}
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void ModelManager::synchronize_prefetch_block(PrefetchBlock& block) {
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if (block.event != nullptr) {
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ggml_backend_event_synchronize(block.event);
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ggml_backend_event_free(block.event);
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block.event = nullptr;
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} else if (block.transfer_backend != nullptr) {
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ggml_backend_synchronize(block.transfer_backend);
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}
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block.transfer_backend = nullptr;
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}
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void ModelManager::free_prefetch_block(PrefetchBlock& block) {
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synchronize_prefetch_block(block);
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for (auto& staging_block : block.staging_blocks) {
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if (staging_block == nullptr) {
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continue;
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}
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staging_block->staged_tensors.clear();
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if (staging_block->buffer != nullptr) {
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ggml_backend_buffer_free(staging_block->buffer);
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staging_block->buffer = nullptr;
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}
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if (staging_block->staging_ctx != nullptr) {
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ggml_free(staging_block->staging_ctx);
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staging_block->staging_ctx = nullptr;
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}
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}
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block.staging_blocks.clear();
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}
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bool ModelManager::populate_prefetch_block(PrefetchBlock& block) {
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if (block.states.empty() || block.compute_backend == nullptr) {
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return false;
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}
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block.transfer_backend = prefetch_backend_for(block.compute_backend);
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if (block.transfer_backend == nullptr) {
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return false;
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}
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for (TensorState* state : block.states) {
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if (state == nullptr || state->tensor == nullptr ||
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state->tensor->buffer == nullptr || state->tensor->data == nullptr ||
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state->params_backend == nullptr || state->staged_to_compute_backend ||
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state->pin_count > 0) {
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return false;
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}
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}
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ggml_backend_buffer_type_t buffer_type =
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ggml_backend_get_default_buffer_type(block.compute_backend);
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if (buffer_type == nullptr) {
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return false;
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}
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const size_t alignment = ggml_backend_buft_get_alignment(buffer_type);
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size_t backend_limit = ggml_backend_buft_get_max_size(buffer_type);
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if (!ggml_backend_buft_is_host(buffer_type) &&
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(backend_limit == 0 || backend_limit > MAX_RESIDENCY_BLOCK_BYTES)) {
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backend_limit = MAX_RESIDENCY_BLOCK_BYTES;
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}
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auto enqueue_chunk = [&](const std::vector<TensorState*>& chunk) -> bool {
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if (chunk.empty()) {
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return true;
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}
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ggml_init_params init_params;
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init_params.mem_size = chunk.size() * ggml_tensor_overhead();
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init_params.mem_buffer = nullptr;
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init_params.no_alloc = true;
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ggml_context* staging_ctx = ggml_init(init_params);
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if (staging_ctx == nullptr) {
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return false;
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}
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auto staging_block = std::make_unique<ComputeStagingBlock>();
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staging_block->compute_backend = block.compute_backend;
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staging_block->staging_ctx = staging_ctx;
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staging_block->staged_tensors.reserve(chunk.size());
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for (TensorState* state : chunk) {
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ggml_tensor* staging_tensor = ggml_dup_tensor(staging_ctx, state->tensor);
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ggml_set_name(staging_tensor, state->tensor->name);
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if (ggml_backend_buffer_is_host(state->tensor->buffer) &&
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(!ggml_is_contiguous(state->tensor) || !ggml_is_contiguous(staging_tensor) ||
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ggml_nbytes(state->tensor) != ggml_nbytes(staging_tensor))) {
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ggml_free(staging_ctx);
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staging_block->staging_ctx = nullptr;
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return false;
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}
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staging_block->staged_tensors.push_back({state, staging_tensor});
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}
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staging_block->buffer =
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ggml_backend_alloc_ctx_tensors_from_buft(staging_ctx, buffer_type);
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if (staging_block->buffer == nullptr) {
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ggml_free(staging_ctx);
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staging_block->staging_ctx = nullptr;
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return false;
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}
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ggml_backend_buffer_set_usage(staging_block->buffer,
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GGML_BACKEND_BUFFER_USAGE_WEIGHTS);
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for (const auto& pair : staging_block->staged_tensors) {
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TensorState* state = pair.first;
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ggml_tensor* staging_tensor = pair.second;
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const bool host_source = ggml_backend_buffer_is_host(state->tensor->buffer);
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if (host_source) {
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ggml_backend_tensor_set_async(block.transfer_backend,
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staging_tensor,
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state->tensor->data,
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0,
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ggml_nbytes(state->tensor));
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} else {
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ggml_backend_tensor_copy_async(state->params_backend,
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block.transfer_backend,
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state->tensor,
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staging_tensor);
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}
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}
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block.staging_blocks.push_back(std::move(staging_block));
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return true;
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};
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std::vector<TensorState*> chunk;
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size_t chunk_size = 0;
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for (TensorState* state : block.states) {
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const size_t tensor_size = GGML_PAD(
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ggml_backend_buft_get_alloc_size(buffer_type, state->tensor), alignment);
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if (!chunk.empty() && backend_limit > 0 &&
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tensor_size > backend_limit - std::min(chunk_size, backend_limit)) {
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if (!enqueue_chunk(chunk)) {
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return false;
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}
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chunk.clear();
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chunk_size = 0;
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}
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chunk.push_back(state);
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chunk_size = tensor_size > SIZE_MAX - chunk_size ? SIZE_MAX : chunk_size + tensor_size;
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}
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if (!enqueue_chunk(chunk)) {
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return false;
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}
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ggml_backend_dev_t device = ggml_backend_get_device(block.transfer_backend);
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block.event = ggml_backend_event_new(device);
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if (block.event != nullptr) {
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ggml_backend_event_record(block.event, block.transfer_backend);
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}
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size_t total_size = 0;
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for (const auto& staging_block : block.staging_blocks) {
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if (staging_block != nullptr && staging_block->buffer != nullptr) {
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const size_t buffer_size = ggml_backend_buffer_get_size(staging_block->buffer);
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total_size = buffer_size > SIZE_MAX - total_size ? SIZE_MAX : total_size + buffer_size;
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}
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}
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LOG_DEBUG("model manager queued segment prefetch (%6.2f MB, %zu tensors) to %s",
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total_size / (1024.f * 1024.f),
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block.states.size(),
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ggml_backend_name(block.compute_backend));
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return true;
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}
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WeightPrefetchResult ModelManager::prefetch_params(
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uintptr_t owner_id,
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const std::vector<ggml_tensor*>& tensors) {
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if (tensors.empty()) {
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return WeightPrefetchResult::AlreadyResident;
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}
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std::vector<TensorState*> required_states;
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if (!resolve_required_tensor_states(tensors, required_states)) {
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return WeightPrefetchResult::Failed;
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}
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std::vector<TensorState*> states;
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states.reserve(required_states.size());
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ggml_backend_t compute_backend = nullptr;
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bool needs_synchronous_load = false;
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for (TensorState* state : required_states) {
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if (state == nullptr || should_ignore(*state) ||
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is_optional_missing_tensor(state->name)) {
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continue;
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}
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if (state->compute_backend == state->params_backend) {
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needs_synchronous_load = needs_synchronous_load ||
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!state->loaded_to_params_backend;
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continue;
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}
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if (state->staged_to_compute_backend || state->pin_count > 0) {
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continue;
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}
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// Split buffers cannot use the primary device's asynchronous upload path.
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if (split_buffer_type_for(*state) != nullptr) {
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return WeightPrefetchResult::Unsupported;
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}
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if (compute_backend == nullptr) {
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compute_backend = state->compute_backend;
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} else if (compute_backend != state->compute_backend) {
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return WeightPrefetchResult::Failed;
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}
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states.push_back(state);
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}
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if (states.empty()) {
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return needs_synchronous_load ? WeightPrefetchResult::Unsupported
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: WeightPrefetchResult::AlreadyResident;
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}
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if (compute_backend == nullptr || sd_backend_is_cpu(compute_backend)) {
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return WeightPrefetchResult::Unsupported;
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}
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ggml_backend_dev_t compute_device = ggml_backend_get_device(compute_backend);
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ggml_backend_dev_props compute_props{};
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if (compute_device == nullptr) {
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return WeightPrefetchResult::Unsupported;
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}
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ggml_backend_dev_get_props(compute_device, &compute_props);
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if (!compute_props.caps.async) {
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return WeightPrefetchResult::Unsupported;
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}
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clear_prefetched_params(owner_id);
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if (!load_tensors_to_params_backend(states)) {
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return WeightPrefetchResult::Failed;
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}
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auto block = std::make_unique<PrefetchBlock>();
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block->states = std::move(states);
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block->compute_backend = compute_backend;
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if (!populate_prefetch_block(*block)) {
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free_prefetch_block(*block);
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return WeightPrefetchResult::Failed;
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}
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prefetch_blocks_[owner_id] = std::move(block);
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return WeightPrefetchResult::Scheduled;
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}
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bool ModelManager::activate_prefetched_params(
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uintptr_t owner_id,
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const std::vector<ggml_tensor*>& tensors) {
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std::vector<TensorState*> required_states;
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if (!resolve_required_tensor_states(tensors, required_states)) {
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return false;
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}
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const bool already_staged = std::all_of(
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required_states.begin(),
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required_states.end(),
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[&](TensorState* state) {
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return state == nullptr || should_ignore(*state) ||
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is_optional_missing_tensor(state->name) ||
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state->compute_backend == state->params_backend ||
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state->staged_to_compute_backend;
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});
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if (already_staged) {
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clear_prefetched_params(owner_id);
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return true;
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}
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auto existing = prefetch_blocks_.find(owner_id);
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if (existing == prefetch_blocks_.end()) {
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return false;
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}
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std::unique_ptr<PrefetchBlock> block = std::move(existing->second);
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prefetch_blocks_.erase(existing);
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synchronize_prefetch_block(*block);
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for (const auto& staging_block : block->staging_blocks) {
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if (staging_block == nullptr) {
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continue;
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}
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for (const auto& pair : staging_block->staged_tensors) {
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TensorState* state = pair.first;
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ggml_tensor* staging_tensor = pair.second;
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if (state == nullptr || state->tensor == nullptr || staging_tensor == nullptr ||
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state->staged_to_compute_backend || state->pin_count > 0) {
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free_prefetch_block(*block);
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return false;
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}
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}
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}
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const uint64_t use_epoch = ++residency_epoch_;
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for (auto& staging_block : block->staging_blocks) {
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if (staging_block == nullptr) {
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continue;
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}
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for (auto& pair : staging_block->staged_tensors) {
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TensorState* state = pair.first;
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ggml_tensor* staging_tensor = pair.second;
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std::swap(state->tensor->buffer, staging_tensor->buffer);
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std::swap(state->tensor->data, staging_tensor->data);
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std::swap(state->tensor->extra, staging_tensor->extra);
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state->staged_to_compute_backend = true;
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state->last_use_epoch = use_epoch;
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}
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compute_staging_blocks_.push_back(std::move(staging_block));
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}
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block->staging_blocks.clear();
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return true;
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}
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void ModelManager::clear_prefetched_params(uintptr_t owner_id) {
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auto existing = prefetch_blocks_.find(owner_id);
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if (existing == prefetch_blocks_.end()) {
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return;
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}
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std::unique_ptr<PrefetchBlock> block = std::move(existing->second);
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prefetch_blocks_.erase(existing);
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free_prefetch_block(*block);
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}
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void ModelManager::clear_all_prefetched_params() {
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for (auto& entry : prefetch_blocks_) {
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free_prefetch_block(*entry.second);
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}
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prefetch_blocks_.clear();
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}
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void ModelManager::release_prefetch() {
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clear_all_prefetched_params();
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for (auto& entry : prefetch_backends_) {
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if (entry.second != nullptr) {
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ggml_backend_free(entry.second);
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}
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}
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prefetch_backends_.clear();
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}
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