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llama : check that all the tensor data is in the model file (#6885)
* llama : check that all the tensor data is in the model file * also check for unsigned overflow
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llama.cpp
23
llama.cpp
@ -2999,9 +2999,13 @@ struct llama_model_loader {
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ggml_tensor * tensor;
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ggml_tensor * tensor;
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llama_tensor_weight(uint16_t idx, const char * name, const struct gguf_context * gguf_ctx, ggml_tensor * tensor) : idx(idx), tensor(tensor) {
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llama_tensor_weight(const llama_file * file, uint16_t idx, const char * name, const struct gguf_context * gguf_ctx, ggml_tensor * tensor) : idx(idx), tensor(tensor) {
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const int tensor_idx = gguf_find_tensor(gguf_ctx, name);
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const int tensor_idx = gguf_find_tensor(gguf_ctx, name);
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offs = gguf_get_data_offset(gguf_ctx) + gguf_get_tensor_offset(gguf_ctx, tensor_idx);
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offs = gguf_get_data_offset(gguf_ctx) + gguf_get_tensor_offset(gguf_ctx, tensor_idx);
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if (offs + ggml_nbytes(tensor) < offs || offs + ggml_nbytes(tensor) > file->size) {
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throw std::runtime_error(format("tensor '%s' data is not within the file bounds, model is corrupted or incomplete", name));
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}
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}
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}
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};
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};
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std::vector<llama_tensor_weight> weights;
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std::vector<llama_tensor_weight> weights;
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@ -3040,15 +3044,15 @@ struct llama_model_loader {
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get_key(llm_kv(LLM_KV_GENERAL_ARCHITECTURE), arch_name, false);
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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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llm_kv = LLM_KV(llm_arch_from_string(arch_name));
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files.emplace_back(new llama_file(fname.c_str(), "rb"));
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contexts.emplace_back(ctx);
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// Save tensors data offset of the main file.
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// Save tensors data offset of the main file.
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// For subsidiary files, `meta` tensor data offset must not be used,
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// For subsidiary files, `meta` tensor data offset must not be used,
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// so we build a unified tensors index for weights.
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// so we build a unified tensors index for weights.
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for (ggml_tensor * cur = ggml_get_first_tensor(ctx); cur; cur = ggml_get_next_tensor(ctx, cur)) {
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for (ggml_tensor * cur = ggml_get_first_tensor(ctx); cur; cur = ggml_get_next_tensor(ctx, cur)) {
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weights.emplace_back(0, cur->name, meta, cur);
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weights.emplace_back(files.back().get(), 0, cur->name, meta, cur);
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}
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}
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files.emplace_back(new llama_file(fname.c_str(), "rb"));
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contexts.emplace_back(ctx);
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uint16_t n_split = 0;
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uint16_t n_split = 0;
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get_key(llm_kv(LLM_KV_SPLIT_COUNT), n_split, false);
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get_key(llm_kv(LLM_KV_SPLIT_COUNT), n_split, false);
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@ -3082,13 +3086,14 @@ struct llama_model_loader {
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throw std::runtime_error(format("%s: failed to load GGUF split from %s\n", __func__, split_path));
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throw std::runtime_error(format("%s: failed to load GGUF split from %s\n", __func__, split_path));
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}
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}
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// Save tensors data offset info of the shard.
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for (ggml_tensor * cur = ggml_get_first_tensor(ctx); cur; cur = ggml_get_next_tensor(ctx, cur)) {
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weights.emplace_back(idx, cur->name, ctx_gguf, cur);
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}
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files.emplace_back(new llama_file(split_path, "rb"));
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files.emplace_back(new llama_file(split_path, "rb"));
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contexts.emplace_back(ctx);
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contexts.emplace_back(ctx);
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// Save tensors data offset info of the shard.
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for (ggml_tensor * cur = ggml_get_first_tensor(ctx); cur; cur = ggml_get_next_tensor(ctx, cur)) {
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weights.emplace_back(files.back().get(), idx, cur->name, ctx_gguf, cur);
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}
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gguf_free(ctx_gguf);
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gguf_free(ctx_gguf);
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}
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}
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