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https://github.com/ggerganov/llama.cpp.git
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common : improve -ctv -ctk CLI arguments (#10806)
* common : improve ctv ctk cli argument * regenerate docs * even better approach * use std::vector
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@ -145,6 +145,35 @@ static void common_params_handle_model_default(common_params & params) {
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}
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}
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const std::vector<ggml_type> kv_cache_types = {
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GGML_TYPE_F32,
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GGML_TYPE_F16,
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GGML_TYPE_BF16,
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GGML_TYPE_Q8_0,
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GGML_TYPE_Q4_0,
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GGML_TYPE_Q4_1,
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GGML_TYPE_IQ4_NL,
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GGML_TYPE_Q5_0,
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GGML_TYPE_Q5_1,
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};
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static ggml_type kv_cache_type_from_str(const std::string & s) {
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for (const auto & type : kv_cache_types) {
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if (ggml_type_name(type) == s) {
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return type;
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}
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}
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throw std::runtime_error("Unsupported cache type: " + s);
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}
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static std::string get_all_kv_cache_types() {
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std::ostringstream msg;
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for (const auto & type : kv_cache_types) {
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msg << ggml_type_name(type) << (&type == &kv_cache_types.back() ? "" : ", ");
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}
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return msg.str();
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}
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//
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// CLI argument parsing functions
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//
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@ -1174,18 +1203,28 @@ common_params_context common_params_parser_init(common_params & params, llama_ex
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).set_env("LLAMA_ARG_NO_KV_OFFLOAD"));
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add_opt(common_arg(
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{"-ctk", "--cache-type-k"}, "TYPE",
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string_format("KV cache data type for K (default: %s)", params.cache_type_k.c_str()),
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string_format(
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"KV cache data type for K\n"
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"allowed values: %s\n"
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"(default: %s)",
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get_all_kv_cache_types().c_str(),
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ggml_type_name(params.cache_type_k)
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),
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[](common_params & params, const std::string & value) {
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// TODO: get the type right here
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params.cache_type_k = value;
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params.cache_type_k = kv_cache_type_from_str(value);
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}
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).set_env("LLAMA_ARG_CACHE_TYPE_K"));
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add_opt(common_arg(
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{"-ctv", "--cache-type-v"}, "TYPE",
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string_format("KV cache data type for V (default: %s)", params.cache_type_v.c_str()),
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string_format(
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"KV cache data type for V\n"
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"allowed values: %s\n"
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"(default: %s)",
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get_all_kv_cache_types().c_str(),
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ggml_type_name(params.cache_type_v)
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),
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[](common_params & params, const std::string & value) {
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// TODO: get the type right here
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params.cache_type_v = value;
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params.cache_type_v = kv_cache_type_from_str(value);
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}
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).set_env("LLAMA_ARG_CACHE_TYPE_V"));
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add_opt(common_arg(
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@ -1015,38 +1015,6 @@ struct llama_model_params common_model_params_to_llama(common_params & params) {
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return mparams;
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}
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static ggml_type kv_cache_type_from_str(const std::string & s) {
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if (s == "f32") {
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return GGML_TYPE_F32;
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}
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if (s == "f16") {
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return GGML_TYPE_F16;
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}
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if (s == "bf16") {
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return GGML_TYPE_BF16;
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}
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if (s == "q8_0") {
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return GGML_TYPE_Q8_0;
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}
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if (s == "q4_0") {
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return GGML_TYPE_Q4_0;
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}
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if (s == "q4_1") {
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return GGML_TYPE_Q4_1;
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}
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if (s == "iq4_nl") {
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return GGML_TYPE_IQ4_NL;
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}
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if (s == "q5_0") {
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return GGML_TYPE_Q5_0;
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}
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if (s == "q5_1") {
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return GGML_TYPE_Q5_1;
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}
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throw std::runtime_error("Unsupported cache type: " + s);
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}
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struct llama_context_params common_context_params_to_llama(const common_params & params) {
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auto cparams = llama_context_default_params();
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@ -1081,8 +1049,8 @@ struct llama_context_params common_context_params_to_llama(const common_params &
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cparams.pooling_type = LLAMA_POOLING_TYPE_RANK;
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}
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cparams.type_k = kv_cache_type_from_str(params.cache_type_k);
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cparams.type_v = kv_cache_type_from_str(params.cache_type_v);
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cparams.type_k = params.cache_type_k;
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cparams.type_v = params.cache_type_v;
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return cparams;
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}
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@ -286,8 +286,8 @@ struct common_params {
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bool warmup = true; // warmup run
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bool check_tensors = false; // validate tensor data
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std::string cache_type_k = "f16"; // KV cache data type for the K
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std::string cache_type_v = "f16"; // KV cache data type for the V
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ggml_type cache_type_k = GGML_TYPE_F16; // KV cache data type for the K
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ggml_type cache_type_v = GGML_TYPE_F16; // KV cache data type for the V
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// multimodal models (see examples/llava)
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std::string mmproj = ""; // path to multimodal projector // NOLINT
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@ -51,6 +51,7 @@ else()
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add_subdirectory(speculative)
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add_subdirectory(speculative-simple)
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add_subdirectory(tokenize)
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add_subdirectory(gen-docs)
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if (NOT GGML_BACKEND_DL)
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# these examples use the backends directly and cannot be built with dynamic loading
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add_subdirectory(convert-llama2c-to-ggml)
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@ -62,8 +62,8 @@ The project is under active development, and we are [looking for feedback and co
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| `--yarn-beta-fast N` | YaRN: low correction dim or beta (default: 32.0)<br/>(env: LLAMA_ARG_YARN_BETA_FAST) |
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| `-dkvc, --dump-kv-cache` | verbose print of the KV cache |
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| `-nkvo, --no-kv-offload` | disable KV offload<br/>(env: LLAMA_ARG_NO_KV_OFFLOAD) |
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| `-ctk, --cache-type-k TYPE` | KV cache data type for K (default: f16)<br/>(env: LLAMA_ARG_CACHE_TYPE_K) |
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| `-ctv, --cache-type-v TYPE` | KV cache data type for V (default: f16)<br/>(env: LLAMA_ARG_CACHE_TYPE_V) |
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| `-ctk, --cache-type-k TYPE` | KV cache data type for K<br/>allowed values: f32, f16, bf16, q8_0, q4_0, q4_1, iq4_nl, q5_0, q5_1<br/>(default: f16)<br/>(env: LLAMA_ARG_CACHE_TYPE_K) |
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| `-ctv, --cache-type-v TYPE` | KV cache data type for V<br/>allowed values: f32, f16, bf16, q8_0, q4_0, q4_1, iq4_nl, q5_0, q5_1<br/>(default: f16)<br/>(env: LLAMA_ARG_CACHE_TYPE_V) |
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| `-dt, --defrag-thold N` | KV cache defragmentation threshold (default: 0.1, < 0 - disabled)<br/>(env: LLAMA_ARG_DEFRAG_THOLD) |
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| `-np, --parallel N` | number of parallel sequences to decode (default: 1)<br/>(env: LLAMA_ARG_N_PARALLEL) |
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| `--mlock` | force system to keep model in RAM rather than swapping or compressing<br/>(env: LLAMA_ARG_MLOCK) |
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@ -138,6 +138,7 @@ The project is under active development, and we are [looking for feedback and co
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| -------- | ----------- |
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| `--no-context-shift` | disables context shift on inifinite text generation (default: disabled)<br/>(env: LLAMA_ARG_NO_CONTEXT_SHIFT) |
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| `-sp, --special` | special tokens output enabled (default: false) |
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| `--no-warmup` | skip warming up the model with an empty run |
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| `--spm-infill` | use Suffix/Prefix/Middle pattern for infill (instead of Prefix/Suffix/Middle) as some models prefer this. (default: disabled) |
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| `--pooling {none,mean,cls,last,rank}` | pooling type for embeddings, use model default if unspecified<br/>(env: LLAMA_ARG_POOLING) |
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| `-cb, --cont-batching` | enable continuous batching (a.k.a dynamic batching) (default: enabled)<br/>(env: LLAMA_ARG_CONT_BATCHING) |
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@ -146,7 +147,7 @@ The project is under active development, and we are [looking for feedback and co
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| `--host HOST` | ip address to listen (default: 127.0.0.1)<br/>(env: LLAMA_ARG_HOST) |
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| `--port PORT` | port to listen (default: 8080)<br/>(env: LLAMA_ARG_PORT) |
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| `--path PATH` | path to serve static files from (default: )<br/>(env: LLAMA_ARG_STATIC_PATH) |
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| `--no-webui` | disable the Web UI<br/>(env: LLAMA_ARG_NO_WEBUI) |
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| `--no-webui` | Disable the Web UI (default: enabled)<br/>(env: LLAMA_ARG_NO_WEBUI) |
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| `--embedding, --embeddings` | restrict to only support embedding use case; use only with dedicated embedding models (default: disabled)<br/>(env: LLAMA_ARG_EMBEDDINGS) |
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| `--reranking, --rerank` | enable reranking endpoint on server (default: disabled)<br/>(env: LLAMA_ARG_RERANKING) |
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| `--api-key KEY` | API key to use for authentication (default: none)<br/>(env: LLAMA_API_KEY) |
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@ -164,13 +165,13 @@ The project is under active development, and we are [looking for feedback and co
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| `--chat-template JINJA_TEMPLATE` | set custom jinja chat template (default: template taken from model's metadata)<br/>if suffix/prefix are specified, template will be disabled<br/>list of built-in templates:<br/>chatglm3, chatglm4, chatml, command-r, deepseek, deepseek2, exaone3, gemma, granite, llama2, llama2-sys, llama2-sys-bos, llama2-sys-strip, llama3, minicpm, mistral-v1, mistral-v3, mistral-v3-tekken, mistral-v7, monarch, openchat, orion, phi3, rwkv-world, vicuna, vicuna-orca, zephyr<br/>(env: LLAMA_ARG_CHAT_TEMPLATE) |
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| `-sps, --slot-prompt-similarity SIMILARITY` | how much the prompt of a request must match the prompt of a slot in order to use that slot (default: 0.50, 0.0 = disabled)<br/> |
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| `--lora-init-without-apply` | load LoRA adapters without applying them (apply later via POST /lora-adapters) (default: disabled) |
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| `--draft-max, --draft, --draft-n N` | number of tokens to draft for speculative decoding (default: 16) |
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| `--draft-min, --draft-n-min N` | minimum number of draft tokens to use for speculative decoding (default: 5) |
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| `--draft-p-min P` | minimum speculative decoding probability (greedy) (default: 0.9) |
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| `-cd, --ctx-size-draft N` | size of the prompt context for the draft model (default: 0, 0 = loaded from model) |
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| `--draft-max, --draft, --draft-n N` | number of tokens to draft for speculative decoding (default: 16)<br/>(env: LLAMA_ARG_DRAFT_MAX) |
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| `--draft-min, --draft-n-min N` | minimum number of draft tokens to use for speculative decoding (default: 5)<br/>(env: LLAMA_ARG_DRAFT_MIN) |
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| `--draft-p-min P` | minimum speculative decoding probability (greedy) (default: 0.9)<br/>(env: LLAMA_ARG_DRAFT_P_MIN) |
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| `-cd, --ctx-size-draft N` | size of the prompt context for the draft model (default: 0, 0 = loaded from model)<br/>(env: LLAMA_ARG_CTX_SIZE_DRAFT) |
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| `-devd, --device-draft <dev1,dev2,..>` | comma-separated list of devices to use for offloading the draft model (none = don't offload)<br/>use --list-devices to see a list of available devices |
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| `-ngld, --gpu-layers-draft, --n-gpu-layers-draft N` | number of layers to store in VRAM for the draft model |
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| `-md, --model-draft FNAME` | draft model for speculative decoding (default: unused) |
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| `-ngld, --gpu-layers-draft, --n-gpu-layers-draft N` | number of layers to store in VRAM for the draft model<br/>(env: LLAMA_ARG_N_GPU_LAYERS_DRAFT) |
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| `-md, --model-draft FNAME` | draft model for speculative decoding (default: unused)<br/>(env: LLAMA_ARG_MODEL_DRAFT) |
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Note: If both command line argument and environment variable are both set for the same param, the argument will take precedence over env var.
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