llama-quant: add support for mmproj (#16592)
* llama-quant: add support for mmproj * Update src/llama.cpp Co-authored-by: Georgi Gerganov <ggerganov@gmail.com> * check prefix instead * small fix --------- Co-authored-by: Georgi Gerganov <ggerganov@gmail.com>
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@ -5,6 +5,7 @@
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#include <map>
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static const std::map<llm_arch, const char *> LLM_ARCH_NAMES = {
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{ LLM_ARCH_CLIP, "clip" }, // dummy, only used by llama-quantize
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{ LLM_ARCH_LLAMA, "llama" },
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{ LLM_ARCH_LLAMA4, "llama4" },
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{ LLM_ARCH_DECI, "deci" },
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@ -275,6 +276,10 @@ static const std::map<llm_kv, const char *> LLM_KV_NAMES = {
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};
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static const std::map<llm_arch, std::map<llm_tensor, const char *>> LLM_TENSOR_NAMES = {
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{
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LLM_ARCH_CLIP,
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{},
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},
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{
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LLM_ARCH_LLAMA,
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{
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@ -9,6 +9,7 @@
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//
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enum llm_arch {
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LLM_ARCH_CLIP,
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LLM_ARCH_LLAMA,
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LLM_ARCH_LLAMA4,
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LLM_ARCH_DECI,
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@ -478,7 +478,8 @@ void llama_model::load_hparams(llama_model_loader & ml) {
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ml.get_key(LLM_KV_GENERAL_NAME, name, false);
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// everything past this point is not vocab-related
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if (hparams.vocab_only) {
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// for CLIP models, we only need to load tensors, no hparams
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if (hparams.vocab_only || ml.get_arch() == LLM_ARCH_CLIP) {
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return;
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}
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@ -20013,6 +20014,7 @@ int32_t llama_n_head(const llama_model * model) {
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llama_rope_type llama_model_rope_type(const llama_model * model) {
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switch (model->arch) {
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// these models do not use RoPE
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case LLM_ARCH_CLIP:
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case LLM_ARCH_GPT2:
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case LLM_ARCH_GPTJ:
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case LLM_ARCH_MPT:
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@ -701,6 +701,7 @@ static void llama_model_quantize_impl(const std::string & fname_inp, const std::
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});
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}
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bool is_clip_model = false;
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for (const auto * it : tensors) {
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const struct ggml_tensor * tensor = it->tensor;
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@ -714,12 +715,14 @@ static void llama_model_quantize_impl(const std::string & fname_inp, const std::
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} else if (name == LLM_TN(model.arch)(LLM_TENSOR_OUTPUT, "weight")) {
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qs.has_output = true;
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}
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is_clip_model |= name.rfind("mm.", 0) == 0; // check the "mm." prefix
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}
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qs.n_ffn_down = qs.n_ffn_gate = qs.n_ffn_up = (int)model.hparams.n_layer;
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// sanity checks for models that have attention layers
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if (qs.n_attention_wv != 0)
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if (qs.n_attention_wv != 0 && !is_clip_model)
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{
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const auto & n_head_kv_iter = model.hparams.n_head_kv_arr.begin();
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// attention layers have a non-zero number of kv heads
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@ -881,6 +884,9 @@ static void llama_model_quantize_impl(const std::string & fname_inp, const std::
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// do not quantize relative position bias (T5)
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quantize &= name.find("attn_rel_b.weight") == std::string::npos;
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// do not quantize specific multimodal tensors
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quantize &= name.find(".position_embd.") == std::string::npos;
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ggml_type new_type;
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void * new_data;
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size_t new_size;
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@ -124,6 +124,9 @@ static int llama_model_load(const std::string & fname, std::vector<std::string>
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} catch(const std::exception & e) {
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throw std::runtime_error("error loading model hyperparameters: " + std::string(e.what()));
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}
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if (model.arch == LLM_ARCH_CLIP) {
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throw std::runtime_error("CLIP cannot be used as main model, use it with --mmproj instead");
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}
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try {
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model.load_vocab(ml);
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} catch(const std::exception & e) {
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