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llama : fix quantization of shared token_embd (#5944)
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@ -10973,6 +10973,9 @@ struct quantize_state_internal {
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bool has_imatrix = false;
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// used to figure out if a model shares tok_embd with the output weight
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bool has_output = false;
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quantize_state_internal(const llama_model & model, const llama_model_quantize_params * params)
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: model(model)
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, params(params)
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@ -11070,8 +11073,7 @@ static ggml_type get_k_quant_type(quantize_state_internal & qs, ggml_type new_ty
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// for arches that share the same tensor between the token embeddings and the output, we quantize the token embeddings
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// with the quantization of the output tensor
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if (name == tn(LLM_TENSOR_OUTPUT, "weight") ||
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(LLM_TENSOR_NAMES.at(arch).find(LLM_TENSOR_OUTPUT) == LLM_TENSOR_NAMES.at(arch).end() && name == "token_embd.weight")) {
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if (name == tn(LLM_TENSOR_OUTPUT, "weight") || (!qs.has_output && name == tn(LLM_TENSOR_TOKEN_EMBD, "weight"))) {
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int nx = tensor->ne[0];
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if (arch == LLM_ARCH_FALCON || nx % QK_K != 0) {
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new_type = GGML_TYPE_Q8_0;
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@ -11460,6 +11462,9 @@ static void llama_model_quantize_internal(const std::string & fname_inp, const s
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else if (name.find("ffn_up") != std::string::npos) {
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++qs.n_ffn_up;
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}
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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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}
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if (qs.n_attention_wv != qs.n_ffn_down || (uint32_t)qs.n_attention_wv != model.hparams.n_layer) {
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LLAMA_LOG_WARN("%s ============ Strange model: n_attention_wv = %d, n_ffn_down = %d, hparams.n_layer = %d\n",
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