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llama: use sliding window for phi3 (#8627)
* use sliding window for phi3 * fix typo, "data_swa" -> "data" * [conver_hf_to_gguf.py] add phi3 sliding window
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@ -2084,6 +2084,7 @@ class Phi3MiniModel(Model):
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self.gguf_writer.add_rope_dimension_count(rope_dims)
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self.gguf_writer.add_rope_freq_base(self.find_hparam(["rope_theta"]))
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self.gguf_writer.add_file_type(self.ftype)
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self.gguf_writer.add_sliding_window(self.find_hparam(["sliding_window"]))
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# write rope scaling for long context (128k) model
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rope_scaling = self.find_hparam(['rope_scaling'], True)
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@ -4889,6 +4889,7 @@ static void llm_load_hparams(
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} break;
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case LLM_ARCH_PHI3:
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{
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ml.get_key(LLM_KV_ATTENTION_SLIDING_WINDOW, hparams.n_swa);
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ml.get_key(LLM_KV_ATTENTION_LAYERNORM_RMS_EPS, hparams.f_norm_rms_eps);
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switch (hparams.n_layer) {
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@ -10748,7 +10749,7 @@ struct llm_build_context {
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struct ggml_tensor * inp_pos = build_inp_pos();
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// KQ_mask (mask for 1 head, it will be broadcasted to all heads)
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struct ggml_tensor * KQ_mask = build_inp_KQ_mask();
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struct ggml_tensor * KQ_mask_swa = build_inp_KQ_mask_swa();
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for (int il = 0; il < n_layer; ++il) {
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auto residual = inpL;
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@ -10806,7 +10807,7 @@ struct llm_build_context {
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cur = llm_build_kv(ctx0, lctx, kv_self, gf,
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model.layers[il].wo, model.layers[il].bo,
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Kcur, Vcur, Qcur, KQ_mask, n_tokens, kv_head, n_kv, 1.0f, cb, il);
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Kcur, Vcur, Qcur, KQ_mask_swa, n_tokens, kv_head, n_kv, 1.0f, cb, il);
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}
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if (il == n_layer - 1) {
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@ -14013,18 +14014,23 @@ static void llama_set_inputs(llama_context & lctx, const llama_batch & batch) {
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"causal attention is not supported by this model"
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);
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if (lctx.inp_KQ_mask) {
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if (lctx.inp_KQ_mask || lctx.inp_KQ_mask_swa) {
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// NOTE: hparams.causal_attn indicates the model is capable of generation and uses the kv cache.
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if (cparams.causal_attn && !lctx.is_encoding) {
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const int64_t n_kv = kv_self.n;
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const int64_t n_tokens = batch.n_tokens;
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GGML_ASSERT(ggml_backend_buffer_is_host(lctx.inp_KQ_mask->buffer));
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float * data = (float *) lctx.inp_KQ_mask->data;
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float * data = nullptr;
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float * data_swa = nullptr;
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if (lctx.inp_KQ_mask) {
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GGML_ASSERT(ggml_backend_buffer_is_host(lctx.inp_KQ_mask->buffer));
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data = (float *) lctx.inp_KQ_mask->data;
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}
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if (lctx.inp_KQ_mask_swa) {
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GGML_ASSERT(ggml_backend_buffer_is_host(lctx.inp_KQ_mask_swa->buffer));
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data_swa = (float *) lctx.inp_KQ_mask_swa->data;
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}
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@ -14047,7 +14053,10 @@ static void llama_set_inputs(llama_context & lctx, const llama_batch & batch) {
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f = 0.0f;
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}
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}
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data[h*(n_kv*n_tokens) + j*n_kv + i] = f;
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if (data) {
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data[h*(n_kv*n_tokens) + j*n_kv + i] = f;
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}
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// may need to cut off old tokens for sliding window
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if (data_swa) {
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@ -14059,9 +14068,19 @@ static void llama_set_inputs(llama_context & lctx, const llama_batch & batch) {
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}
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}
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for (int i = n_tokens; i < GGML_PAD(n_tokens, GGML_KQ_MASK_PAD); ++i) {
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for (int j = 0; j < n_kv; ++j) {
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data[h*(n_kv*n_tokens) + i*n_kv + j] = -INFINITY;
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if (data) {
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for (int i = n_tokens; i < GGML_PAD(n_tokens, GGML_KQ_MASK_PAD); ++i) {
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for (int j = 0; j < n_kv; ++j) {
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data[h*(n_kv*n_tokens) + i*n_kv + j] = -INFINITY;
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}
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}
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}
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if (data_swa) {
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for (int i = n_tokens; i < GGML_PAD(n_tokens, GGML_KQ_MASK_PAD); ++i) {
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for (int j = 0; j < n_kv; ++j) {
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data_swa[h*(n_kv*n_tokens) + i*n_kv + j] = -INFINITY;
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}
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}
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}
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}
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