#include "models.h" #include "llama-impl.h" #include "llama-kv-cache.h" #include "llama-kv-cache-iswa.h" void llama_model_dflash::load_arch_hparams(llama_model_loader & ml) { ml.get_key(LLM_KV_ATTENTION_LAYERNORM_RMS_EPS, hparams.f_norm_rms_eps); ml.get_key(LLM_KV_LOGIT_SCALE, hparams.f_logit_scale, false); hparams.f_final_logit_softcapping = 0.0f; ml.get_key(LLM_KV_FINAL_LOGIT_SOFTCAPPING, hparams.f_final_logit_softcapping, false); // drafts for M-RoPE targets carry degenerate sections [n_rot/2, 0, 0, 0] ml.get_key_or_arr(LLM_KV_ROPE_DIMENSION_SECTIONS, hparams.rope_sections, 4, false); ml.get_key(LLM_KV_DFLASH_BLOCK_SIZE, hparams.dflash_block_size, false); ml.get_key(LLM_KV_DFLASH_CONV_KERNEL_SIZE, hparams.dflash_conv_kernel_size, false); ml.get_key(LLM_KV_DFLASH_CONV_GROUP_SIZE, hparams.dflash_conv_group_size, false); ml.get_key(LLM_KV_DFLASH_SELECTOR_RANK, hparams.dflash_selector_rank, false); ml.get_key(LLM_KV_DFLASH_SELECTOR_TOP_K, hparams.dflash_selector_top_k, false); if (!ml.get_arr(LLM_KV_TARGET_LAYERS, target_layer_ids, false)) { throw std::runtime_error("DFlash model requires 'target_layers' in GGUF metadata"); } hparams.n_embd_inp_enc_impl = (uint32_t) target_layer_ids.size() * hparams.n_embd; std::string layers; const char * sep = ""; for (const auto id : target_layer_ids) { layers += sep; layers += std::to_string(id); sep = ", "; } LLAMA_LOG_INFO("%s: DFlash extract_layers = [%s]\n", __func__, layers.c_str()); // DeepSeek-V4 DSpark backbone: stages are full DSV4 blocks, uniform sliding window (the draft KV ring) ml.get_key(LLM_KV_HYPER_CONNECTION_COUNT, hparams.dsv4_hc_mult, false); if (hparams.dsv4_hc_mult > 0) { ml.get_key(LLM_KV_ATTENTION_Q_LORA_RANK, hparams.n_lora_q); ml.get_key(LLM_KV_ATTENTION_SLIDING_WINDOW, hparams.n_swa); ml.get_key(LLM_KV_EXPERT_FEED_FORWARD_LENGTH, hparams.n_ff_exp); ml.get_key(LLM_KV_EXPERT_SHARED_COUNT, hparams.n_expert_shared); ml.get_key(LLM_KV_EXPERT_WEIGHTS_SCALE, hparams.expert_weights_scale); ml.get_key(LLM_KV_EXPERT_WEIGHTS_NORM, hparams.expert_weights_norm); ml.get_key(LLM_KV_EXPERT_GATING_FUNC, hparams.expert_gating_func); ml.get_key_or_arr(LLM_KV_SWIGLU_CLAMP_EXP, hparams.swiglu_clamp_exp, hparams.n_layer_all); if (!ml.get_key_or_arr(LLM_KV_SWIGLU_CLAMP_SHEXP, hparams.swiglu_clamp_shexp, hparams.n_layer_all, 0)) { hparams.swiglu_clamp_shexp = hparams.swiglu_clamp_exp; } ml.get_key(LLM_KV_ATTENTION_OUTPUT_GROUP_COUNT, hparams.dsv4_o_group_count); ml.get_key(LLM_KV_ATTENTION_OUTPUT_LORA_RANK, hparams.dsv4_o_lora_rank); ml.get_key(LLM_KV_HYPER_CONNECTION_SINKHORN_ITERATIONS, hparams.dsv4_hc_sinkhorn_iters); ml.get_key(LLM_KV_HYPER_CONNECTION_EPSILON, hparams.dsv4_hc_eps); ml.get_arr(LLM_KV_ATTENTION_COMPRESS_RATIOS, hparams.dsv4_compress_ratios, false); GGML_ASSERT(hparams.dsv4_o_group_count > 0); // avoid div by zero if (hparams.expert_gating_func != LLAMA_EXPERT_GATING_FUNC_TYPE_SQRT_SOFTPLUS) { throw std::runtime_error("DSpark DSV4 draft expects sqrtsoftplus MoE scoring"); } for (uint32_t il = 0; il < hparams.n_layer_all; ++il) { if (hparams.dsv4_compress_ratios[il] != 0) { throw std::runtime_error("DSpark DSV4 draft expects uncompressed attention on all stages"); } } GGML_ASSERT(hparams.n_swa > 0); hparams.swa_type = LLAMA_SWA_TYPE_STANDARD; hparams.set_swa_pattern(0); for (uint32_t il = 0; il < hparams.n_layer_all; ++il) { hparams.is_swa_impl[il] = true; } hparams.rope_freq_base_train_swa = hparams.rope_freq_base_train; hparams.rope_freq_scale_train_swa = hparams.rope_freq_scale_train; type = LLM_TYPE_UNKNOWN; return; } // optional interleaved sliding-window attention with per-layer pattern array. // DFlash has a single rope, so the SWA rope == main rope. if (ml.get_key(LLM_KV_ATTENTION_SLIDING_WINDOW, hparams.n_swa, false) && hparams.n_swa > 0) { hparams.swa_type = LLAMA_SWA_TYPE_STANDARD; ml.get_arr(LLM_KV_ATTENTION_SLIDING_WINDOW_PATTERN, hparams.is_swa_impl); hparams.rope_freq_base_train_swa = hparams.rope_freq_base_train; hparams.rope_freq_scale_train_swa = hparams.rope_freq_scale_train; } type = LLM_TYPE_UNKNOWN; } void llama_model_dflash::load_arch_tensors(llama_model_loader &) { LLAMA_LOAD_LOCALS; const int64_t n_embd_inp = hparams.n_embd_inp_enc(); tok_embd = create_tensor(tn(LLM_TENSOR_TOKEN_EMBD, "weight"), { n_embd, n_vocab }, TENSOR_NOT_REQUIRED); // reduced draft vocab (optional): d2t maps draft rows to target token ids int64_t n_vocab_draft = n_vocab; const struct ggml_tensor * d2t_meta = ml->get_tensor_meta("d2t"); if (d2t_meta) { n_vocab_draft = d2t_meta->ne[0]; d2t = create_tensor(tn(LLM_TENSOR_D2T), { n_vocab_draft }, 0); LLAMA_LOG_INFO("%s: DFlash using d2t mapping (draft_vocab_size = %lld)\n", __func__, (long long) n_vocab_draft); } // DSpark = DFlash + a semi-autoregressive Markov head and Confidence head // // TODO: only Qwen3-style backbones are supported for now; other backbones (e.g. Gemma4) // need their own conversion path and graph tweaks const struct ggml_tensor * markov_meta = ml->get_tensor_meta("markov_w1.weight"); if (markov_meta) { const int64_t dspark_markov_rank = markov_meta->ne[0]; dspark_markov_w1 = create_tensor(tn(LLM_TENSOR_DSPARK_MARKOV_W1, "weight"), { dspark_markov_rank, n_vocab }, 0); dspark_markov_w2 = create_tensor(tn(LLM_TENSOR_DSPARK_MARKOV_W2, "weight"), { dspark_markov_rank, n_vocab_draft }, 0); dspark_markov_w2_s = create_tensor(tn(LLM_TENSOR_DSPARK_MARKOV_W2, "scale"), { 1 }, TENSOR_NOT_REQUIRED); dspark_conf_proj = create_tensor(tn(LLM_TENSOR_DSPARK_CONF_PROJ, "weight"), { n_embd + dspark_markov_rank, 1 }, TENSOR_NOT_REQUIRED); dspark_conf_proj_b = create_tensor(tn(LLM_TENSOR_DSPARK_CONF_PROJ, "bias"), { 1 }, TENSOR_NOT_REQUIRED); LLAMA_LOG_INFO("%s: DFlash with DSpark markov head (rank = %lld)\n", __func__, (long long) dspark_markov_rank); } const struct ggml_tensor * selector_meta = ml->get_tensor_meta("selector_hidden.weight"); if (selector_meta) { const int64_t rank = hparams.dflash_selector_rank; if (rank <= 0 || hparams.dflash_block_size <= 0 || hparams.dflash_selector_top_k <= 0 || hparams.dflash_conv_kernel_size <= 0 || hparams.dflash_conv_group_size <= 0) { throw std::runtime_error("DFlash2 model is missing conv/selector metadata"); } if (n_embd % hparams.dflash_conv_group_size != 0) { throw std::runtime_error("DFlash2 hidden size must be divisible by conv_group_size"); } if (n_embd < hparams.dflash_selector_top_k * (hparams.dflash_selector_top_k + 1)) { throw std::runtime_error("DFlash2 hidden size is too small for the selector lattice"); } dflash_selector_prev = create_tensor(tn(LLM_TENSOR_DFLASH_SELECTOR_PREV, "weight"), { rank, n_vocab }, 0); dflash_selector_next = create_tensor(tn(LLM_TENSOR_DFLASH_SELECTOR_NEXT, "weight"), { rank, n_vocab }, 0); dflash_selector_hidden = create_tensor(tn(LLM_TENSOR_DFLASH_SELECTOR_HIDDEN, "weight"), { n_embd, rank }, 0); LLAMA_LOG_INFO("%s: DFlash2 conv kernel = %u, group = %u, selector rank = %u, top-k = %u\n", __func__, hparams.dflash_conv_kernel_size, hparams.dflash_conv_group_size, hparams.dflash_selector_rank, hparams.dflash_selector_top_k); } fc = create_tensor(tn(LLM_TENSOR_FC, "weight"), { n_embd_inp, n_embd }, 0); fc_s = create_tensor(tn(LLM_TENSOR_FC, "scale"), { 1 }, TENSOR_NOT_REQUIRED); output_norm_enc = create_tensor(tn(LLM_TENSOR_ENC_OUTPUT_NORM, "weight"), { n_embd }, 0); // encoder hidden_norm (after fc) output_norm = create_tensor(tn(LLM_TENSOR_OUTPUT_NORM, "weight"), { n_embd }, 0); // decoder final norm // optional: reduced-vocab drafts ship their own lm head, full-vocab drafts can share the target's via ctx_other // a draft with its own embeddings + head references no target tensors and can run on devices the target does not use (e.g. -devd with a tensor-split target) output = create_tensor(tn(LLM_TENSOR_OUTPUT, "weight"), { n_embd, n_vocab_draft }, TENSOR_NOT_REQUIRED); if (hparams.dsv4_hc_mult > 0) { const int64_t q_lora_rank = hparams.n_lora_q; const int64_t n_ff_exp = hparams.n_ff_exp; const int64_t n_expert_shared = hparams.n_expert_shared; const int64_t n_embd_head = hparams.n_embd_head_k(); const int64_t o_groups = hparams.dsv4_o_group_count; const int64_t o_lora_rank = hparams.dsv4_o_lora_rank; const int64_t hc_mult = hparams.dsv4_hc_mult; const int64_t hc_dim = hc_mult * n_embd; const int64_t hc_mix_dim = (2 + hc_mult) * hc_mult; hc_head_fn = create_tensor(tn(LLM_TENSOR_HC_HEAD_FN, "weight"), {hc_dim, hc_mult}, 0); hc_head_base = create_tensor(tn(LLM_TENSOR_HC_HEAD_BASE, "weight"), {hc_mult}, 0); hc_head_scale = create_tensor(tn(LLM_TENSOR_HC_HEAD_SCALE, "weight"), {1}, 0); for (int i = 0; i < n_layer; ++i) { auto & layer = layers[i]; layer.attn_norm = create_tensor(tn(LLM_TENSOR_ATTN_NORM, "weight", i), {n_embd}, 0); layer.attn_sinks = create_tensor(tn(LLM_TENSOR_ATTN_SINKS, "weight", i), {n_head}, 0); layer.wq_a = create_tensor(tn(LLM_TENSOR_ATTN_Q_A, "weight", i), {n_embd, q_lora_rank}, 0); layer.attn_q_a_norm = create_tensor(tn(LLM_TENSOR_ATTN_Q_A_NORM, "weight", i), {q_lora_rank}, 0); layer.wq_b = create_tensor(tn(LLM_TENSOR_ATTN_Q_B, "weight", i), {q_lora_rank, n_head * n_embd_head}, 0); layer.wkv = create_tensor(tn(LLM_TENSOR_ATTN_KV, "weight", i), {n_embd, n_embd_head}, 0); layer.attn_kv_norm = create_tensor(tn(LLM_TENSOR_ATTN_KV_NORM, "weight", i), {n_embd_head}, 0); layer.wo_a = create_tensor(tn(LLM_TENSOR_ATTN_OUT_A, "weight", i), {n_head * n_embd_head / o_groups, o_lora_rank, o_groups}, TENSOR_ALLOW_RESHAPE); layer.wo_b = create_tensor(tn(LLM_TENSOR_ATTN_OUT_B, "weight", i), {o_groups * o_lora_rank, n_embd}, 0); layer.hc_attn_fn = create_tensor(tn(LLM_TENSOR_HC_ATTN_FN, "weight", i), {hc_dim, hc_mix_dim}, 0); layer.hc_attn_base = create_tensor(tn(LLM_TENSOR_HC_ATTN_BASE, "weight", i), {hc_mix_dim}, 0); layer.hc_attn_scale = create_tensor(tn(LLM_TENSOR_HC_ATTN_SCALE, "weight", i), {3}, 0); layer.hc_ffn_fn = create_tensor(tn(LLM_TENSOR_HC_FFN_FN, "weight", i), {hc_dim, hc_mix_dim}, 0); layer.hc_ffn_base = create_tensor(tn(LLM_TENSOR_HC_FFN_BASE, "weight", i), {hc_mix_dim}, 0); layer.hc_ffn_scale = create_tensor(tn(LLM_TENSOR_HC_FFN_SCALE, "weight", i), {3}, 0); layer.ffn_gate_inp = create_tensor(tn(LLM_TENSOR_FFN_GATE_INP, "weight", i), {n_embd, n_expert}, 0); layer.ffn_exp_probs_b = create_tensor(tn(LLM_TENSOR_FFN_EXP_PROBS_B, "bias", i), {n_expert}, 0); layer.ffn_norm = create_tensor(tn(LLM_TENSOR_FFN_NORM, "weight", i), {n_embd}, 0); layer.ffn_gate_exps = create_tensor(tn(LLM_TENSOR_FFN_GATE_EXPS, "weight", i), {n_embd, n_ff_exp, n_expert}, 0); layer.ffn_down_exps = create_tensor(tn(LLM_TENSOR_FFN_DOWN_EXPS, "weight", i), {n_ff_exp, n_embd, n_expert}, 0); layer.ffn_up_exps = create_tensor(tn(LLM_TENSOR_FFN_UP_EXPS, "weight", i), {n_embd, n_ff_exp, n_expert}, 0); layer.ffn_gate_shexp = create_tensor(tn(LLM_TENSOR_FFN_GATE_SHEXP, "weight", i), {n_embd, n_ff_exp * n_expert_shared}, 0); layer.ffn_down_shexp = create_tensor(tn(LLM_TENSOR_FFN_DOWN_SHEXP, "weight", i), {n_ff_exp * n_expert_shared, n_embd }, 0); layer.ffn_up_shexp = create_tensor(tn(LLM_TENSOR_FFN_UP_SHEXP, "weight", i), {n_embd, n_ff_exp * n_expert_shared}, 0); } return; } for (int i = 0; i < n_layer; ++i) { auto & layer = layers[i]; layer.attn_norm = create_tensor(tn(LLM_TENSOR_ATTN_NORM, "weight", i), { n_embd }, 0); layer.wq = create_tensor(tn(LLM_TENSOR_ATTN_Q, "weight", i), { n_embd, n_embd_head_k * n_head }, 0); layer.wk = create_tensor(tn(LLM_TENSOR_ATTN_K, "weight", i), { n_embd, n_embd_k_gqa }, 0); layer.wv = create_tensor(tn(LLM_TENSOR_ATTN_V, "weight", i), { n_embd, n_embd_v_gqa }, 0); layer.wo = create_tensor(tn(LLM_TENSOR_ATTN_OUT, "weight", i), { n_embd_head_k * n_head, n_embd }, 0); layer.attn_q_norm = create_tensor(tn(LLM_TENSOR_ATTN_Q_NORM, "weight", i), { n_embd_head_k }, 0); layer.attn_k_norm = create_tensor(tn(LLM_TENSOR_ATTN_K_NORM, "weight", i), { n_embd_head_k }, 0); // optional per-head attention sinks (e.g. Nemotron DSpark) layer.attn_sinks = create_tensor(tn(LLM_TENSOR_ATTN_SINKS, "weight", i), { n_head }, TENSOR_NOT_REQUIRED); layer.ffn_norm = create_tensor(tn(LLM_TENSOR_FFN_NORM, "weight", i), { n_embd }, 0); layer.ffn_gate = create_tensor(tn(LLM_TENSOR_FFN_GATE, "weight", i), { n_embd, n_ff }, 0); layer.ffn_down = create_tensor(tn(LLM_TENSOR_FFN_DOWN, "weight", i), { n_ff, n_embd }, 0); layer.ffn_up = create_tensor(tn(LLM_TENSOR_FFN_UP, "weight", i), { n_embd, n_ff }, 0); if (selector_meta) { const int64_t kernel = hparams.dflash_conv_kernel_size; const int64_t groups = n_embd / hparams.dflash_conv_group_size; const int64_t projected = 2 * kernel * groups; layer.dflash_attn_conv_base = create_tensor(tn(LLM_TENSOR_DFLASH_ATTN_CONV_BASE, i), { n_embd, kernel, 2 }, 0); layer.dflash_attn_conv_proj = create_tensor(tn(LLM_TENSOR_DFLASH_ATTN_CONV_PROJ, "weight", i), { n_embd, projected }, 0); layer.dflash_ffn_conv_base = create_tensor(tn(LLM_TENSOR_DFLASH_FFN_CONV_BASE, i), { n_embd, kernel, 2 }, 0); layer.dflash_ffn_conv_proj = create_tensor(tn(LLM_TENSOR_DFLASH_FFN_CONV_PROJ, "weight", i), { n_embd, projected }, 0); } } } std::unique_ptr llama_model_dflash::build_arch_graph(const llm_graph_params & params) const { switch (params.gtype) { case LLM_GRAPH_TYPE_ENCODER: return std::make_unique>(*this, params); case LLM_GRAPH_TYPE_DEFAULT: case LLM_GRAPH_TYPE_DECODER: if (hparams.dsv4_hc_mult > 0) { return std::make_unique(*this, params); } return std::make_unique>(*this, params); default: GGML_ABORT("invalid graph type"); }; } template <> ggml_tensor * llama_model_dflash::graph::build_inp_embd_enc() const { auto inp_target = std::make_unique(hparams.n_embd_inp_enc()); inp_target->embd = ggml_new_tensor_2d(ctx0, GGML_TYPE_F32, hparams.n_embd_inp_enc(), n_tokens); ggml_set_input(inp_target->embd); ggml_tensor * cur = inp_target->embd; cb(cur, "inp_embd", -1); res->add_input(std::move(inp_target)); return cur; } // DFlash Encoder: processes target model features through feature fusion layer template <> llama_model_dflash::graph::graph(const llama_model & model, const llm_graph_params & params) : llm_graph_context(params) { ggml_tensor * cur = build_inp_embd_enc(); cur = build_lora_mm(model.fc, cur, model.fc_s); cb(cur, "fc_out", -1); cur = build_norm(cur, model.output_norm_enc, NULL, LLM_NORM_RMS, -1); cb(cur, "enc_norm_out", -1); ggml_set_output(cur); res->t_h_nextn = cur; ggml_build_forward_expand(gf, cur); } // DSpark (DFlash + Markov & Confidence head): Markov bias on the draft logits, chained per block position static void build_dspark_markov_head(llm_graph_context & g, const llama_model & model, ggml_tensor * tokens) { ggml_context * ctx0 = g.ctx0; auto & res = g.res; ggml_tensor * w1 = model.dspark_markov_w1; ggml_tensor * w2 = model.dspark_markov_w2; GGML_ASSERT(w1 && w2 && "DSpark markov weights not loaded"); // confidence head is optional const bool has_conf = model.dspark_conf_proj != nullptr; ggml_tensor * base = res->t_logits; // [n_vocab, n_tokens] const int64_t n_vocab = base->ne[0]; const int64_t n_tok = base->ne[1]; const auto it = model.gguf_kv.find("dflash.block_size"); GGML_ASSERT(it != model.gguf_kv.end() && "DSpark draft requires 'dflash.block_size' in GGUF metadata"); const int64_t block_size = std::stoi(it->second); GGML_ASSERT(block_size > 0); // bonus anchor (SpecForge exports): slot 0 is a bonus token, not a prediction slot const auto it_anchor = model.gguf_kv.find("dflash.sample_from_anchor"); const bool sample_from_anchor = it_anchor == model.gguf_kv.end() || it_anchor->second == "true"; const int64_t i_draft_beg = sample_from_anchor ? 0 : 1; const int64_t n_blocks = g.ubatch.n_seqs_unq; GGML_ASSERT(n_blocks > 0 && n_tok % n_blocks == 0 && "DSpark markov head requires equal-size blocks"); // runtime tokens per block in this ubatch (anchor + drafted positions), bounded by training block_size const int64_t block_drafts = n_tok / n_blocks; if (block_drafts > block_size) { return; } // anchor (committed last) token of every block: token 0 of each block, i.e. a strided view const size_t token_stride = (size_t) block_drafts * tokens->nb[0]; const size_t base_stride = (size_t) block_drafts * base->nb[1]; ggml_tensor * prev = ggml_view_2d(ctx0, tokens, 1, n_blocks, token_stride, 0); prev = ggml_cont_1d(ctx0, prev, n_blocks); ggml_tensor * cat = nullptr; ggml_tensor * cat_conf = nullptr; if (!sample_from_anchor) { // bonus anchor slot: pass the logits through unbiased, pad the (unread) confidence column cat = ggml_cont(ctx0, ggml_view_2d(ctx0, base, n_vocab, n_blocks, base_stride, 0)); if (has_conf) { cat_conf = ggml_sigmoid(ctx0, ggml_cont(ctx0, ggml_view_2d(ctx0, base, 1, n_blocks, base_stride, 0))); } } // TODO: the in-graph chain is greedy (argmax); sampling params affect only the final // token pick, not the Markov conditioning path for (int64_t i = i_draft_beg; i < block_drafts; ++i) { ggml_tensor * w1_prev = ggml_get_rows(ctx0, w1, prev); // [R, n_blocks] ggml_tensor * bias = g.build_lora_mm(w2, w1_prev, model.dspark_markov_w2_s); // [n_vocab_draft, n_blocks] if (model.d2t) { // reduced draft vocab: scatter the bias to the target rows (base is -inf on the others) const int64_t n_draft_vocab = bias->ne[0]; ggml_tensor * full = ggml_fill(ctx0, ggml_new_tensor_3d(ctx0, GGML_TYPE_F32, 1, n_vocab, n_blocks), 0.0f); bias = ggml_set_rows(ctx0, full, ggml_reshape_3d(ctx0, bias, 1, n_draft_vocab, n_blocks), ggml_reshape_3d(ctx0, model.d2t, n_draft_vocab, 1, 1)); bias = ggml_reshape_2d(ctx0, bias, n_vocab, n_blocks); } // position i of every block: strided view [n_vocab, n_blocks] ggml_tensor * base_i = ggml_view_2d(ctx0, base, n_vocab, n_blocks, base_stride, i*base->nb[1]); ggml_tensor * col = ggml_add(ctx0, base_i, bias); cat = cat ? ggml_concat(ctx0, cat, col, 1) : col; if (has_conf) { // confidence head input: predicts per-position acceptance ggml_tensor * conf_inp = res->t_embd; // [n_embd, n_tok] // conf(i) = sigmoid(conf_proj . [conf_inp(i); markov_w1[prev(i)]] + b) -- [1, n_blocks] ggml_tensor * conf_inp_i = ggml_view_2d(ctx0, conf_inp, conf_inp->ne[0], n_blocks, (size_t) block_drafts * conf_inp->nb[1], i*conf_inp->nb[1]); ggml_tensor * feat = ggml_concat(ctx0, ggml_cont(ctx0, conf_inp_i), w1_prev, 0); ggml_tensor * conf = ggml_mul_mat(ctx0, model.dspark_conf_proj, feat); if (model.dspark_conf_proj_b) { conf = ggml_add(ctx0, conf, model.dspark_conf_proj_b); } conf = ggml_sigmoid(ctx0, conf); cat_conf = cat_conf ? ggml_concat(ctx0, cat_conf, conf, 1) : conf; } if (i + 1 < block_drafts) { prev = ggml_argmax(ctx0, col); } } // cat is position-major; restore ubatch block-major order ggml_tensor * out = ggml_reshape_3d(ctx0, cat, n_vocab, n_blocks, block_drafts); out = ggml_cont(ctx0, ggml_permute(ctx0, out, 0, 2, 1, 3)); // [n_vocab, block_drafts, n_blocks] out = ggml_reshape_2d(ctx0, out, n_vocab, n_tok); if (has_conf) { ggml_tensor * conf = ggml_reshape_3d(ctx0, cat_conf, 1, n_blocks, block_drafts); conf = ggml_cont(ctx0, ggml_permute(ctx0, conf, 0, 2, 1, 3)); conf = ggml_reshape_2d(ctx0, conf, 1, n_tok); // note: broadcast the [1, n_tok] confidences to n_embd-wide rows to be able to reuse `llama_get_embeddings_nextn` conf = ggml_repeat(ctx0, conf, res->t_embd); res->t_h_nextn = conf; ggml_build_forward_expand(g.gf, conf); } res->t_logits = out; ggml_build_forward_expand(g.gf, out); } static ggml_tensor * build_dflash2_conv( llm_graph_context & g, ggml_tensor * hidden, ggml_tensor * dynamic, ggml_tensor * base, int side) { const auto & hparams = g.hparams; const int64_t hidden_size = hidden->ne[0]; const int64_t n_tokens = hidden->ne[1]; const int64_t n_blocks = g.ubatch.n_seqs_unq; const int64_t kernel_size = hparams.dflash_conv_kernel_size; const int64_t group_size = hparams.dflash_conv_group_size; const int64_t n_groups = hidden_size / group_size; GGML_ASSERT(n_blocks > 0 && n_tokens % n_blocks == 0); GGML_ASSERT(dynamic && base && side >= 0 && side < 2); const int64_t block_size = n_tokens / n_blocks; ggml_context * ctx0 = g.ctx0; // ggml_cont copies even when the tensor is already contiguous if (!ggml_is_contiguous(hidden) || hidden->ne[1] != n_tokens) { hidden = ggml_cont_2d(ctx0, hidden, hidden_size, n_tokens); } if (!ggml_is_contiguous(dynamic) || dynamic->ne[1] != n_tokens) { dynamic = ggml_cont_2d(ctx0, dynamic, dynamic->ne[0], n_tokens); } ggml_tensor * blocks = ggml_reshape_3d(ctx0, hidden, hidden_size, block_size, n_blocks); ggml_tensor * coeffs = ggml_reshape_4d(ctx0, dynamic, n_groups, kernel_size, 2, n_tokens); ggml_tensor * coeffs_side = ggml_view_3d(ctx0, coeffs, n_groups, kernel_size, n_tokens, coeffs->nb[1], coeffs->nb[3], side * coeffs->nb[2]); ggml_tensor * coeff_all = ggml_cont(ctx0, coeffs_side); coeff_all = ggml_reshape_4d(ctx0, coeff_all, 1, n_groups, kernel_size, n_tokens); coeff_all = ggml_repeat_4d(ctx0, coeff_all, group_size, n_groups, kernel_size, n_tokens); ggml_tensor * base_side = ggml_reshape_4d(ctx0, ggml_view_1d(ctx0, base, hidden_size * kernel_size, side * base->nb[2]), group_size, n_groups, kernel_size, 1); ggml_tensor * weight_all = ggml_add(ctx0, coeff_all, base_side); ggml_tensor * result = nullptr; for (int64_t tap = 0; tap < kernel_size; ++tap) { ggml_tensor * values = blocks; if (tap > 0) { ggml_tensor * zeros = ggml_fill(ctx0, ggml_new_tensor_3d(ctx0, hidden->type, hidden_size, std::min(tap, block_size), n_blocks), 0.0f); if (tap < block_size) { ggml_tensor * previous = ggml_view_3d(ctx0, blocks, hidden_size, block_size - tap, n_blocks, blocks->nb[1], blocks->nb[2], 0); values = ggml_concat(ctx0, zeros, previous, 1); } else { values = zeros; } } values = ggml_reshape_2d(ctx0, values, hidden_size, n_tokens); ggml_tensor * weight = ggml_reshape_2d(ctx0, ggml_cont(ctx0, ggml_view_4d(ctx0, weight_all, group_size, n_groups, 1, n_tokens, weight_all->nb[1], weight_all->nb[2], weight_all->nb[3], tap * weight_all->nb[2])), hidden_size, n_tokens); ggml_tensor * term = ggml_mul(ctx0, weight, values); result = result ? ggml_add(ctx0, result, term) : term; } return result; } // DFlash2 selector: top-k candidates per block position plus the pairwise // transition scores, packed into the nextn output slot for the CPU-side walk. static void build_dflash2_selector(llm_graph_context & g, const llama_model & model, ggml_tensor * tokens) { ggml_context * ctx0 = g.ctx0; auto & res = g.res; const auto & hparams = g.hparams; const int64_t n_tokens = g.n_tokens; const int64_t n_embd = g.n_embd; const int64_t top_k = hparams.dflash_selector_top_k; const int64_t rank = hparams.dflash_selector_rank; const int64_t n_blocks = g.ubatch.n_seqs_unq; GGML_ASSERT(n_blocks > 0 && n_tokens % n_blocks == 0); GGML_ASSERT(res->t_logits->ne[1] == n_tokens); if (!tokens) { return; } const int64_t tokens_per_block = n_tokens / n_blocks; const int64_t block_size = std::min(tokens_per_block, hparams.dflash_block_size); const int64_t row_used = top_k + top_k * top_k; ggml_tensor * candidates = ggml_top_k(ctx0, res->t_logits, top_k); ggml_tensor * logits_rows = ggml_reshape_3d(ctx0, res->t_logits, 1, res->t_logits->ne[0], n_tokens); ggml_tensor * unary = ggml_reshape_2d(ctx0, ggml_get_rows(ctx0, logits_rows, candidates), top_k, n_tokens); ggml_tensor * gate = g.build_lora_mm(model.dflash_selector_hidden, res->t_embd); // Everything below indexes [.., tokens_per_block, n_blocks]: the block // position varies fastest, sequences are the outer dimension. ggml_tensor * cand_blk = ggml_reshape_3d(ctx0, candidates, top_k, tokens_per_block, n_blocks); ggml_tensor * unary_blk = ggml_reshape_3d(ctx0, unary, top_k, tokens_per_block, n_blocks); ggml_tensor * gate_blk = ggml_reshape_3d(ctx0, gate, rank, tokens_per_block, n_blocks); // a position's score reads only the candidate sets at pos-1 and pos, so a run // of positions has no internal dependency and scores in one batched matmul auto score_run = [&](int64_t beg_pos, int64_t n_pos, ggml_tensor * pred_ids) { ggml_tensor * cand_run = ggml_cont(ctx0, ggml_view_3d(ctx0, cand_blk, top_k, n_pos, n_blocks, cand_blk->nb[1], cand_blk->nb[2], beg_pos * cand_blk->nb[1])); ggml_tensor * unary_run = ggml_cont(ctx0, ggml_view_3d(ctx0, unary_blk, top_k, n_pos, n_blocks, unary_blk->nb[1], unary_blk->nb[2], beg_pos * unary_blk->nb[1])); ggml_tensor * gate_run = ggml_cont(ctx0, ggml_view_3d(ctx0, gate_blk, rank, n_pos, n_blocks, gate_blk->nb[1], gate_blk->nb[2], beg_pos * gate_blk->nb[1])); const int64_t n_pred = pred_ids->ne[0] / (n_pos * n_blocks); ggml_tensor * successor = ggml_reshape_4d(ctx0, ggml_get_rows(ctx0, model.dflash_selector_next, ggml_reshape_1d(ctx0, cand_run, top_k * n_pos * n_blocks)), rank, top_k, n_pos, n_blocks); ggml_tensor * predecessor = ggml_reshape_4d(ctx0, ggml_get_rows(ctx0, model.dflash_selector_prev, pred_ids), rank, n_pred, n_pos, n_blocks); ggml_tensor * gate_bcast = ggml_reshape_4d(ctx0, gate_run, rank, 1, n_pos, n_blocks); ggml_tensor * cond = ggml_mul(ctx0, predecessor, ggml_repeat(ctx0, gate_bcast, predecessor)); ggml_tensor * score = ggml_mul_mat(ctx0, successor, cond); if (n_pred == 1) { score = ggml_repeat_4d(ctx0, score, top_k, top_k, n_pos, n_blocks); } ggml_tensor * unary_bcast = ggml_reshape_4d(ctx0, unary_run, top_k, 1, n_pos, n_blocks); score = ggml_add(ctx0, score, ggml_repeat(ctx0, unary_bcast, score)); ggml_tensor * row = ggml_concat(ctx0, ggml_cast(ctx0, cand_run, GGML_TYPE_F32), ggml_reshape_3d(ctx0, score, top_k * top_k, n_pos, n_blocks), 0); return ggml_pad(ctx0, row, n_embd - row_used, 0, 0, 0); }; ggml_tensor * packed = ggml_fill(ctx0, ggml_new_tensor_3d(ctx0, GGML_TYPE_F32, n_embd, 1, n_blocks), 0.0f); if (block_size > 1) { // Position 1 alone: its predecessor is the anchor token, one id per // sequence rather than a candidate set. ggml_tensor * anchor_ids = ggml_cont_1d(ctx0, ggml_view_2d(ctx0, tokens, 1, n_blocks, tokens_per_block * tokens->nb[0], 0), n_blocks); packed = ggml_concat(ctx0, packed, score_run(1, 1, anchor_ids), 1); } if (block_size > 2) { ggml_tensor * prev_ids = ggml_reshape_1d(ctx0, ggml_cont(ctx0, ggml_view_3d(ctx0, cand_blk, top_k, block_size - 2, n_blocks, cand_blk->nb[1], cand_blk->nb[2], cand_blk->nb[1])), top_k * (block_size - 2) * n_blocks); packed = ggml_concat(ctx0, packed, score_run(2, block_size - 2, prev_ids), 1); } packed = ggml_reshape_2d(ctx0, packed, n_embd, block_size * n_blocks); g.cb(packed, "dflash2_lattice", -1); res->t_h_nextn = packed; ggml_build_forward_expand(g.gf, packed); } // DFlash decoder, dual-mode by batch type: // * embd batch -> fused target features: project + inject K/V into the cache. // * token batch -> noise-block diffusion: attend over [committed, MASK...] to generate draft tokens template <> llama_model_dflash::graph::graph(const llama_model & model, const llm_graph_params & params) : llm_graph_context(params) { const int64_t n_embd_head = hparams.n_embd_head_v(); GGML_ASSERT(n_embd_head == hparams.n_embd_head_k()); ggml_tensor * inp_pos = build_inp_pos(); // optional iSWA: pick the matching attention input const bool use_iswa = hparams.swa_type != LLAMA_SWA_TYPE_NONE; llm_graph_input_attn_kv * inp_attn = nullptr; llm_graph_input_attn_kv_iswa * inp_attn_iswa = nullptr; if (use_iswa) { inp_attn_iswa = build_attn_inp_kv_iswa(); } else { inp_attn = build_attn_inp_kv(); } const float kq_scale = 1.0f/sqrtf(float(n_embd_head)); // drafts for M-RoPE targets use degenerate sections (temporal dim only) int sections[4]; std::copy(std::begin(hparams.rope_sections), std::begin(hparams.rope_sections) + 4, sections); auto build_rope = [&](ggml_tensor * cur, ggml_tensor * pos) { return rope_type == GGML_ROPE_TYPE_MROPE ? ggml_rope_multi(ctx0, cur, pos, nullptr, n_rot, sections, rope_type, n_ctx_orig, freq_base, freq_scale, ext_factor, attn_factor, beta_fast, beta_slow) : ggml_rope_ext(ctx0, cur, pos, nullptr, n_rot, rope_type, n_ctx_orig, freq_base, freq_scale, ext_factor, attn_factor, beta_fast, beta_slow); }; // KV cache injection if (ubatch.embd) { auto inp = std::make_unique(n_embd); inp->embd = ggml_new_tensor_2d(ctx0, GGML_TYPE_F32, n_embd, n_tokens); ggml_set_input(inp->embd); ggml_tensor * inp_g = inp->embd; cb(inp_g, "inp_g_embeddings", -1); res->add_input(std::move(inp)); for (int il = 0; il < n_layer; ++il) { const auto & layer = model.layers[il]; ggml_tensor * Kcur = build_lora_mm(layer.wk, inp_g, layer.wk_s); ggml_tensor * Vcur = build_lora_mm(layer.wv, inp_g, layer.wv_s); Kcur = ggml_reshape_3d(ctx0, Kcur, n_embd_head, n_head_kv, n_tokens); Vcur = ggml_reshape_3d(ctx0, Vcur, n_embd_head, n_head_kv, n_tokens); Kcur = build_norm(Kcur, layer.attn_k_norm, NULL, LLM_NORM_RMS, il); Kcur = build_rope(Kcur, inp_pos); cb(Kcur, "Kcur_injected", il); cb(Vcur, "Vcur_injected", il); if (use_iswa) { // route each layer's K/V to its sub-cache: SWA layers -> sliding cache, full -> dense const bool is_swa = hparams.is_swa(il); const auto * kv = is_swa ? inp_attn_iswa->mctx->get_swa() : inp_attn_iswa->mctx->get_base(); ggml_tensor * k_idxs = is_swa ? inp_attn_iswa->get_k_idxs_swa() : inp_attn_iswa->get_k_idxs(); ggml_tensor * v_idxs = is_swa ? inp_attn_iswa->get_v_idxs_swa() : inp_attn_iswa->get_v_idxs(); // rotate K/V into the cache's rotated space ggml_tensor * k_rot = is_swa ? inp_attn_iswa->self_k_rot_swa : inp_attn_iswa->self_k_rot; ggml_tensor * v_rot = is_swa ? inp_attn_iswa->self_v_rot_swa : inp_attn_iswa->self_v_rot; if (k_rot) { Kcur = llama_mul_mat_hadamard(ctx0, Kcur, k_rot); } if (v_rot) { Vcur = llama_mul_mat_hadamard(ctx0, Vcur, v_rot); } ggml_build_forward_expand(gf, kv->cpy_k(ctx0, Kcur, k_idxs, il)); ggml_build_forward_expand(gf, kv->cpy_v(ctx0, Vcur, v_idxs, il)); } else { // rotate K/V into the cache's rotated space if (inp_attn->self_k_rot) { Kcur = llama_mul_mat_hadamard(ctx0, Kcur, inp_attn->self_k_rot); } if (inp_attn->self_v_rot) { Vcur = llama_mul_mat_hadamard(ctx0, Vcur, inp_attn->self_v_rot); } ggml_build_forward_expand(gf, inp_attn->mctx->cpy_k(ctx0, Kcur, inp_attn->get_k_idxs(), il)); ggml_build_forward_expand(gf, inp_attn->mctx->cpy_v(ctx0, Vcur, inp_attn->get_v_idxs(), il)); } } res->t_embd = inp_g; ggml_build_forward_expand(gf, inp_g); return; } // tok_embd from the target model (shared via ctx_other) auto * tok_embd = model.tok_embd; if (tok_embd == nullptr) { GGML_ASSERT(cparams.ctx_other != nullptr); const auto * model_other = llama_get_model(cparams.ctx_other); GGML_ASSERT(model_other->tok_embd != nullptr && "DFlash decoder requires the target model's token embeddings"); tok_embd = model_other->tok_embd; } auto inp = std::make_unique(n_embd); inp->tokens = ggml_new_tensor_1d(ctx0, GGML_TYPE_I32, n_tokens); ggml_set_input(inp->tokens); res->t_inp_tokens = inp->tokens; ggml_tensor * inp_tokens = inp->tokens; ggml_tensor * inpL = ggml_get_rows(ctx0, tok_embd, inp->tokens); cb(inpL, "inp_noise_embd", -1); res->add_input(std::move(inp)); for (int il = 0; il < n_layer; ++il) { const auto & layer = model.layers[il]; ggml_tensor * noise_norm = build_norm(inpL, layer.attn_norm, NULL, LLM_NORM_RMS, il); cb(noise_norm, "noise_norm", il); ggml_tensor * attn_dynamic = nullptr; if (layer.dflash_attn_conv_proj) { attn_dynamic = build_lora_mm(layer.dflash_attn_conv_proj, noise_norm); noise_norm = build_dflash2_conv(*this, noise_norm, attn_dynamic, layer.dflash_attn_conv_base, 0); cb(noise_norm, "attn_conv_in", il); } ggml_tensor * Qcur = build_lora_mm(layer.wq, noise_norm, layer.wq_s); ggml_tensor * Kcur = build_lora_mm(layer.wk, noise_norm, layer.wk_s); ggml_tensor * Vcur = build_lora_mm(layer.wv, noise_norm, layer.wv_s); Qcur = ggml_reshape_3d(ctx0, Qcur, n_embd_head, n_head, n_tokens); Kcur = ggml_reshape_3d(ctx0, Kcur, n_embd_head, n_head_kv, n_tokens); Vcur = ggml_reshape_3d(ctx0, Vcur, n_embd_head, n_head_kv, n_tokens); Qcur = build_norm(Qcur, layer.attn_q_norm, NULL, LLM_NORM_RMS, il); Kcur = build_norm(Kcur, layer.attn_k_norm, NULL, LLM_NORM_RMS, il); Qcur = build_rope(Qcur, inp_pos); Kcur = build_rope(Kcur, inp_pos); cb(Qcur, "Qcur", il); cb(Kcur, "Kcur", il); cb(Vcur, "Vcur", il); // cache-aware, non-causal attention ggml_tensor * cur = use_iswa ? build_attn(inp_attn_iswa, layer.wo, NULL, layer.wo_s, Qcur, Kcur, Vcur, nullptr, layer.attn_sinks, nullptr, kq_scale, il) : build_attn(inp_attn, layer.wo, NULL, layer.wo_s, Qcur, Kcur, Vcur, nullptr, layer.attn_sinks, nullptr, kq_scale, il); if (attn_dynamic) { cur = build_dflash2_conv(*this, cur, attn_dynamic, layer.dflash_attn_conv_base, 1); cb(cur, "attn_conv_out", il); } ggml_tensor * ffn_inp = ggml_add(ctx0, cur, inpL); cb(ffn_inp, "ffn_inp", il); cur = build_norm(ffn_inp, layer.ffn_norm, NULL, LLM_NORM_RMS, il); cb(cur, "ffn_norm", il); ggml_tensor * ffn_dynamic = nullptr; if (layer.dflash_ffn_conv_proj) { ffn_dynamic = build_lora_mm(layer.dflash_ffn_conv_proj, cur); cur = build_dflash2_conv(*this, cur, ffn_dynamic, layer.dflash_ffn_conv_base, 0); cb(cur, "ffn_conv_in", il); } cur = build_ffn(cur, layer.ffn_up, NULL, layer.ffn_up_s, layer.ffn_gate, NULL, layer.ffn_gate_s, layer.ffn_down, NULL, layer.ffn_down_s, NULL, LLM_FFN_SILU, LLM_FFN_PAR, il); cb(cur, "ffn_out", il); if (ffn_dynamic) { cur = build_dflash2_conv(*this, cur, ffn_dynamic, layer.dflash_ffn_conv_base, 1); cb(cur, "ffn_conv_out", il); } cur = ggml_add(ctx0, cur, ffn_inp); cb(cur, "l_out", il); inpL = cur; } ggml_tensor * cur = build_norm(inpL, model.output_norm, NULL, LLM_NORM_RMS, -1); cb(cur, "result_norm", -1); res->t_embd = cur; // lm_head from the target model (shared via ctx_other) auto * output = model.output; auto * output_s = model.output_s; if (output == nullptr) { GGML_ASSERT(cparams.ctx_other != nullptr); const auto * model_other = llama_get_model(cparams.ctx_other); GGML_ASSERT(model_other->output != nullptr && "DFlash decoder requires the target model's output projection"); output = model_other->output; output_s = model_other->output_s; } cur = build_lora_mm(output, cur, output_s); // DFlash2 feeds these logits to the selector, so they need the target's output // transforms; DFlash1 and DSpark read them through the sampler instead if (model.dflash_selector_hidden) { if (hparams.f_logit_scale != 0.0f) { cur = ggml_scale(ctx0, cur, hparams.f_logit_scale); } if (hparams.f_final_logit_softcapping > 0.0f) { cur = ggml_scale(ctx0, cur, 1.0f / hparams.f_final_logit_softcapping); cur = ggml_tanh(ctx0, cur); cur = ggml_scale(ctx0, cur, hparams.f_final_logit_softcapping); } } // reduced-draft-vocab exports: scatter the draft logits to the target vocabulary via d2t if (model.d2t) { const int64_t n_draft_vocab = cur->ne[0]; const int64_t n_outputs = cur->ne[1]; const int64_t n_vocab = (int64_t) model.vocab.n_tokens(); GGML_ASSERT(model.d2t->type == GGML_TYPE_I64); GGML_ASSERT(model.d2t->ne[0] == n_draft_vocab); ggml_tensor * logits = ggml_fill(ctx0, ggml_new_tensor_3d(ctx0, GGML_TYPE_F32, 1, n_vocab, n_outputs), -INFINITY); cur = ggml_set_rows(ctx0, logits, ggml_reshape_3d(ctx0, cur, 1, n_draft_vocab, n_outputs), ggml_reshape_3d(ctx0, model.d2t, n_draft_vocab, 1, 1)); cur = ggml_reshape_2d(ctx0, cur, n_vocab, n_outputs); } cb(cur, "result_output", -1); res->t_logits = cur; ggml_build_forward_expand(gf, cur); // DSpark: bias the draft logits with the Markov head if (model.dspark_markov_w1) { build_dspark_markov_head(*this, model, inp_tokens); } if (model.dflash_selector_hidden) { build_dflash2_selector(*this, model, inp_tokens); } } // DSV4 DSpark decoder, dual-mode by batch type (see the DFlash decoder above): // * embd batch -> project main_x through each stage's wkv and inject K into the ring cache // * token batch -> noise block through 3 full DSV4 stages (hc + MLA + MoE), markov + confidence heads llama_model_dflash::graph_dsv4::graph_dsv4(const llama_model & model, const llm_graph_params & params) : llama_model_deepseek4::graph(params) { const int64_t n_embd_head = hparams.n_embd_head_k(); const int64_t n_embd_head_rope = hparams.n_rot(); const int64_t n_embd_head_nope = n_embd_head - n_embd_head_rope; ggml_tensor * inp_pos = build_inp_pos(); llm_graph_input_attn_k_iswa * inp_attn = build_attn_inp_k_iswa(); // KV cache injection: fused target features from the encoder if (ubatch.embd) { auto inp = std::make_unique(n_embd); inp->embd = ggml_new_tensor_2d(ctx0, GGML_TYPE_F32, n_embd, n_tokens); ggml_set_input(inp->embd); ggml_tensor * inp_g = inp->embd; cb(inp_g, "inp_g_embeddings", -1); res->add_input(std::move(inp)); for (int il = 0; il < n_layer; ++il) { const auto & layer = model.layers[il]; // main-track KV: kv_norm(wkv(main_x)) with rope on the trailing dims, same // rope parameters as the uncompressed layers in build_attention_impl ggml_tensor * kv = build_lora_mm(layer.wkv, inp_g); kv = build_norm(kv, layer.attn_kv_norm, nullptr, LLM_NORM_RMS, il); kv = ggml_reshape_3d(ctx0, kv, n_embd_head, 1, n_tokens); kv = ggml_rope_ext(ctx0, kv, inp_pos, nullptr, n_embd_head_rope, rope_type, 0, freq_base, 1.0f, 0.0f, 1.0f, 0.0f, 0.0f); kv = ggml_rope_set_offset(kv, n_embd_head_nope); cb(kv, "kv_injected", il); if (inp_attn->self_k_rot_swa) { kv = llama_mul_mat_hadamard(ctx0, kv, inp_attn->self_k_rot_swa); } ggml_build_forward_expand(gf, inp_attn->mctx->get_swa()->cpy_k(ctx0, kv, inp_attn->get_k_idxs_swa(), il)); } res->t_embd = inp_g; ggml_build_forward_expand(gf, inp_g); return; } // tok_embd from the target model (shared via ctx_other) auto * tok_embd = model.tok_embd; if (tok_embd == nullptr) { GGML_ASSERT(cparams.ctx_other != nullptr); const auto * model_other = llama_get_model(cparams.ctx_other); GGML_ASSERT(model_other->tok_embd != nullptr && "DSpark decoder requires the target model's token embeddings"); tok_embd = model_other->tok_embd; } auto inp = std::make_unique(n_embd); inp->tokens = ggml_new_tensor_1d(ctx0, GGML_TYPE_I32, n_tokens); ggml_set_input(inp->tokens); ggml_tensor * inp_tokens = inp->tokens; ggml_tensor * inpL = ggml_get_rows(ctx0, tok_embd, inp->tokens); cb(inpL, "inp_noise_embd", -1); res->add_input(std::move(inp)); const int64_t hc = hparams.dsv4_hc_mult; inpL = ggml_reshape_3d(ctx0, inpL, n_embd, 1, n_tokens); inpL = ggml_repeat_4d(ctx0, inpL, n_embd, hc, n_tokens, 1); cb(inpL, "hc_init", -1); for (int il = 0; il < n_layer; ++il) { const auto & layer = model.layers[il]; ggml_tensor * residual = inpL; ggml_tensor * post = nullptr; ggml_tensor * comb = nullptr; ggml_tensor * cur = build_hc_pre(inpL, layer.hc_attn_fn, layer.hc_attn_scale, layer.hc_attn_base, &post, &comb, il); cb(cur, "hc_attn_pre", il); cur = build_norm(cur, layer.attn_norm, nullptr, LLM_NORM_RMS, il); cb(cur, "attn_norm", il); cur = build_attention(model, inp_attn, cur, inp_pos, il); inpL = build_hc_post(cur, residual, post, comb, il); cb(inpL, "hc_attn_post", il); residual = inpL; cur = build_hc_pre(inpL, layer.hc_ffn_fn, layer.hc_ffn_scale, layer.hc_ffn_base, &post, &comb, il); cb(cur, "hc_ffn_pre", il); cur = build_norm(cur, layer.ffn_norm, nullptr, LLM_NORM_RMS, il); cb(cur, "ffn_norm", il); ggml_tensor * moe_out = build_moe_ffn(cur, layer.ffn_gate_inp, layer.ffn_up_exps, layer.ffn_gate_exps, layer.ffn_down_exps, layer.ffn_exp_probs_b, n_expert, hparams.n_expert_used, LLM_FFN_SILU, hparams.expert_weights_norm, hparams.expert_weights_scale, (llama_expert_gating_func_type) hparams.expert_gating_func, il); cb(moe_out, "ffn_moe_out", il); ggml_tensor * ffn_shexp = build_ffn(cur, layer.ffn_up_shexp, nullptr, nullptr, layer.ffn_gate_shexp, nullptr, nullptr, layer.ffn_down_shexp, nullptr, nullptr, nullptr, LLM_FFN_SILU, LLM_FFN_PAR, il); cb(ffn_shexp, "ffn_shexp", il); cur = ggml_add(ctx0, moe_out, ffn_shexp); cb(cur, "ffn_out", il); inpL = build_hc_post(cur, residual, post, comb, il); cb(inpL, "l_out", il); } ggml_tensor * cur = build_hc_head(inpL, model.hc_head_fn, model.hc_head_scale, model.hc_head_base); cb(cur, "hc_head", -1); // confidence head input: the reference scores the pre-norm collapsed hidden state res->t_embd = cur; cur = build_norm(cur, model.output_norm, nullptr, LLM_NORM_RMS, -1); cb(cur, "result_norm", -1); // lm_head from the target model (shared via ctx_other) auto * output = model.output; auto * output_s = model.output_s; if (output == nullptr) { GGML_ASSERT(cparams.ctx_other != nullptr); const auto * model_other = llama_get_model(cparams.ctx_other); GGML_ASSERT(model_other->output != nullptr && "DSpark decoder requires the target model's output projection"); output = model_other->output; output_s = model_other->output_s; } cur = build_lora_mm(output, cur, output_s); cb(cur, "result_output", -1); res->t_logits = cur; ggml_build_forward_expand(gf, cur); if (model.dspark_markov_w1) { build_dspark_markov_head(*this, model, inp_tokens); } }