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Running on Zero
| ggml_cgraph * clip_graph_hunyuanvl::build() { | |
| const int merge = hparams.n_merge; | |
| const int pw = n_patches_x; | |
| const int ph = n_patches_y; | |
| // position embedding: declared as a graph input, filled on CPU | |
| // by clip_image_batch_encode (see PROJECTOR_TYPE_HUNYUANVL branch there). | |
| ggml_tensor * pos_embd = ggml_new_tensor_2d(ctx0, GGML_TYPE_F32, n_embd, ph * pw); | |
| ggml_set_name(pos_embd, "hunyuanvl_pos_embd"); | |
| ggml_set_input(pos_embd); | |
| ggml_tensor * inp = build_inp(); | |
| ggml_tensor * cur = build_vit(inp, n_patches, NORM_TYPE_NORMAL, hparams.ffn_op, pos_embd, nullptr); | |
| // perceiver projector | |
| cur = build_norm(cur, model.mm_pre_norm_w, nullptr, NORM_TYPE_RMS, eps, -1); | |
| // [C, W*H] -> [W, H, C] for conv2d | |
| cur = ggml_reshape_3d(ctx0, cur, n_embd, pw, ph); | |
| cur = ggml_permute(ctx0, cur, 2, 0, 1, 3); | |
| cur = ggml_cont(ctx0, cur); | |
| // Conv2d(1152->2304, k=2, s=2) + GELU + Conv2d(2304->4608, k=1, s=1) | |
| cur = ggml_conv_2d(ctx0, model.mm_0_w, cur, merge, merge, 0, 0, 1, 1); | |
| if (model.mm_0_b) { | |
| cur = ggml_add(ctx0, cur, ggml_reshape_3d(ctx0, model.mm_0_b, 1, 1, model.mm_0_b->ne[0])); | |
| } | |
| cur = ggml_gelu(ctx0, cur); | |
| cur = ggml_conv_2d(ctx0, model.mm_1_w, cur, 1, 1, 0, 0, 1, 1); | |
| if (model.mm_1_b) { | |
| cur = ggml_add(ctx0, cur, ggml_reshape_3d(ctx0, model.mm_1_b, 1, 1, model.mm_1_b->ne[0])); | |
| } | |
| const int ow = pw / merge; | |
| const int oh = ph / merge; | |
| const int idim = (int)cur->ne[2]; // OC = 4608 | |
| // append newline along W (dim 0) | |
| ggml_tensor * nl = ggml_reshape_4d(ctx0, model.image_newline, 1, 1, idim, 1); | |
| nl = ggml_repeat_4d(ctx0, nl, 1, oh, idim, 1); | |
| cur = ggml_concat(ctx0, cur, nl, 0); | |
| // [OW+1, OH, OC] -> [OC, (OW+1)*OH] | |
| cur = ggml_permute(ctx0, cur, 1, 2, 0, 3); | |
| cur = ggml_cont_2d(ctx0, cur, idim, (ow + 1) * oh); | |
| // project to LLM hidden size | |
| cur = build_mm(model.mm_model_proj, cur); | |
| if (model.mm_model_proj_b) { | |
| cur = ggml_add(ctx0, cur, model.mm_model_proj_b); | |
| } | |
| // wrap with begin/end tokens | |
| cur = ggml_concat(ctx0, ggml_reshape_2d(ctx0, model.mm_img_begin, model.mm_img_begin->ne[0], 1), cur, 1); | |
| cur = ggml_concat(ctx0, cur, ggml_reshape_2d(ctx0, model.mm_img_end, model.mm_img_end->ne[0], 1), 1); | |
| cur = build_norm(cur, model.mm_post_norm_w, nullptr, NORM_TYPE_RMS, eps, -1); | |
| ggml_build_forward_expand(gf, cur); | |
| return gf; | |
| } | |