#include "models.h"
#include <cmath>
ggml_tensor * clip_graph_pockettts_gen::modulate(ggml_tensor * x, ggml_tensor * shift, ggml_tensor * scale) const {
ggml_tensor * cur = ggml_mul(ctx0, x, ggml_scale_bias(ctx0, scale, 1.0f, 1.0f));
return ggml_add(ctx0, cur, shift);
}
ggml_tensor * clip_graph_pockettts_gen::time_embed(const clip_flow_net::time_embd & te, float t) const {
ggml_tensor * args = ggml_scale(ctx0, te.freqs, t);
ggml_tensor * emb = ggml_concat(ctx0, ggml_cos(ctx0, args), ggml_sin(ctx0, args), 0);
ggml_tensor * cur = build_mm(te.up_w, emb);
cur = ggml_add(ctx0, cur, te.up_b);
cur = ggml_silu(ctx0, cur);
cur = build_mm(te.down_w, cur);
cur = ggml_add(ctx0, cur, te.down_b);
{
const int64_t n = cur->ne[0];
ggml_tensor * mean = ggml_mean(ctx0, cur);
ggml_tensor * dev = ggml_sub(ctx0, cur, mean);
ggml_tensor * var = ggml_mean(ctx0, ggml_sqr(ctx0, dev));
var = ggml_scale_bias(ctx0, var, (float) n / (float) (n - 1), 1e-5f);
cur = ggml_div(ctx0, cur, ggml_sqrt(ctx0, var));
cur = ggml_mul(ctx0, cur, te.norm);
}
return cur;
}
ggml_tensor * clip_graph_pockettts_gen::flow_forward(ggml_tensor * cond, ggml_tensor * x, float s, float t) const {
const auto & flow = model.flow;
ggml_tensor * cur = build_mm(flow.input_proj_w, x);
cur = ggml_add(ctx0, cur, flow.input_proj_b);
ggml_tensor * ts = ggml_add(ctx0, time_embed(flow.time[0], s), time_embed(flow.time[1], t));
ts = ggml_scale(ctx0, ts, 1.0f / (float) flow.time.size());
ggml_tensor * c = build_mm(flow.cond_embd_w, cond);
c = ggml_add(ctx0, c, flow.cond_embd_b);
ggml_tensor * y = ggml_add(ctx0, ts, c);
cb(y, "flow_cond", -1);
const int64_t n_ch = flow.blocks.empty() ? 0 : flow.blocks[0].norm_w->ne[0];
for (size_t il = 0; il < flow.blocks.size(); il++) {
const auto & blk = flow.blocks[il];
ggml_tensor * mod = build_mm(blk.ada_w, ggml_silu(ctx0, y));
mod = ggml_add(ctx0, mod, blk.ada_b);
ggml_tensor * shift = ggml_view_1d(ctx0, mod, n_ch, 0);
ggml_tensor * scale = ggml_view_1d(ctx0, mod, n_ch, (size_t) n_ch * mod->nb[0]);
ggml_tensor * gate = ggml_view_1d(ctx0, mod, n_ch, (size_t) 2 * n_ch * mod->nb[0]);
ggml_tensor * h = build_norm(cur, blk.norm_w, blk.norm_b, NORM_TYPE_NORMAL, 1e-6f, (int) il);
h = modulate(h, shift, scale);
h = build_mm(blk.up_w, h);
h = ggml_add(ctx0, h, blk.up_b);
h = ggml_silu(ctx0, h);
h = build_mm(blk.down_w, h);
h = ggml_add(ctx0, h, blk.down_b);
cur = ggml_add(ctx0, cur, ggml_mul(ctx0, gate, h));
cb(cur, "flow_blk", (int) il);
}
ggml_tensor * mod = build_mm(flow.final_ada_w, ggml_silu(ctx0, y));
mod = ggml_add(ctx0, mod, flow.final_ada_b);
ggml_tensor * shift = ggml_view_1d(ctx0, mod, n_ch, 0);
ggml_tensor * scale = ggml_view_1d(ctx0, mod, n_ch, (size_t) n_ch * mod->nb[0]);
cur = build_norm(cur, nullptr, nullptr, NORM_TYPE_NORMAL, 1e-6f, -1);
cur = modulate(cur, shift, scale);
cur = build_mm(flow.final_proj_w, cur);
cur = ggml_add(ctx0, cur, flow.final_proj_b);
return cur;
}
std::vector<c2w_state_slot> list_pockettts_state_slots(const clip_hparams & hparams, const clip_model & model) {
std::vector<c2w_state_slot> slots;
if (model.gen_upsample_w == nullptr) {
return slots; }
const auto & seanet = model.seanet;
GGML_ASSERT(!model.gen_tfm_layers.empty());
GGML_ASSERT((int) seanet.stages.size() >= hparams.seanet_n_stage);
GGML_ASSERT((int) hparams.seanet_ratios.size() >= hparams.seanet_n_stage);
GGML_ASSERT(hparams.mimi_tfm_context > 1 && hparams.mimi_downsample > 0);
slots.push_back({"tfm_pos", 1, 1});
const int64_t n_embd_a = model.gen_tfm_layers[0].q_w->ne[1];
const int64_t prefix = hparams.mimi_tfm_context - 1;
for (size_t il = 0; il < model.gen_tfm_layers.size(); il++) {
slots.push_back({"tfm_k_" + std::to_string(il), n_embd_a, prefix});
slots.push_back({"tfm_v_" + std::to_string(il), n_embd_a, prefix});
}
slots.push_back({"up", model.gen_upsample_w->ne[0] - hparams.mimi_downsample, model.gen_upsample_w->ne[2]});
slots.push_back({"dec_in", seanet.conv_in_w->ne[0] - 1, seanet.conv_in_w->ne[1]});
for (int i = 0; i < hparams.seanet_n_stage; i++) {
const auto & stage = seanet.stages[i];
const int stride = hparams.seanet_ratios[hparams.seanet_n_stage - 1 - i];
slots.push_back({"dec_up_" + std::to_string(i), stage.scale_conv_w->ne[0] - stride, stage.scale_conv_w->ne[1]});
slots.push_back({"dec_res_" + std::to_string(i), stage.res_conv1_w->ne[0] - 1, stage.res_conv1_w->ne[1]});
}
slots.push_back({"dec_out", seanet.conv_out_w->ne[0] - 1, seanet.conv_out_w->ne[1]});
return slots;
}
ggml_cgraph * clip_graph_pockettts_gen::build() {
if (gen_process == CLIP_GEN_PROCESS_GEN_CODE) {
ggml_tensor * h_state = build_inp_raw(1);
h_state = ggml_reshape_2d(ctx0, h_state, n_mmproj_embd, 1);
ggml_tensor * eos = build_mm(model.gen_out_eos_w, h_state);
eos = ggml_add(ctx0, eos, model.gen_out_eos_b);
ggml_set_name(eos, "out_eos_score");
ggml_set_output(eos);
ggml_build_forward_expand(gf, eos);
const int64_t n_latent = model.gen_input_lin_w->ne[0];
ggml_tensor * noise = ggml_new_tensor_2d(ctx0, GGML_TYPE_F32, n_latent, 1);
ggml_set_name(noise, "inp_noise");
ggml_set_input(noise);
ggml_tensor * cur = noise;
for (int i = 0; i < n_step; i++) {
const float s = (float) i / (float) n_step;
const float t = (float) (i + 1) / (float) n_step;
ggml_tensor * v = flow_forward(h_state, cur, s, t);
cur = ggml_add(ctx0, cur, ggml_scale(ctx0, v, 1.0f / (float) n_step));
}
cb(cur, "flow_latent", -1);
ggml_set_name(cur, "out_feats");
ggml_set_output(cur);
ggml_build_forward_expand(gf, cur);
ggml_tensor * embd = build_mm(model.gen_input_lin_w, cur);
cb(embd, "gen_embd", -1);
ggml_build_forward_expand(gf, embd);
return gf;
}
ggml_tensor * feats = ggml_new_tensor_2d(ctx0, GGML_TYPE_F32,
model.gen_input_lin_w->ne[0], n_frames);
ggml_set_name(feats, "inp_feats");
ggml_set_input(feats);
ggml_tensor * cur = ggml_add(ctx0, ggml_mul(ctx0, feats, model.gen_emb_std), model.gen_emb_mean);
cur = build_mm(model.gen_quant_out_w, cur);
cb(cur, "quant_out", -1);
clip_graph_pockettts_seanet seanet(*this);
for (const auto & slot : list_pockettts_state_slots(hparams, model)) {
ggml_tensor * t = ggml_new_tensor_2d(ctx0, GGML_TYPE_F32, slot.ne0, slot.ne1);
ggml_set_name(t, ("state_in_" + slot.name).c_str());
ggml_set_input(t);
seanet.state_in[slot.name] = t;
}
cur = ggml_cont(ctx0, ggml_transpose(ctx0, cur));
cur = seanet.conv_transpose1d(cur, model.gen_upsample_w, nullptr, hparams.mimi_downsample, "up");
cb(cur, "mimi_upsample", -1);
cur = ggml_cont(ctx0, ggml_transpose(ctx0, cur));
const int64_t n_pos = cur->ne[1];
const int64_t prefix = hparams.mimi_tfm_context - 1;
const int64_t n_kv = prefix + n_pos;
ggml_tensor * base = ggml_reshape_1d(ctx0, seanet.state_in.at("tfm_pos"), 1);
ggml_tensor * inp_pos = ggml_cast(ctx0, ggml_add(ctx0, ggml_arange(ctx0, 0.0f, (float) n_pos, 1.0f), base),
GGML_TYPE_I32);
seanet.state_out.push_back({"tfm_pos", ggml_scale_bias(ctx0, seanet.state_in.at("tfm_pos"), 1.0f, (float) n_pos)});
ggml_tensor * pos_k = ggml_reshape_2d(ctx0, ggml_arange(ctx0, 0.0f, (float) n_kv, 1.0f), n_kv, 1);
ggml_tensor * pos_q = ggml_reshape_2d(ctx0, ggml_arange(ctx0, (float) prefix, (float) (prefix + n_pos), 1.0f), 1, n_pos);
ggml_tensor * diff = ggml_sub(ctx0, ggml_repeat_4d(ctx0, pos_q, n_kv, n_pos, 1, 1), pos_k);
ggml_tensor * keep = ggml_mul(ctx0,
ggml_step(ctx0, ggml_scale_bias(ctx0, diff, 1.0f, 0.5f)), ggml_step(ctx0, ggml_scale_bias(ctx0, diff, -1.0f, (float) hparams.mimi_tfm_context - 0.5f))); keep = ggml_mul(ctx0, keep,
ggml_step(ctx0, ggml_scale_bias(ctx0, ggml_add(ctx0, pos_k, base), 1.0f, 0.5f - (float) prefix)));
ggml_tensor * kq_mask = ggml_reshape_4d(ctx0, ggml_log(ctx0, keep), n_kv, n_pos, 1, 1);
for (int il = 0; il < n_layer; il++) {
const auto & layer = model.gen_tfm_layers[il];
ggml_tensor * inp = cur;
cur = build_norm(cur, layer.ln_1_w, layer.ln_1_b, NORM_TYPE_NORMAL, eps, il);
ggml_tensor * Qcur = build_mm(layer.q_w, cur);
ggml_tensor * Kcur = build_mm(layer.k_w, cur);
ggml_tensor * Vcur = build_mm(layer.v_w, cur);
Qcur = ggml_reshape_3d(ctx0, Qcur, d_head, n_head, n_pos);
Kcur = ggml_reshape_3d(ctx0, Kcur, d_head, n_head, n_pos);
Qcur = ggml_rope_ext(ctx0, Qcur, inp_pos, nullptr, d_head, GGML_ROPE_TYPE_NORMAL, 0,
hparams.rope_theta, 1.0f, 0.0f, 1.0f, 0.0f, 0.0f);
Kcur = ggml_rope_ext(ctx0, Kcur, inp_pos, nullptr, d_head, GGML_ROPE_TYPE_NORMAL, 0,
hparams.rope_theta, 1.0f, 0.0f, 1.0f, 0.0f, 0.0f);
const std::string k_name = "tfm_k_" + std::to_string(il);
const std::string v_name = "tfm_v_" + std::to_string(il);
ggml_tensor * k_full = ggml_concat(ctx0, seanet.state_in.at(k_name),
ggml_reshape_2d(ctx0, Kcur, d_head * n_head, n_pos), 1);
ggml_tensor * v_full = ggml_concat(ctx0, seanet.state_in.at(v_name), Vcur, 1);
seanet.state_out.push_back({k_name, ggml_cont(ctx0, ggml_view_2d(ctx0, k_full, k_full->ne[0], prefix,
k_full->nb[1], (size_t) n_pos * k_full->nb[1]))});
seanet.state_out.push_back({v_name, ggml_cont(ctx0, ggml_view_2d(ctx0, v_full, v_full->ne[0], prefix,
v_full->nb[1], (size_t) n_pos * v_full->nb[1]))});
ggml_tensor * q_cur = ggml_reshape_4d(ctx0, Qcur, d_head, n_head, n_pos, 1);
ggml_tensor * k_cur = ggml_reshape_4d(ctx0, k_full, d_head, n_head, n_kv, 1);
ggml_tensor * v_cur = ggml_reshape_4d(ctx0, v_full, d_head, n_head, n_kv, 1);
cur = build_attn(layer.o_w, nullptr, q_cur, k_cur, v_cur, kq_mask, kq_scale, il);
cur = ggml_mul(ctx0, cur, layer.ls_1_w);
cur = ggml_add(ctx0, cur, inp);
inp = cur;
cur = build_norm(cur, layer.ln_2_w, layer.ln_2_b, NORM_TYPE_NORMAL, eps, il);
cur = build_ffn(cur, layer.ff_up_w, nullptr, nullptr, nullptr, layer.ff_down_w, nullptr, FFN_GELU, il);
cur = ggml_mul(ctx0, cur, layer.ls_2_w);
cur = ggml_add(ctx0, cur, inp);
}
cb(cur, "mimi_dec_tfm", -1);
cur = ggml_cont(ctx0, ggml_transpose(ctx0, cur));
cur = seanet.decode(cur);
for (const auto & s : seanet.state_out) {
ggml_set_name(s.second, ("state_out_" + s.first).c_str());
ggml_set_output(s.second);
ggml_build_forward_expand(gf, s.second);
}
cur = ggml_reshape_1d(ctx0, cur, cur->ne[0]);
cur = ggml_clamp(ctx0, cur, -1.0f, 1.0f);
ggml_set_name(cur, "out_audio");
ggml_set_output(cur);
ggml_build_forward_expand(gf, cur);
return gf;
}