fairseq2.cpp 35 KB

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  1. #include <math.h>
  2. #include "ggml.h"
  3. #include "fairseq2.h"
  4. #include <unordered_map>
  5. #include <algorithm>
  6. /// allocate the fairseq2 model and hyperparameters
  7. extern "C" fairseq2_model* fairseq2_model_alloc() {
  8. // pre-allocate some memory to write hyperparameters and tensors pointers
  9. auto* model = new fairseq2_model;
  10. model->hparams = new std::uint8_t[8 * 1024];
  11. model->arch = new std::uint64_t[16 * 1024]; // max tensors allowed
  12. model->tensors_ctx = nullptr;
  13. return model;
  14. };
  15. extern "C" void fairseq2_model_free(fairseq2_model* model) {
  16. if (model->tensors_ctx) ggml_free(model->tensors_ctx);
  17. delete (std::uint64_t*)(model->arch);
  18. delete (std::uint8_t*)model->hparams;
  19. delete model;
  20. };
  21. extern "C" void fairseq2_model_set_inference_ctx(fairseq2_model* model, ggml_context* ctx) {
  22. model->ctx = ctx;
  23. }
  24. extern "C" std::string* std_string_alloc(char* c_str) {
  25. return new std::string(c_str);
  26. }
  27. extern "C" void std_string_free(std::string* str) {
  28. delete str;
  29. }
  30. bool has_layer(fairseq2_model& model, const std::string& name) {
  31. return model.tensors.find(name) != model.tensors.end();
  32. }
  33. extern "C" ggml_tensor* Linear_forward(
  34. fairseq2_model& model,
  35. const std::string &prefix,
  36. ggml_tensor* input // (d_in)
  37. ) {
  38. // Note: for now we assumed un-batched input
  39. ggml_tensor* weight = model.tensors[prefix + ".weight"]; // (d_in, d_out)
  40. GGML_ASSERT(weight != nullptr);
  41. ggml_tensor* out = ggml_mul_mat(model.ctx, weight, input); // (d_out)
  42. ggml_tensor* bias = model.tensors[prefix + ".bias"]; // (d_out)
  43. if (bias == nullptr) return out;
  44. return ggml_add_inplace(model.ctx, out, bias);
  45. }
  46. extern "C" ggml_tensor* LayerNorm_forward(
  47. fairseq2_model& model,
  48. const std::string &prefix,
  49. ggml_tensor* input
  50. ) {
  51. ggml_tensor* weight = model.tensors[prefix + ".weight"];
  52. GGML_ASSERT(weight != nullptr);
  53. ggml_tensor* bias = model.tensors[prefix + ".bias"];
  54. GGML_ASSERT(bias != nullptr);
  55. auto ctx = model.ctx;
  56. // TODO: should `eps` be part of unity hparams ?
  57. input = ggml_norm(ctx, input, /*eps*/1e-5);
  58. return ggml_add_inplace(
  59. ctx,
  60. ggml_mul_inplace(ctx, ggml_repeat(ctx, weight, input), input),
  61. ggml_repeat(ctx, bias, input)
  62. );
  63. }
  64. extern "C" ggml_tensor* StandardFeedForwardNetwork_forward(
  65. fairseq2_model& model,
  66. const std::string& prefix,
  67. ggml_tensor* seqs
  68. ) {
  69. seqs = Linear_forward(model, prefix + ".inner_proj", seqs);
  70. // inner_activation = ReLu // TODO: allow other activation
  71. seqs = ggml_relu_inplace(model.ctx, seqs);
  72. if (has_layer(model, prefix + ".inner_layer_norm")) {
  73. seqs = LayerNorm_forward(model, prefix + ".inner_layer_norm", seqs);
  74. }
  75. seqs = Linear_forward(model, prefix + ".output_proj", seqs);
  76. return seqs;
  77. }
  78. ggml_tensor* ggml_flatten_1d(ggml_context* ctx, ggml_tensor* x, int dim) {
  79. int n_dims = x->n_dims;
  80. GGML_ASSERT(dim >= 0);
  81. GGML_ASSERT(dim < n_dims);
  82. GGML_ASSERT(ggml_is_contiguous(x));
  83. // Nothing to do
  84. if (dim == n_dims - 1) return x;
  85. if (n_dims == 2) {
  86. return ggml_reshape_1d(ctx, x, x->ne[0] * x->ne[1]);
  87. } else if (n_dims == 3) {
  88. if (dim == 0) {
  89. return ggml_reshape_2d(ctx, x, x->ne[0] * x->ne[1], x->ne[2]);
  90. } else { // dim == 1
  91. return ggml_reshape_2d(ctx, x, x->ne[0], x->ne[1] * x->ne[2]);
  92. }
  93. } else { // n_dims == 4
  94. if (dim == 0) {
  95. return ggml_reshape_3d(ctx, x, x->ne[0] * x->ne[1], x->ne[2], x->ne[3]);
  96. } else if (dim == 1) {
  97. return ggml_reshape_3d(ctx, x, x->ne[0], x->ne[1] * x->ne[2], x->ne[3]);
  98. } else { // dim == 2
  99. return ggml_reshape_3d(ctx, x, x->ne[0], x->ne[1], x->ne[2] * x->ne[3]);
  100. }
  101. }
  102. }
  103. ggml_tensor* ggml_unflatten_1d(ggml_context* ctx, ggml_tensor* x, int dim, int num_el) {
  104. int n_dims = x->n_dims;
  105. GGML_ASSERT(dim >= 0);
  106. GGML_ASSERT(dim < n_dims);
  107. GGML_ASSERT(n_dims < 4);
  108. if (n_dims == 1) {
  109. return ggml_reshape_2d(ctx, x, num_el, x->ne[0] / num_el);
  110. } else if (n_dims == 2) {
  111. if (dim == 0) {
  112. return ggml_reshape_3d(ctx, x, num_el, x->ne[0] / num_el, x->ne[1]);
  113. } else { // dim == 1
  114. return ggml_reshape_3d(ctx, x, x->ne[0], num_el, x->ne[1] / num_el);
  115. }
  116. } else { // (n_dims == 3)
  117. if (dim == 0) {
  118. return ggml_reshape_4d(ctx, x, num_el, x->ne[0] / num_el, x->ne[1], x->ne[2]);
  119. } else if (dim == 1) {
  120. return ggml_reshape_4d(ctx, x, x->ne[0], num_el, x->ne[1] / num_el, x->ne[2]);
  121. } else { // dim == 2
  122. return ggml_reshape_4d(ctx, x, x->ne[0], x->ne[1], num_el, x->ne[2] / num_el);
  123. }
  124. }
  125. }
  126. ggml_tensor* _reshape_num_head(ggml_context* ctx, ggml_tensor* x, int head_dim) {
  127. // (B, S, dim) -> (B, S, H, H_dim)
  128. x = ggml_unflatten_1d(ctx, x, 0, head_dim);
  129. x = ggml_permute(ctx, x, 0, 2, 1, 3); // (B, H, S, H_dim)
  130. x = ggml_cont(ctx, x);
  131. x = ggml_flatten_1d(ctx, x, 2); // (B * H, S, H_dim)
  132. return x;
  133. }
  134. /// (B, Sk, dim) -> // (B?, H, H_dim, Sk)
  135. ggml_tensor* _reshape_num_head_values(ggml_context* ctx, ggml_tensor* v, int head_dim ) {
  136. // (B, Sk, dim) -> (B, Sk, H, H_dim)
  137. v = ggml_unflatten_1d(ctx, v, 0, head_dim);
  138. v = ggml_permute(ctx, v, 1, 2, 0, 3); // (B?, H, H_dim, Sk)
  139. v = ggml_cont(ctx, v);
  140. v = ggml_flatten_1d(ctx, v, 2); // (B * H, S, H_dim)
  141. return v;
  142. }
  143. // flash_attn doesn't work for cross attention because it assumes Q <= K
  144. // TODO: enable flash_attn only for the encoder
  145. # define UNITY_FLASH_ATTN 0
  146. extern "C" ggml_tensor* MultiheadAttention_forward(
  147. fairseq2_model& model,
  148. const std::string &prefix,
  149. ggml_tensor* queries, // (slen, d_in)
  150. ggml_tensor* keys, // (klen, d_in)
  151. ggml_tensor* values, // (klen, d_out)
  152. ggml_tensor* mask // (klen, slen)
  153. ) {
  154. int model_dim = queries->ne[0];
  155. int num_heads = 16; // TODO: read from hparams
  156. int head_dim = model_dim / num_heads;
  157. GGML_ASSERT(model_dim % num_heads == 0);
  158. ggml_context* ctx = model.ctx;
  159. ggml_tensor* q = Linear_forward(model, prefix + ".q_proj", queries); // (B, S, H * H_dim)
  160. ggml_set_name(q, "q");
  161. q = _reshape_num_head(ctx, q, head_dim); // (B * H, S, H_dim)
  162. ggml_tensor* k = Linear_forward(model, prefix + ".k_proj", keys);
  163. ggml_set_name(k, "k");
  164. k = _reshape_num_head(ctx, k, head_dim); // (B * H, Sk, H_dim)
  165. ggml_tensor* v = Linear_forward(model, prefix + ".v_proj", values);
  166. ggml_set_name(v, "v");
  167. v = _reshape_num_head_values(ctx, v, head_dim); // (B * H, H_dim, Sk)
  168. v = ggml_cont(ctx, v);
  169. #if UNITY_FLASH_ATTN
  170. // For flash_attn, we assume either no masks, or triangular masks.
  171. ggml_tensor* attn = ggml_flash_attn(ctx, q, k, v, /*masked*/mask != nullptr); // (B * H, S, H_dim)
  172. ggml_set_name(attn, "attn");
  173. // TODO test !
  174. attn = ggml_unflatten_1d(ctx, attn, 2, num_heads); // (B, H, H_dim, S)
  175. attn = ggml_permute(ctx, attn, 0, 2, 1, 3); // (B, S, H, H_dim)
  176. #else
  177. // (B * H, Sk, H_dim) x (B * H, S, H_dim) -> (B * H, S, Sk)
  178. ggml_tensor* qk = ggml_mul_mat(ctx, k, q);
  179. ggml_set_name(qk, "qk");
  180. ggml_tensor* qk_scale = ggml_new_tensor_1d(ctx, qk->type, 1);
  181. ggml_set_f32(qk_scale, 1.0f/sqrtf(float(head_dim)));
  182. qk = ggml_scale(ctx, qk, qk_scale);
  183. ggml_set_name(qk, "qk_scaled");
  184. // TODO: Should we replace this by ggml_diag_mask_inf ?
  185. // TODO: masks have the wrong shape to be added here
  186. if (mask) qk = ggml_add(ctx, qk, mask);
  187. // TODO: upgrade qk to float32 if needed
  188. ggml_tensor* attn_weights = ggml_soft_max(ctx, qk); // (B * H, S, Sk)
  189. ggml_set_name(attn_weights, "attn_weights");
  190. // (B * H, S, Sk) x (B * H, H_dim, Sk) -> (B * H, H_dim, S)
  191. ggml_tensor* attn = ggml_mul_mat(ctx, attn_weights, v);
  192. ggml_set_name(attn, "attn");
  193. attn = ggml_unflatten_1d(ctx, attn, 2, num_heads); // (B, H, H_dim, S)
  194. attn = ggml_permute(ctx, attn, 2, 0, 1, 3); // (B, S, H, H_dim)
  195. #endif // UNITY_FLASH_ATTN
  196. attn = ggml_cont(ctx, attn);
  197. attn = ggml_flatten_1d(ctx, attn, 0); // (B, S, H * H_dim)
  198. // out -> (B, S, d_out)
  199. ggml_tensor* out = Linear_forward(model, prefix + ".output_proj", attn);
  200. ggml_set_name(out, "out");
  201. return out;
  202. }
  203. extern "C" ggml_tensor* StandardTransformerEncoderLayer_forward(
  204. fairseq2_model& model,
  205. const std::string& prefix,
  206. ggml_tensor* seqs,
  207. ggml_tensor* padding_mask
  208. ) {
  209. ggml_context* ctx = model.ctx;
  210. // TODO: read norm_order from model
  211. auto norm_order = TRANSFORMER_NORM_ORDER_PRE;
  212. // _forward_self_attn(seqs, padding_mask)
  213. auto residual = seqs;
  214. if (norm_order != TRANSFORMER_NORM_ORDER_POST)
  215. seqs = LayerNorm_forward(model, prefix + ".self_attn_layer_norm", seqs);
  216. // TODO: add padding_mask to MultiheadAttention_forward
  217. GGML_ASSERT(padding_mask == nullptr);
  218. seqs = MultiheadAttention_forward(
  219. model,
  220. prefix + ".self_attn",
  221. seqs,
  222. seqs,
  223. seqs,
  224. /*attention masks=*/nullptr
  225. );
  226. if (has_layer(model, prefix + ".self_attn_norm"))
  227. seqs = LayerNorm_forward(model, prefix + ".self_attn_norm", seqs);
  228. seqs = ggml_add(ctx, seqs, residual);
  229. if (norm_order == TRANSFORMER_NORM_ORDER_POST)
  230. seqs = LayerNorm_forward(model, prefix + ".self_attn_layer_norm", seqs);
  231. // _forward_ffn(seqs)
  232. residual = seqs;
  233. if (norm_order != TRANSFORMER_NORM_ORDER_POST)
  234. seqs = LayerNorm_forward(model, prefix + ".ffn_layer_norm", seqs);
  235. seqs = StandardFeedForwardNetwork_forward(model, prefix + ".ffn", seqs);
  236. // TODO: if self.residual_scale is not None:
  237. // residual = self.residual_scale * residual
  238. seqs = ggml_add(ctx, seqs, residual);
  239. if (norm_order == TRANSFORMER_NORM_ORDER_POST)
  240. seqs = LayerNorm_forward(model, prefix + ".ffn_layer_norm", seqs);
  241. return seqs;
  242. }
  243. /// ggml_slice(X, -1, start, end) is equivalent to X[start:end]
  244. /// ggml_slice(X, 0, start, end) is equivalent to X[..., start:end]
  245. struct ggml_tensor * ggml_slice(
  246. struct ggml_context * ctx,
  247. struct ggml_tensor * a,
  248. int axis,
  249. int64_t start,
  250. int64_t end
  251. ) {
  252. int64_t ne[4];
  253. std::copy(a->ne, a->ne + 4, ne);
  254. if (axis < 0) axis = a->n_dims + axis;
  255. if (start < 0) start = ne[axis] + start;
  256. if (end < 0) end = ne[axis] + end;
  257. GGML_ASSERT(0 <= start);
  258. GGML_ASSERT(start <= end);
  259. GGML_ASSERT(end <= ne[axis]);
  260. ne[axis] = end - start;
  261. size_t offset = a->nb[axis] * start;
  262. size_t* nb = a->nb;
  263. ggml_tensor* result = ggml_view_4d(ctx, a, ne[0], ne[1], ne[2], ne[3], nb[1], nb[2], nb[3], offset);
  264. result->n_dims = a->n_dims;
  265. return result;
  266. }
  267. extern "C" ggml_tensor* PositionalEmbedding_forward(
  268. fairseq2_model& model,
  269. const std::string& prefix,
  270. ggml_tensor* embeds
  271. ) {
  272. // This only work with the simple pos encoders
  273. int seq_len = embeds->ne[1];
  274. ggml_tensor* full_pos_embeds = model.tensors[prefix];
  275. ggml_tensor* pos_embeds = ggml_slice(model.ctx, full_pos_embeds, /*axis*/1, 0, seq_len);
  276. return ggml_add(model.ctx, embeds, pos_embeds);
  277. }
  278. extern "C" ggml_tensor* TransformerEmbeddingFrontend_forward(
  279. fairseq2_model& model,
  280. const std::string& prefix,
  281. ggml_tensor* seqs
  282. // TODO: state_bag
  283. ) {
  284. GGML_ASSERT(seqs->n_dims < GGML_MAX_DIMS);
  285. ggml_context* ctx = model.ctx;
  286. ggml_tensor* embed_weights = model.tensors[prefix + ".embed.weight"];
  287. GGML_ASSERT(embed_weights != nullptr);
  288. ggml_tensor* embeds;
  289. if (seqs->n_dims == 1) {
  290. embeds = ggml_get_rows(ctx, embed_weights, seqs);
  291. } else {
  292. // ggml_get_rows isn't very flexible, we have to handle the reshape ourselves.
  293. ggml_tensor* flat_seqs = seqs;
  294. if (!ggml_is_contiguous(seqs)) {
  295. flat_seqs->type = GGML_TYPE_F32;
  296. flat_seqs = ggml_cont(ctx, flat_seqs);
  297. }
  298. flat_seqs = ggml_reshape_1d(ctx, flat_seqs, ggml_nelements(seqs));
  299. flat_seqs->type = GGML_TYPE_I32;
  300. embeds = ggml_get_rows(ctx, embed_weights, flat_seqs);
  301. embeds = ggml_reshape_4d(ctx, embeds, embed_weights->ne[0], seqs->ne[0], seqs->ne[1], seqs->ne[2]);
  302. embeds->n_dims = seqs->n_dims + 1;
  303. }
  304. // padding mask ?
  305. // padding_mask = to_padding_mask(embeds, seq_lens)
  306. if (has_layer(model, prefix + ".pos_encoder")) {
  307. embeds = PositionalEmbedding_forward(model, prefix + ".pos_encoder", embeds);
  308. }
  309. if (has_layer(model, prefix + ".layer_norm")) {
  310. embeds = LayerNorm_forward(model, prefix + ".layer_norm", embeds);
  311. }
  312. return embeds;
  313. }
  314. extern "C" ggml_tensor* StandardTransformerEncoder_forward(
  315. fairseq2_model& model,
  316. const std::string& prefix,
  317. ggml_tensor* seqs,
  318. ggml_tensor* padding_mask
  319. ) {
  320. int layer_idx = 0;
  321. std::string layer_name = prefix + ".layers." + std::to_string(layer_idx);
  322. while (has_layer(model, layer_name)) {
  323. seqs = StandardTransformerEncoderLayer_forward(
  324. model, layer_name, seqs, padding_mask
  325. );
  326. ggml_set_name(seqs, ("x_enc_" + std::to_string(layer_idx)).c_str());
  327. layer_idx += 1;
  328. layer_name = prefix + ".layers." + std::to_string(layer_idx);
  329. }
  330. if (has_layer(model, prefix + ".layer_norm"))
  331. seqs = LayerNorm_forward(model, prefix + ".layer_norm", seqs);
  332. return seqs;
  333. }
  334. extern "C" ggml_tensor* StandardTransformerDecoderLayer_forward(
  335. fairseq2_model& model,
  336. const std::string& prefix,
  337. ggml_tensor* seqs,
  338. ggml_tensor* self_attn_mask,
  339. ggml_tensor* encoder_output,
  340. ggml_tensor* encoder_padding_mask
  341. ) {
  342. ggml_context* ctx = model.ctx;
  343. // TODO: read norm_order from model
  344. auto norm_order = TRANSFORMER_NORM_ORDER_PRE;
  345. // _forward_self_attn(seqs, padding_mask)
  346. auto residual = seqs;
  347. if (norm_order != TRANSFORMER_NORM_ORDER_POST)
  348. seqs = LayerNorm_forward(model, prefix + ".self_attn_layer_norm", seqs);
  349. seqs = MultiheadAttention_forward(
  350. model,
  351. prefix + ".self_attn",
  352. seqs,
  353. seqs,
  354. seqs,
  355. /*attention masks=*/self_attn_mask
  356. );
  357. if (has_layer(model, prefix + ".self_attn_norm"))
  358. seqs = LayerNorm_forward(model, prefix + ".self_attn_norm", seqs);
  359. seqs = ggml_add(ctx, seqs, residual);
  360. if (norm_order == TRANSFORMER_NORM_ORDER_POST)
  361. seqs = LayerNorm_forward(model, prefix + ".self_attn_layer_norm", seqs);
  362. // _forward_encoder_decoder_attn
  363. if (! has_layer(model, prefix + ".encoder_decoder_attn")) {
  364. // `encoder_output` must be `None` for decoder-only attention.
  365. GGML_ASSERT(encoder_output == nullptr);
  366. return seqs;
  367. }
  368. // `encoder_output` must not be `None` for encoder-decoder attention.
  369. GGML_ASSERT(encoder_output != nullptr);
  370. residual = seqs;
  371. if (norm_order != TRANSFORMER_NORM_ORDER_POST)
  372. seqs = LayerNorm_forward(model, prefix + ".encoder_decoder_attn_layer_norm", seqs);
  373. seqs = MultiheadAttention_forward(
  374. model,
  375. prefix + ".encoder_decoder_attn",
  376. seqs,
  377. encoder_output,
  378. encoder_output,
  379. /*attention masks=*/encoder_padding_mask
  380. );
  381. seqs = ggml_add(ctx, seqs, residual);
  382. if (norm_order == TRANSFORMER_NORM_ORDER_POST)
  383. seqs = LayerNorm_forward(model, prefix + ".encoder_decoder_attn_layer_norm", seqs);
  384. // _forward_ffn(seqs)
  385. residual = seqs;
  386. if (norm_order != TRANSFORMER_NORM_ORDER_POST)
  387. seqs = LayerNorm_forward(model, prefix + ".ffn_layer_norm", seqs);
  388. seqs = StandardFeedForwardNetwork_forward(model, prefix + ".ffn", seqs);
  389. // TODO:
  390. // if self.residual_scale is not None:
  391. // residual = self.residual_scale * residual
  392. seqs = ggml_add(ctx, seqs, residual);
  393. if (norm_order == TRANSFORMER_NORM_ORDER_POST)
  394. seqs = LayerNorm_forward(model, prefix + ".ffn_layer_norm", seqs);
  395. return seqs;
  396. }
  397. extern "C" ggml_tensor* causal_attention_mask(ggml_context* ctx, ggml_tensor* seqs) {
  398. auto seq_len = seqs->ne[1];
  399. // TODO: allow other ggml_type
  400. ggml_tensor* mask = ggml_new_tensor_2d(ctx, GGML_TYPE_F32, seq_len, seq_len);
  401. return ggml_diag_mask_inf(ctx, mask, 0);
  402. }
  403. extern "C" ggml_tensor* StandardTransformerDecoder_forward(
  404. fairseq2_model& model,
  405. const std::string& prefix,
  406. ggml_tensor* seqs,
  407. ggml_tensor* padding_mask,
  408. ggml_tensor* encoder_output,
  409. ggml_tensor* encoder_padding_mask
  410. ) {
  411. int layer_idx = 0;
  412. std::string layer_name = prefix + ".layers." + std::to_string(layer_idx);
  413. ggml_tensor* self_attn_mask = causal_attention_mask(model.ctx, seqs);
  414. while (has_layer(model, layer_name)) {
  415. seqs = StandardTransformerDecoderLayer_forward(
  416. model, layer_name, seqs, self_attn_mask, encoder_output, encoder_padding_mask
  417. );
  418. ggml_set_name(seqs, ("x_dec_" + std::to_string(layer_idx)).c_str());
  419. layer_idx += 1;
  420. layer_name = prefix + ".layers." + std::to_string(layer_idx);
  421. }
  422. if (has_layer(model, prefix + ".layer_norm"))
  423. seqs = LayerNorm_forward(model, prefix + ".layer_norm", seqs);
  424. return seqs;
  425. }
  426. using IncrementalStateBag = std::unordered_map<ggml_tensor*, ggml_tensor*>*;
  427. int _determine_max_seq_len(const SequenceGeneratorJob& job, int source_seq_len) {
  428. auto opts = job.opts;
  429. int max_seq_len = -1;
  430. if (source_seq_len <= 0 || opts.soft_max_seq_len_a <= 0) {
  431. max_seq_len = opts.hard_max_seq_len;
  432. } else {
  433. max_seq_len = std::min(opts.hard_max_seq_len, int(opts.soft_max_seq_len_a * source_seq_len) + opts.soft_max_seq_len_b);
  434. }
  435. if (opts.min_seq_len > max_seq_len) {
  436. printf(
  437. "The effective maximum sequence length must be greater than or equal to `min_seq_len` (%d), but is %d instead. Adjust your soft and hard maximum sequence length limits.\n",
  438. opts.min_seq_len,
  439. max_seq_len
  440. );
  441. GGML_ASSERT(opts.min_seq_len <= max_seq_len);
  442. }
  443. int prefix_seq_len = job.prefix_seq->ne[0];
  444. if (prefix_seq_len >= max_seq_len) {
  445. printf(
  446. "The effective maximum sequence length must be greater than `prefix_seq_len` (%d), but is %d instead.\n",
  447. prefix_seq_len,
  448. max_seq_len
  449. );
  450. GGML_ASSERT(prefix_seq_len < max_seq_len);
  451. }
  452. return max_seq_len;
  453. }
  454. void _fan_out_encoder_output(
  455. ggml_context* ctx,
  456. ggml_tensor** encoder_output_out,
  457. ggml_tensor** encoder_padding_mask_out,
  458. int beam_size
  459. ) {
  460. // (S_enc, M)
  461. ggml_tensor* encoder_output = *encoder_output_out;
  462. ggml_tensor* encoder_padding_mask = *encoder_padding_mask_out;
  463. // (B, S_enc, M)
  464. ggml_tensor* shape = ggml_new_tensor_3d(ctx, GGML_TYPE_I8, encoder_output->ne[0], encoder_output->ne[1], beam_size);
  465. // (S_enc, M) -> (B, S_enc, M)
  466. *encoder_output_out = ggml_repeat(ctx, encoder_output, shape);
  467. // (S_enc) -> (B, S_enc)
  468. if (encoder_padding_mask != nullptr) {
  469. ggml_tensor* shape_mask = ggml_new_tensor_3d(ctx, GGML_TYPE_I8, encoder_padding_mask->ne[0], 1, beam_size);
  470. *encoder_padding_mask_out = ggml_repeat(ctx, encoder_padding_mask, shape_mask);
  471. }
  472. }
  473. ggml_tensor* ggml_log_softmax(ggml_context* ctx, ggml_tensor* logits) {
  474. // TODO: this isn't the most precise way of doing this
  475. return ggml_log_inplace(ctx, ggml_soft_max_inplace(ctx, logits));
  476. }
  477. ggml_tensor* ggml_expand_2d(ggml_context* ctx, ggml_tensor* x, int64_t ne0, int64_t ne1) {
  478. ggml_tensor* shape = ggml_new_tensor_2d(ctx, GGML_TYPE_I8, ne0, ne1);
  479. ggml_type true_type = x->type;
  480. x->type = GGML_TYPE_F32;
  481. ggml_tensor* y = ggml_repeat(ctx, x, shape);
  482. y->type = true_type;
  483. return y;
  484. }
  485. void _bootstrap_seqs_and_scores(
  486. fairseq2_model& model,
  487. const SequenceGeneratorJob& job,
  488. ggml_tensor* full_seqs,
  489. ggml_tensor* scores,
  490. ggml_tensor* encoder_output,
  491. ggml_tensor* encoder_padding_mask,
  492. IncrementalStateBag state_bag
  493. ) {
  494. int prefix_seq_len = job.prefix_seq->ne[0];
  495. int max_seq_len = scores->ne[0];
  496. int beam_size = scores->ne[1];
  497. GGML_ASSERT(prefix_seq_len > 0);
  498. if (prefix_seq_len == 1)
  499. return;
  500. ggml_context* ctx = model.ctx;
  501. // full_seqs[:, : prefix_seq_len] = job.prefix_seq;
  502. full_seqs->type = GGML_TYPE_F32;
  503. job.prefix_seq->type = GGML_TYPE_F32;
  504. ggml_tensor* seqs = ggml_slice(ctx, full_seqs, 0, 0, prefix_seq_len);
  505. seqs = ggml_cpy(ctx, ggml_repeat(ctx, job.prefix_seq, seqs), seqs);
  506. // We have to bootstrap the model with the already fanned-out encoder
  507. // output to correctly initialize its incremental state.
  508. // Note: we don't start decoding the last prefix token just yet.
  509. seqs = ggml_slice(ctx, seqs, 0, 0, prefix_seq_len - 1);
  510. seqs->type = GGML_TYPE_I32;
  511. // Bootstrap the model state with prefix sequence.
  512. seqs = TransformerEmbeddingFrontend_forward(model, "text_decoder_frontend", seqs);
  513. ggml_tensor* decoder_output = StandardTransformerDecoder_forward(
  514. model,
  515. "text_decoder",
  516. seqs,
  517. /*padding_mask*/ nullptr,
  518. encoder_output,
  519. /*encoder_padding_mask*/ nullptr // TODO: do we need padding for encoder ?
  520. // TODO: state_bag
  521. );
  522. // TODO state_bag.increment_step(prefix_seq_len - 1)
  523. // logits, lprobs: (N, S_pfx - 1, V)
  524. ggml_tensor* logits = Linear_forward(model, "final_proj", decoder_output);
  525. int vocab_size = logits->ne[0];
  526. ggml_tensor* lprobs = ggml_log_softmax(ctx, ggml_slice(ctx, logits, 1, 0, 1));
  527. ggml_cgraph gf = ggml_build_forward(lprobs);
  528. ggml_graph_compute_with_ctx(ctx, &gf, 1);
  529. full_seqs->type = GGML_TYPE_I32;
  530. job.prefix_seq->type = GGML_TYPE_I32;
  531. // Fetch scores of next steps from "lprobs"
  532. float p_score = 0;
  533. for (int i = 1; i < prefix_seq_len; ++i) {
  534. int p = ggml_get_i32_1d(job.prefix_seq, i);
  535. p_score += ggml_get_f32_1d(lprobs, i * vocab_size + p);
  536. for (int b = 0; b < beam_size; ++b) {
  537. // scores: (N, S)
  538. // Note: First step (e.g. BOS)'s score is always 0.
  539. ggml_set_f32_1d(scores, b * max_seq_len + i, p_score);
  540. }
  541. }
  542. }
  543. /// Represents a hypothesis produced by a sequence generator.
  544. struct Hypothesis {
  545. /// The generated sequence.
  546. ggml_tensor* seq;
  547. /// The score of the hypothesis.
  548. float score;
  549. /// The score of each individual sequence step.
  550. ggml_tensor* step_scores;
  551. };
  552. /// Finds the topk indices
  553. int topk(
  554. ggml_context* ctx,
  555. ggml_tensor* lprobs, // (B, V)
  556. std::int64_t k,
  557. ggml_tensor* candidate_indices
  558. ) {
  559. // Take the best 2 x `beam_size` predictions. We'll choose the first
  560. // `beam_size` of these which don't predict EOS to continue with.
  561. // (N, 2 x B)
  562. // `vocab_size` - 1 to never select PAD.
  563. std::int64_t K = std::min(k, ggml_nelements(lprobs));
  564. auto comp = [lprobs](std::int32_t a, std::int32_t b) {
  565. return ggml_get_f32_1d(lprobs, a) > ggml_get_f32_1d(lprobs, b);
  566. };
  567. GGML_ASSERT(ggml_nelements(candidate_indices) >= k);
  568. auto cand = (std::int32_t*)candidate_indices->data;
  569. std::partial_sort(cand, cand + K, cand + ggml_nelements(lprobs), comp);
  570. return K;
  571. }
  572. void ggml_detach(ggml_tensor* a) {
  573. a->op = GGML_OP_NONE;
  574. a->src[0] = nullptr;
  575. }
  576. int _finalize_hypothesis(
  577. const SequenceGeneratorJob& job,
  578. ggml_context* ctx,
  579. int step_nr,
  580. int vocab_size,
  581. std::int32_t candidate,
  582. float tok_score,
  583. ggml_tensor* seqs, // (beam_size, seq_len)
  584. ggml_tensor* scores, // (beam_size, seq_len)
  585. std::vector<Hypothesis>& hypotheses
  586. ) {
  587. std::int32_t beam = candidate / vocab_size;
  588. std::int32_t token = candidate % vocab_size;
  589. // Detect beams that reached the minimum length and that end with an EOS.
  590. bool eos = token == job.eos_idx;
  591. eos &= tok_score != -INFINITY;
  592. if (!eos) return 0;
  593. // If the candidate beam is "finished", let's copy the score and sequence
  594. ggml_tensor* tokens = ggml_new_tensor_1d(ctx, GGML_TYPE_I32, step_nr + 2);
  595. ggml_tensor* step_scores = ggml_new_tensor_1d(ctx, GGML_TYPE_F32, step_nr + 2);
  596. auto tok = (std::int32_t*)tokens->data;
  597. for (int i = 0; i < step_nr + 1; ++i) {
  598. tok[i] = ggml_get_i32_1d(seqs, seqs->ne[0] * beam + i);
  599. }
  600. tok[step_nr + 1] = token;
  601. // Convert from cumulative to per-step scores.
  602. auto sc = (float*)step_scores->data;
  603. float last_score = tok_score;
  604. sc[step_nr + 1] = last_score;
  605. for (int i = step_nr; i >= 0; --i) {
  606. float sc0 = ggml_get_f32_1d(scores, scores->ne[0] * beam + i);
  607. sc[i] = last_score - sc0;
  608. last_score = sc0;
  609. }
  610. if (job.opts.normalize_scores)
  611. // Skip first EOS since it is always 0 and skews normalization.
  612. tok_score /= (float)std::pow((step_nr + 1), job.opts.len_penalty);
  613. // TODO the score computed here isn't the same than computed by fairseq2.
  614. hypotheses.emplace_back(Hypothesis{tokens, tok_score, step_scores});
  615. return 1;
  616. }
  617. /// Generates a translation for a single sequence
  618. // TODO: finish this for beam_size=1
  619. // * find out why score is different (seq is the same though)
  620. // TODO: add IncrementalStateBag support to avoid a O(N^3) generation.
  621. // TODO: support beam_size > 1:
  622. // * most layers assume un-batched input, but we want to handle several beams at once
  623. // * need to port "reorder_state_dict"
  624. // TODO: clean up
  625. // * replace manual tensor tweaking with ggml_set_*d (ggml_set_slice could be useful)
  626. extern "C" float generate_sequence(
  627. fairseq2_model& model,
  628. const SequenceGeneratorJob& job,
  629. ggml_tensor* encoder_output,
  630. ggml_tensor* encoder_padding_mask,
  631. ggml_tensor* output_seq
  632. ) {
  633. ggml_context* ctx = model.ctx;
  634. size_t eos_idx = job.eos_idx;
  635. auto pad_idx = job.pad_idx;
  636. ggml_tensor* embed = model.tensors["text_decoder_frontend.embed.weight"];
  637. size_t vocab_size = embed->ne[1];
  638. std::size_t beam_size = job.opts.beam_size;
  639. int source_seq_len = encoder_output->ne[1];
  640. int max_seq_len = _determine_max_seq_len(job, source_seq_len);
  641. // (S_enc, M) -> (B, S_enc, M)
  642. _fan_out_encoder_output(ctx, &encoder_output, &encoder_padding_mask, beam_size);
  643. std::vector<Hypothesis> finished_searches;
  644. finished_searches.reserve(beam_size);
  645. // Initialize buffers. (B, S)
  646. ggml_tensor* seqs = ggml_new_tensor_2d(ctx, GGML_TYPE_I32, max_seq_len, beam_size);
  647. ggml_set_i32(seqs, 0);
  648. ggml_set_name(seqs, "seqs_0");
  649. ggml_tensor* scores = ggml_new_tensor_2d(ctx, GGML_TYPE_F32, max_seq_len, beam_size);
  650. ggml_set_name(scores, "scores_0");
  651. ggml_set_f32(scores, 0.0);
  652. IncrementalStateBag state_bag = {};
  653. _bootstrap_seqs_and_scores(
  654. model, job, seqs, scores, encoder_output, encoder_padding_mask, state_bag
  655. );
  656. int prefix_seq_len = job.prefix_seq->ne[0];
  657. int start_step = prefix_seq_len - 1;
  658. // Holds the indices of beams (a beam can occur more than once) that we
  659. // should continue with in the next step.
  660. ggml_tensor* beam_indices = ggml_new_tensor_1d(ctx, GGML_TYPE_I32, beam_size);
  661. ggml_tensor* next_tokens = ggml_new_tensor_1d(ctx, GGML_TYPE_I32, beam_size);
  662. ggml_tensor* next_scores = ggml_new_tensor_1d(ctx, GGML_TYPE_F32, beam_size);
  663. // Array with integers up to 'vocab_size * beam_size' to represent next beams to explore
  664. ggml_tensor* candidate_indices = ggml_new_tensor_1d(ctx, GGML_TYPE_I32, vocab_size * beam_size);
  665. for (std::size_t i = 0; i < vocab_size * beam_size; ++i)
  666. ((int32_t *)(candidate_indices->data))[i] = i;
  667. // TODO: memory management
  668. // there should be a per-step ggml_context for intermediary results
  669. // start of beam search:
  670. for (int step_nr = start_step; step_nr < max_seq_len - 1; ++step_nr) {
  671. // if (beam_indices != nullptr) {
  672. // // If not `None`, it means in the last step we finalized one or
  673. // // more searches. We should ensure that we adjust `beam_indices`
  674. // // before reordering `decoder`'s incremental state.
  675. // if (search_indices != nullptr) {
  676. // num_searches = search_indices->ne[0];
  677. // // (N)
  678. // delta = search_indices - torch.arange(num_searches, device=device)
  679. // // (N) -> (N, 1)
  680. // delta.unsqueeze_(-1)
  681. // // Adjust indices to take into account removed searches.
  682. // beam_indices.view(num_searches, beam_size).add_(delta * beam_size)
  683. // }
  684. // // state_bag.reorder(beam_indices)
  685. // }
  686. // because of no IncrementalStateBag we pass input from the start
  687. // decoder_input = seqs[:, 0 : step_nr + 1]
  688. ggml_tensor* decoder_input = ggml_slice(ctx, seqs, 0, 0, step_nr + 1);
  689. decoder_input = TransformerEmbeddingFrontend_forward(model, "text_decoder_frontend", decoder_input);
  690. ggml_tensor* decoder_output = StandardTransformerDecoder_forward(
  691. model,
  692. "text_decoder",
  693. decoder_input,
  694. nullptr, // We never generate PAD.
  695. encoder_output,
  696. /*encoder_padding_mask*/ nullptr // TODO: do we need padding for encoder ?
  697. // state_bag=state_bag,
  698. ); // (B, S, D)
  699. // state_bag.increment_step()
  700. // Because of no IncrementalStateBag decoder_output here is of shape (B, S, D)
  701. // Just look at the last token.
  702. decoder_output = ggml_slice(ctx, decoder_output, 1, step_nr, step_nr+1);
  703. decoder_output = ggml_cont(ctx, decoder_output);
  704. decoder_output = ggml_flatten_1d(ctx, decoder_output, 0); // (B, model_dim)
  705. ggml_tensor* logits = Linear_forward(model, "final_proj", decoder_output); // (B, vocab_size)
  706. ggml_tensor* lprobs = ggml_log_softmax(ctx, logits);
  707. // Compute lprobs here so we can modify it in place in the lprob tweaking phase
  708. // TODO: use ggml properly compute the tweaks
  709. ggml_cgraph gf = ggml_build_forward(lprobs);
  710. printf("beam search step %d. Graph.n_nodes: %d\n", step_nr, gf.n_nodes);
  711. ggml_graph_compute_with_ctx(ctx, &gf, 1);
  712. ggml_detach(lprobs);
  713. // // Do not allow EOS before reaching the minimum sequence length.
  714. if (step_nr < job.opts.min_seq_len) {
  715. // lprobs[:, :, self.eos_idx] = -INFINITY;
  716. for (size_t i = 0; i < beam_size; ++i)
  717. ggml_set_f32_1d(lprobs, vocab_size * i + eos_idx, -INFINITY);
  718. }
  719. // If we have reached the maximum length, force the last step to be EOS.
  720. // TODO: should this be done in an adhoc loop ? how often does that happen anyway ?
  721. if (step_nr == max_seq_len - 2) {
  722. // lprobs[:, :, : self.eos_idx] = -torch.inf
  723. // lprobs[:, :, self.eos_idx + 1 :] = -torch.inf
  724. for (size_t b = 0; b < beam_size; ++b) {
  725. size_t t = 0;
  726. for (t = 0; t < eos_idx; ++t)
  727. ggml_set_f32_1d(lprobs, vocab_size * b + t, -INFINITY);
  728. for (t = eos_idx + 1; t < vocab_size; ++t)
  729. ggml_set_f32_1d(lprobs, vocab_size * b + t, -INFINITY);
  730. }
  731. }
  732. // Never allow PAD.
  733. for (size_t i = 0; i < beam_size; ++i)
  734. ggml_set_f32_1d(lprobs, vocab_size * i + pad_idx, -INFINITY);
  735. // Apply UNK penalty.
  736. if (job.unk_idx >= 0 && job.opts.unk_penalty != 0) {
  737. // lprobs[:, :, self.unk_idx] -= self.opts.unk_penalty
  738. auto lprobs_raw = ggml_get_data_f32(lprobs);
  739. for (size_t i = 0; i < beam_size; ++i)
  740. lprobs_raw[vocab_size * i + job.unk_idx] -= job.opts.unk_penalty;
  741. }
  742. ggml_tensor* last_scores = ggml_slice(ctx, scores, 0, step_nr, step_nr+1);
  743. if (step_nr == start_step) {
  744. // At the initial step, all hypotheses are equally likely, so we use
  745. // only the first beam.
  746. lprobs = ggml_slice(ctx, lprobs, 1, 0, 1);
  747. lprobs = ggml_cont(ctx, lprobs);
  748. // The first step always indicates the beginning of the sequence and has no score.
  749. if (step_nr > 0) {
  750. last_scores = ggml_slice(ctx, last_scores, 1, 0, 1);
  751. lprobs = ggml_add_inplace(ctx, lprobs, ggml_repeat(ctx, last_scores, lprobs));
  752. }
  753. } else {
  754. // Make probabilities contain cumulative scores for each hypothesis.
  755. lprobs = ggml_add(ctx, lprobs, ggml_repeat(ctx, last_scores, lprobs));
  756. }
  757. gf = ggml_build_forward(lprobs);
  758. ggml_graph_compute_with_ctx(ctx, &gf, 1);
  759. // Determine candidates for the next step.
  760. // (N, 2 x B)
  761. std::int64_t K = topk(
  762. ctx, lprobs, std::min(2 * beam_size, vocab_size - 1), candidate_indices
  763. );
  764. std::size_t ongoing_beams = 0;
  765. int new_num_searches = 0;
  766. for (std::int32_t i = 0; i < K; ++i) {
  767. int c = ggml_get_f32_1d(candidate_indices, i);
  768. float tok_score = ggml_get_f32_1d(lprobs, c);
  769. int finished = _finalize_hypothesis(job, ctx, step_nr, vocab_size, c, tok_score, seqs, scores, finished_searches);
  770. new_num_searches += finished;
  771. if (!finished){
  772. std::int32_t beam = c / vocab_size;
  773. std::int32_t token = c % vocab_size;
  774. ggml_set_f32_1d(beam_indices, ongoing_beams, beam);
  775. ggml_set_f32_1d(next_tokens, ongoing_beams, token);
  776. ggml_set_f32_1d(next_scores, ongoing_beams, tok_score);
  777. ongoing_beams += 1 - finished;
  778. }
  779. if (ongoing_beams >= beam_size) break;
  780. if (finished_searches.size() >= beam_size)
  781. goto end_of_beam_search;
  782. }
  783. // Reorder beams in the `seq` and `score` buffers. The same beam can
  784. // be selected more than once.
  785. ggml_tensor* new_seqs = seqs;
  786. ggml_tensor* new_scores = scores;
  787. if (step_nr > start_step) {
  788. // (B, S), (B) -> (B, S)
  789. // ggml_get_rows and ggml_set only work with floats ...
  790. new_seqs->type = GGML_TYPE_F32;
  791. new_seqs = ggml_get_rows(ctx, seqs, beam_indices);
  792. new_scores = ggml_get_rows(ctx, scores, beam_indices);
  793. gf = ggml_build_forward(new_seqs);
  794. ggml_graph_compute_with_ctx(ctx, &gf, 1);
  795. ggml_detach(new_seqs);
  796. new_seqs->type = GGML_TYPE_I32;
  797. gf = ggml_build_forward(new_scores);
  798. ggml_graph_compute_with_ctx(ctx, &gf, 1);
  799. ggml_detach(new_scores);
  800. }
  801. // new_seqs[:, step_nr + 1] = next_tokens
  802. // new_scores[:, step_nr + 1] = next_scores
  803. for (std::size_t i = 0; i < beam_size; ++i) {
  804. ((std::int32_t*)new_seqs->data)[step_nr + 1 + i * max_seq_len] = ggml_get_i32_1d(next_tokens, i);
  805. ((float*)new_scores->data)[step_nr + 1 + i * max_seq_len] = ggml_get_f32_1d(next_scores, i);
  806. }
  807. // TODO the old seqs and score buffers could be reused for next step
  808. seqs = new_seqs;
  809. scores = new_scores;
  810. }
  811. end_of_beam_search:
  812. // Ensure that hypotheses are sorted by decreasing scores before returning.
  813. std::sort(
  814. finished_searches.begin(),
  815. finished_searches.end(),
  816. [](Hypothesis a, Hypothesis b) { return a.score > b.score; }
  817. );
  818. // For now just return the best sequence
  819. // TODO: return structured output
  820. *output_seq = *(finished_searches[0].seq);
  821. return finished_searches[0].score;
  822. }