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Upload MERaLiON3ForConditionalGeneration

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965
+ }
966
+ }
modeling_meralion3.py ADDED
@@ -0,0 +1,613 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ """PyTorch MERaLiON3 model."""
2
+
3
+ from dataclasses import dataclass
4
+ from typing import List, Optional, Tuple, Union
5
+
6
+ import torch
7
+ import torch.utils.checkpoint
8
+ from torch import nn
9
+
10
+ from transformers import Gemma2ForCausalLM
11
+ from transformers.models.whisper.modeling_whisper import WhisperEncoder
12
+ from transformers.cache_utils import HybridCache
13
+ from transformers.generation import GenerationMixin
14
+ from transformers.modeling_outputs import ModelOutput
15
+ from transformers.modeling_utils import PreTrainedModel
16
+ from transformers.utils import (
17
+ add_start_docstrings,
18
+ add_start_docstrings_to_model_forward,
19
+ logging,
20
+ replace_return_docstrings,
21
+ )
22
+
23
+ from .configuration_meralion3 import MERaLiON3Config
24
+
25
+
26
+ logger = logging.get_logger(__name__)
27
+
28
+ _CONFIG_FOR_DOC = "MERaLiON3Config"
29
+
30
+
31
+ # Copied from transformers.models.llama.modeling_llama._prepare_4d_causal_attention_mask_with_cache_position
32
+ def _prepare_4d_causal_attention_mask_with_cache_position(
33
+ attention_mask: torch.Tensor,
34
+ sequence_length: int,
35
+ target_length: int,
36
+ dtype: torch.dtype,
37
+ device: torch.device,
38
+ min_dtype: float,
39
+ cache_position: torch.Tensor,
40
+ batch_size: int,
41
+ ):
42
+ """
43
+ Creates a causal 4D mask of shape `(batch_size, 1, query_length, key_value_length)` from a 2D mask of shape
44
+ `(batch_size, key_value_length)`, or if the input `attention_mask` is already 4D, do nothing.
45
+
46
+ Args:
47
+ attention_mask (`torch.Tensor`):
48
+ A 2D attention mask of shape `(batch_size, key_value_length)` or a 4D attention mask of shape `(batch_size, 1, query_length, key_value_length)`.
49
+ sequence_length (`int`):
50
+ The sequence length being processed.
51
+ target_length (`int`):
52
+ The target length: when generating with static cache, the mask should be as long as the static cache, to account for the 0 padding, the part of the cache that is not filled yet.
53
+ dtype (`torch.dtype`):
54
+ The dtype to use for the 4D attention mask.
55
+ device (`torch.device`):
56
+ The device to plcae the 4D attention mask on.
57
+ min_dtype (`float`):
58
+ The minimum value representable with the dtype `dtype`.
59
+ cache_position (`torch.Tensor`):
60
+ Indices depicting the position of the input sequence tokens in the sequence.
61
+ batch_size (`torch.Tensor`):
62
+ Batch size.
63
+ """
64
+ if attention_mask is not None and attention_mask.dim() == 4:
65
+ # In this case we assume that the mask comes already in inverted form and requires no inversion or slicing.
66
+ causal_mask = attention_mask
67
+ else:
68
+ causal_mask = torch.full((sequence_length, target_length), fill_value=min_dtype, dtype=dtype, device=device)
69
+ if sequence_length != 1:
70
+ causal_mask = torch.triu(causal_mask, diagonal=1)
71
+ causal_mask *= torch.arange(target_length, device=device) > cache_position.reshape(-1, 1)
72
+ causal_mask = causal_mask[None, None, :, :].expand(batch_size, 1, -1, -1)
73
+ if attention_mask is not None:
74
+ causal_mask = causal_mask.clone() # copy to contiguous memory for in-place edit
75
+ mask_length = attention_mask.shape[-1]
76
+ padding_mask = causal_mask[:, :, :, :mask_length] + attention_mask[:, None, None, :]
77
+ padding_mask = padding_mask == 0
78
+ causal_mask[:, :, :, :mask_length] = causal_mask[:, :, :, :mask_length].masked_fill(
79
+ padding_mask, min_dtype
80
+ )
81
+ return causal_mask
82
+
83
+
84
+ # copied from Qwen3AudioCausalLMOutputWithPast
85
+ @dataclass
86
+ class MERaLiON3OutputWithPast(ModelOutput):
87
+ """
88
+ Base class for MERaLiON3 causal language model (or autoregressive) outputs.
89
+
90
+ Args:
91
+ loss (`torch.FloatTensor` of shape `(1,)`, *optional*, returned when `labels` is provided):
92
+ Language modeling loss (for next-token prediction).
93
+ logits (`torch.FloatTensor` of shape `(batch_size, sequence_length, config.vocab_size)`):
94
+ Prediction scores of the language modeling head (scores for each vocabulary token before SoftMax).
95
+ past_key_values (`tuple(tuple(torch.FloatTensor))`, *optional*, returned when `use_cache=True` is passed or when `config.use_cache=True`):
96
+ Tuple of `tuple(torch.FloatTensor)` of length `config.n_layers`, with each tuple having 2 tensors of shape
97
+ `(batch_size, num_heads, sequence_length, embed_size_per_head)`)
98
+
99
+ Contains pre-computed hidden-states (key and values in the self-attention blocks) that can be used (see
100
+ `past_key_values` input) to speed up sequential decoding.
101
+ hidden_states (`tuple(torch.FloatTensor)`, *optional*, returned when `output_hidden_states=True` is passed or when `config.output_hidden_states=True`):
102
+ Tuple of `torch.FloatTensor` (one for the output of the embeddings, if the model has an embedding layer, +
103
+ one for the output of each layer) of shape `(batch_size, sequence_length, hidden_size)`.
104
+
105
+ Hidden-states of the model at the output of each layer plus the optional initial embedding outputs.
106
+ attentions (`tuple(torch.FloatTensor)`, *optional*, returned when `output_attentions=True` is passed or when `config.output_attentions=True`):
107
+ Tuple of `torch.FloatTensor` (one for each layer) of shape `(batch_size, num_heads, sequence_length,
108
+ sequence_length)`.
109
+
110
+ Attentions weights after the attention softmax, used to compute the weighted average in the self-attention
111
+ heads.
112
+ attention_mask (`torch.FloatTensor`, *optional*):
113
+ Attentions mask, used to update attention mask and position_ids.
114
+ """
115
+
116
+ loss: Optional[torch.FloatTensor] = None
117
+ logits: torch.FloatTensor = None
118
+ past_key_values: Optional[List[torch.FloatTensor]] = None
119
+ hidden_states: Optional[Tuple[torch.FloatTensor]] = None
120
+ attentions: Optional[Tuple[torch.FloatTensor]] = None
121
+ attention_mask: Optional[torch.FloatTensor] = None
122
+
123
+
124
+ MERALION_START_DOCSTRING = r"""
125
+ This model inherits from [`PreTrainedModel`]. Check the superclass documentation for the generic methods the
126
+ library implements for all its model (such as downloading or saving, resizing the input embeddings, pruning heads
127
+ etc.)
128
+
129
+ This model is also a PyTorch [torch.nn.Module](https://pytorch.org/docs/stable/nn.html#torch.nn.Module) subclass.
130
+ Use it as a regular PyTorch Module and refer to the PyTorch documentation for all matter related to general usage
131
+ and behavior.
132
+
133
+ Parameters:
134
+ config ([`MERaLiON3Config`]):
135
+ Model configuration class with all the parameters of the model. Initializing with a config file does not
136
+ load the weights associated with the model, only the configuration. Check out the
137
+ [`~PreTrainedModel.from_pretrained`] method to load the model weights.
138
+ """
139
+
140
+
141
+ @add_start_docstrings(
142
+ "The bare MERaLiON3 Model outputting raw hidden-states without any specific head on top.",
143
+ MERALION_START_DOCSTRING,
144
+ )
145
+ class MERaLiON3PreTrainedModel(PreTrainedModel):
146
+ config_class = MERaLiON3Config
147
+ base_model_prefix = "model"
148
+ supports_gradient_checkpointing = True
149
+ _no_split_modules = ["WhisperEncoderLayer", "WhisperDecoderLayer", "Gemma2DecoderLayer"]
150
+ _supports_flash_attn_2 = True
151
+ _supports_sdpa = True
152
+ _supports_cache_class = True
153
+ _supports_static_cache = True
154
+
155
+ def _init_weights(self, module):
156
+ # important: this ported version of Qwen2Audio isn't meant for training from scratch - only
157
+ # inference and fine-tuning - so the proper init weights code has been removed
158
+ std = self.config.init_std if hasattr(self.config, "init_std") else self.config.speech_config.init_std
159
+
160
+ if isinstance(module, (nn.Linear, nn.Conv1d)):
161
+ module.weight.data.normal_(mean=0.0, std=std)
162
+ if module.bias is not None:
163
+ module.bias.data.zero_()
164
+ elif isinstance(module, nn.Embedding):
165
+ module.weight.data.normal_(mean=0.0, std=std)
166
+ if module.padding_idx is not None:
167
+ module.weight.data[module.padding_idx].zero_()
168
+
169
+ @property
170
+ def _supports_sdpa(self):
171
+ """
172
+ Retrieve language_model's attribute to check whether the model supports
173
+ SDPA or not.
174
+ """
175
+ # During initialization, text_decoder may not exist yet, so fall back to True
176
+ if hasattr(self, 'text_decoder'):
177
+ return self.text_decoder._supports_sdpa
178
+ return True
179
+
180
+ class MERaLiON3SpeechAudioAdaper(nn.Module):
181
+ def __init__(
182
+ self,
183
+ config,
184
+ **kwargs
185
+ ):
186
+ super(MERaLiON3SpeechAudioAdaper, self).__init__()
187
+ speech_audio_encoder_output_dim = config.speech_config.d_model
188
+ llm_input_hidden_size = config.text_config.hidden_size
189
+ speech_mlp_scale_factor = config.speech_mlp_scale_factor
190
+
191
+ self.speech_mlp_scale_factor = speech_mlp_scale_factor
192
+ self.mlp_adapter = nn.Sequential(
193
+ nn.Linear(
194
+ in_features=speech_audio_encoder_output_dim * speech_mlp_scale_factor,
195
+ out_features=speech_audio_encoder_output_dim
196
+ ),
197
+ nn.SiLU(),
198
+ nn.Dropout(0.1),
199
+ )
200
+
201
+ self.speech_llm_proj = nn.Sequential(
202
+ nn.Linear(
203
+ speech_audio_encoder_output_dim,
204
+ speech_audio_encoder_output_dim * 4
205
+ ),
206
+ nn.SiLU(),
207
+ nn.Dropout(0.1),
208
+
209
+ nn.Linear(
210
+ speech_audio_encoder_output_dim * 4,
211
+ llm_input_hidden_size
212
+ ),
213
+ )
214
+
215
+ def forward(self, speech_embeds, **kwargs):
216
+ B, T, C = speech_embeds.shape
217
+ speech_embeds = self.mlp_adapter(
218
+ speech_embeds.reshape(
219
+ B,
220
+ T // self.speech_mlp_scale_factor,
221
+ C * self.speech_mlp_scale_factor,
222
+ )
223
+ )
224
+ return self.speech_llm_proj(speech_embeds)
225
+
226
+
227
+ class MERaLiON3SpeechAudioAdaperLarge(nn.Module):
228
+ def __init__(
229
+ self,
230
+ config,
231
+ **kwargs
232
+ ):
233
+ super(MERaLiON3SpeechAudioAdaperLarge, self).__init__()
234
+ speech_audio_encoder_output_dim = config.speech_config.d_model
235
+ llm_input_hidden_size = config.text_config.hidden_size
236
+
237
+ self.speech_mlp_use_projection = config.speech_mlp_use_projection
238
+ self.speech_mlp_scale_factor = config.speech_mlp_scale_factor
239
+
240
+ self.mlp_adapter = nn.Sequential(
241
+ nn.Linear(
242
+ in_features=speech_audio_encoder_output_dim * self.speech_mlp_scale_factor,
243
+ out_features=speech_audio_encoder_output_dim * 5,
244
+ ),
245
+ nn.SiLU(),
246
+ nn.Dropout(0.01),
247
+ )
248
+
249
+ if self.speech_mlp_use_projection:
250
+ self.gate_proj = nn.Linear(
251
+ in_features=speech_audio_encoder_output_dim * 5,
252
+ out_features=speech_audio_encoder_output_dim * 5,
253
+ )
254
+
255
+ self.pool_proj = nn.Linear(
256
+ in_features=speech_audio_encoder_output_dim * 5,
257
+ out_features=speech_audio_encoder_output_dim * 5,
258
+ )
259
+ self.act_fn = nn.SiLU()
260
+
261
+ self.out_proj = nn.Linear(
262
+ speech_audio_encoder_output_dim * 5,
263
+ llm_input_hidden_size,
264
+ )
265
+
266
+
267
+ def forward(self, speech_embeds, **kwargs):
268
+ B, T, C = speech_embeds.shape
269
+ speech_embeds = self.mlp_adapter(
270
+ speech_embeds.reshape(
271
+ B,
272
+ T // self.speech_mlp_scale_factor,
273
+ C * self.speech_mlp_scale_factor,
274
+ )
275
+ )
276
+ if self.speech_mlp_use_projection:
277
+ speech_embeds = self.act_fn(self.gate_proj(speech_embeds)) * self.pool_proj(speech_embeds)
278
+ speech_embeds = self.out_proj(speech_embeds)
279
+ return speech_embeds
280
+
281
+
282
+ MERALION_INPUTS_DOCSTRING = r"""
283
+ Args:
284
+ input_ids (`torch.LongTensor` of shape `(batch_size, sequence_length)`):
285
+ Indices of input sequence tokens in the vocabulary. Padding will be ignored by default should you provide
286
+ it.
287
+
288
+ Indices can be obtained using [`AutoTokenizer`]. See [`PreTrainedTokenizer.encode`] and
289
+ [`PreTrainedTokenizer.__call__`] for details.
290
+
291
+ [What are input IDs?](../glossary#input-ids)
292
+ input_features (`torch.FloatTensor` of shape `(batch_size, feature_size, feature_sequence_length)`, *optional*):
293
+ Float values mel features extracted from the raw speech waveform. Raw speech waveform can be obtained by
294
+ loading a `.flac` or `.wav` audio file into an array of type `List[float]` or a `numpy.ndarray`, *e.g.* via
295
+ the soundfile library (`pip install soundfile`). To prepare the array into `input_features`, the
296
+ [`AutoFeatureExtractor`] should be used for extracting the mel features, padding and conversion into a
297
+ tensor of type `torch.FloatTensor`. See [`~WhisperFeatureExtractor.__call__`]
298
+ attention_mask (`torch.Tensor` of shape `(batch_size, sequence_length)`, *optional*):
299
+ Mask to avoid performing attention on padding token indices. Mask values selected in `[0, 1]`:
300
+
301
+ - 1 for tokens that are **not masked**,
302
+ - 0 for tokens that are **masked**.
303
+
304
+ [What are attention masks?](../glossary#attention-mask)
305
+
306
+ Indices can be obtained using [`AutoTokenizer`]. See [`PreTrainedTokenizer.encode`] and
307
+ [`PreTrainedTokenizer.__call__`] for details.
308
+
309
+ If `past_key_values` is used, optionally only the last `decoder_input_ids` have to be input (see
310
+ `past_key_values`).
311
+
312
+ If you want to change padding behavior, you should read [`modeling_opt._prepare_decoder_attention_mask`]
313
+ and modify to your needs. See diagram 1 in [the paper](https://arxiv.org/abs/1910.13461) for more
314
+ information on the default strategy.
315
+
316
+ - 1 indicates the head is **not masked**,
317
+ - 0 indicates the head is **masked**.
318
+ feature_attention_mask (`torch.Tensor` of shape `(batch_size, feature_sequence_length)`, *optional*):
319
+ Mask to avoid performing attention on padding feature indices. Mask values selected in `[0, 1]`:
320
+
321
+ - 1 for tokens that are **not masked**,
322
+ - 0 for tokens that are **masked**.
323
+ position_ids (`torch.LongTensor` of shape `(batch_size, sequence_length)`, *optional*):
324
+ Indices of positions of each input sequence tokens in the position embeddings. Selected in the range `[0,
325
+ config.n_positions - 1]`. [What are position IDs?](../glossary#position-ids)
326
+ past_key_values (`tuple(tuple(torch.FloatTensor))`, *optional*, returned when `use_cache=True` is passed or when `config.use_cache=True`):
327
+ Tuple of `tuple(torch.FloatTensor)` of length `config.n_layers`, with each tuple having 2 tensors of shape
328
+ `(batch_size, num_heads, sequence_length, embed_size_per_head)`) and 2 additional tensors of shape
329
+ `(batch_size, num_heads, encoder_sequence_length, embed_size_per_head)`.
330
+
331
+ Contains pre-computed hidden-states (key and values in the self-attention blocks and in the cross-attention
332
+ blocks) that can be used (see `past_key_values` input) to speed up sequential decoding.
333
+
334
+ If `past_key_values` are used, the user can optionally input only the last `decoder_input_ids` (those that
335
+ don't have their past key value states given to this model) of shape `(batch_size, 1)` instead of all
336
+ `decoder_input_ids` of shape `(batch_size, sequence_length)`.
337
+ inputs_embeds (`torch.FloatTensor` of shape `(batch_size, sequence_length, hidden_size)`, *optional*):
338
+ Optionally, instead of passing `input_ids` you can choose to directly pass an embedded representation. This
339
+ is useful if you want more control over how to convert `input_ids` indices into associated vectors than the
340
+ model's internal embedding lookup matrix.
341
+ use_cache (`bool`, *optional*):
342
+ If set to `True`, `past_key_values` key value states are returned and can be used to speed up decoding (see
343
+ `past_key_values`).
344
+ output_attentions (`bool`, *optional*):
345
+ Whether or not to return the attentions tensors of all attention layers. See `attentions` under returned
346
+ tensors for more detail.
347
+ output_hidden_states (`bool`, *optional*):
348
+ Whether or not to return the hidden states of all layers. See `hidden_states` under returned tensors for
349
+ more detail.
350
+ return_dict (`bool`, *optional*):
351
+ Whether or not to return a [`~utils.ModelOutput`] instead of a plain tuple.
352
+ """
353
+
354
+ class MERaLiON3SpeechLayerWeightedSum(nn.Module):
355
+ """Weighted sum over speech encoder hidden states across all layers."""
356
+
357
+ def __init__(self, num_layers: int):
358
+ super().__init__()
359
+ self.weights = nn.Parameter(torch.zeros(num_layers))
360
+
361
+ def forward(self, hidden_states: tuple) -> torch.Tensor:
362
+ norm_weights = torch.softmax(self.weights, dim=-1)
363
+ stacked = torch.stack(list(hidden_states), dim=0) # [num_layers, batch, seq, hidden]
364
+ origin_shape = stacked.shape[1:]
365
+ num_layers = stacked.shape[0]
366
+ stacked = stacked.view(num_layers, -1)
367
+ result = (norm_weights.unsqueeze(-1) * stacked).sum(dim=0)
368
+ return result.view(origin_shape)
369
+
370
+
371
+ @add_start_docstrings(
372
+ """The MERALION model which consists of a audio backbone and a language model.""",
373
+ MERALION_START_DOCSTRING,
374
+ )
375
+ class MERaLiON3ForConditionalGeneration(MERaLiON3PreTrainedModel, GenerationMixin):
376
+ def __init__(self, config: MERaLiON3Config):
377
+ config.text_config._attn_implementation = config._attn_implementation
378
+ config.speech_config._attn_implementation = config._attn_implementation
379
+
380
+ super().__init__(config)
381
+
382
+ self.speech_encoder = WhisperEncoder(config.speech_config)
383
+ # self.speech_encoder = AutoModel.from_config(config.audio_config, attn_implementation=config._attn_implementation)
384
+
385
+ if config.speech_config.use_weighted_layer_sum:
386
+ self.speech_encoder_layer_weighted_sum = MERaLiON3SpeechLayerWeightedSum(
387
+ num_layers=config.speech_config.encoder_layers
388
+ )
389
+
390
+ self.ln_speech = nn.LayerNorm(config.speech_config.d_model)
391
+ self.speech_audio_adapter = MERaLiON3SpeechAudioAdaperLarge(config)
392
+ self.vocab_size = config.text_config.vocab_size
393
+ self.text_decoder = Gemma2ForCausalLM(config.text_config)
394
+ self.pad_token_id = self.config.pad_token_id if self.config.pad_token_id is not None else -1
395
+ self._padding_side = "left" # set it to left by default, user can use setter to change padding_sides
396
+ self.post_init()
397
+
398
+ @property
399
+ def padding_side(self):
400
+ return self._padding_side
401
+
402
+ @padding_side.setter
403
+ def padding_side(self, padding_side: str):
404
+ if padding_side not in ["left", "right"]:
405
+ raise ValueError(f"{padding_side} is not `left` or `right`.")
406
+ self._padding_side = padding_side
407
+
408
+ # Copied from transformers.models.llava.modeling_llava.LlavaForConditionalGeneration.get_input_embeddings
409
+ def get_input_embeddings(self):
410
+ return self.text_decoder.get_input_embeddings()
411
+
412
+ # Copied from transformers.models.llava.modeling_llava.LlavaForConditionalGeneration.set_input_embeddings
413
+ def set_input_embeddings(self, value):
414
+ self.text_decoder.set_input_embeddings(value)
415
+
416
+ # Copied from transformers.models.llava.modeling_llava.LlavaForConditionalGeneration.get_output_embeddings
417
+ def get_output_embeddings(self):
418
+ return self.text_decoder.get_output_embeddings()
419
+
420
+ # Copied from transformers.models.llava.modeling_llava.LlavaForConditionalGeneration.set_output_embeddings
421
+ def set_output_embeddings(self, new_embeddings):
422
+ self.text_decoder.set_output_embeddings(new_embeddings)
423
+
424
+ # Copied from transformers.models.llava.modeling_llava.LlavaForConditionalGeneration.set_decoder
425
+ def set_decoder(self, decoder):
426
+ self.text_decoder.set_decoder(decoder)
427
+
428
+ # Copied from transformers.models.llava.modeling_llava.LlavaForConditionalGeneration.get_decoder
429
+ def get_decoder(self):
430
+ return self.text_decoder.get_decoder()
431
+
432
+ # Copied from transformers.models.llava.modeling_llava.LlavaForConditionalGeneration.tie_weights
433
+ def tie_weights(self):
434
+ return self.text_decoder.tie_weights()
435
+
436
+ # Copied from transformers.models.llava.modeling_llava.LlavaForConditionalGeneration.resize_token_embeddings
437
+ def resize_token_embeddings(self, new_num_tokens: Optional[int] = None, pad_to_multiple_of=None) -> nn.Embedding:
438
+ model_embeds = self.text_decoder.resize_token_embeddings(new_num_tokens, pad_to_multiple_of)
439
+ # update vocab size
440
+ self.config.text_config.vocab_size = model_embeds.num_embeddings
441
+ self.vocab_size = model_embeds.num_embeddings
442
+ return model_embeds
443
+
444
+ @add_start_docstrings_to_model_forward(MERALION_INPUTS_DOCSTRING)
445
+ @replace_return_docstrings(output_type=MERaLiON3OutputWithPast, config_class=_CONFIG_FOR_DOC)
446
+ def forward(
447
+ self,
448
+ input_ids: torch.LongTensor = None,
449
+ input_features: torch.FloatTensor = None,
450
+ attention_mask: Optional[torch.Tensor] = None,
451
+ feature_attention_mask: Optional[torch.Tensor] = None,
452
+ position_ids: Optional[torch.LongTensor] = None,
453
+ past_key_values: Optional[List[torch.FloatTensor]] = None,
454
+ inputs_embeds: Optional[torch.FloatTensor] = None,
455
+ labels: Optional[torch.LongTensor] = None,
456
+ use_cache: Optional[bool] = None,
457
+ cache_position: Optional[torch.LongTensor] = None,
458
+ output_attentions: Optional[bool] = None,
459
+ output_hidden_states: Optional[bool] = None,
460
+ return_dict: Optional[bool] = None,
461
+ ) -> Union[Tuple, MERaLiON3OutputWithPast]:
462
+ r"""
463
+ Args:
464
+ labels (`torch.LongTensor` of shape `(batch_size, sequence_length)`, *optional*):
465
+ Labels for computing the masked language modeling loss. Indices should either be in `[0, ...,
466
+ config.vocab_size]` or -100 (see `input_ids` docstring). Tokens with indices set to `-100` are ignored
467
+ (masked), the loss is only computed for the tokens with labels in `[0, ..., config.vocab_size]`.
468
+
469
+ Returns:
470
+ """
471
+
472
+ output_attentions = output_attentions if output_attentions is not None else self.config.output_attentions
473
+ output_hidden_states = (
474
+ output_hidden_states if output_hidden_states is not None else self.config.output_hidden_states
475
+ )
476
+ return_dict = return_dict if return_dict is not None else self.config.use_return_dict
477
+
478
+ speech_encoder_device = self.speech_encoder.device
479
+
480
+ if input_features is not None:
481
+ input_features = input_features.to(speech_encoder_device)
482
+ feature_attention_mask = feature_attention_mask.to(speech_encoder_device)
483
+
484
+ if inputs_embeds is None:
485
+ if self.config.speech_config.use_weighted_layer_sum:
486
+ speech_encoder_output = self.speech_encoder(
487
+ input_features,
488
+ attention_mask=feature_attention_mask,
489
+ output_hidden_states=True,
490
+ )
491
+ # hidden_states[0] is the input embedding; [1:] are the per-layer outputs
492
+ speech_contexts_embeds = self.speech_encoder_layer_weighted_sum(
493
+ speech_encoder_output.hidden_states[1:]
494
+ )
495
+ else:
496
+ speech_contexts_embeds = self.speech_encoder(
497
+ input_features, attention_mask=feature_attention_mask
498
+ ).last_hidden_state
499
+ speech_contexts_embeds = self.ln_speech(speech_contexts_embeds)
500
+ speech_audio_contexts_embeds = self.speech_audio_adapter(speech_contexts_embeds)
501
+
502
+ inputs_embeds = self.text_decoder.base_model.embed_tokens(input_ids)
503
+
504
+ speech_mask = (input_ids == self.config.speech_token_index).unsqueeze(-1)
505
+ speech_mask = speech_mask.expand_as(inputs_embeds).to(inputs_embeds.device)
506
+
507
+ inputs_embeds = inputs_embeds.masked_scatter(speech_mask, speech_audio_contexts_embeds)
508
+
509
+ input_ids = None
510
+
511
+ outputs = self.text_decoder(
512
+ input_ids=input_ids,
513
+ attention_mask=attention_mask,
514
+ position_ids=position_ids,
515
+ past_key_values=past_key_values,
516
+ inputs_embeds=inputs_embeds,
517
+ use_cache=use_cache,
518
+ cache_position=cache_position,
519
+ output_attentions=output_attentions,
520
+ output_hidden_states=output_hidden_states,
521
+ return_dict=return_dict,
522
+ labels=labels
523
+ )
524
+
525
+ return outputs
526
+
527
+ # from transformers.models.gemma2.modeling_gemma2.Gemma2ForCausalLM.prepare_inputs_for_generation
528
+ def prepare_inputs_for_generation(
529
+ self,
530
+ input_ids,
531
+ attention_mask=None,
532
+ input_features=None,
533
+ feature_attention_mask=None,
534
+ past_key_values=None,
535
+ inputs_embeds=None,
536
+ cache_position=None,
537
+ position_ids=None,
538
+ use_cache=None,
539
+ **kwargs,
540
+ ):
541
+ # If we have cache: let's slice `input_ids` through `cache_position`, to keep only the unprocessed tokens
542
+ # Exception 1: when passing input_embeds, input_ids may be missing entries
543
+ # Exception 2: some generation methods do special slicing of input_ids, so we don't need to do it here
544
+ is_first_step = cache_position[0].item() == 0
545
+ if past_key_values is not None:
546
+ if inputs_embeds is not None: # Exception 1
547
+ input_ids = input_ids[:, -cache_position.shape[0] :]
548
+ elif input_ids.shape[1] != cache_position.shape[0]: # Default case (the "else", a no op, is Exception 2)
549
+ input_ids = input_ids[:, cache_position]
550
+
551
+ if attention_mask is not None and position_ids is None:
552
+ # create position_ids on the fly for batch generation
553
+ position_ids = attention_mask.long().cumsum(-1) - 1
554
+ position_ids.masked_fill_(attention_mask == 0, 1)
555
+ if past_key_values:
556
+ position_ids = position_ids[:, -input_ids.shape[1] :]
557
+ # This `clone` call is needed to avoid recapturing cuda graphs with `torch.compile`'s
558
+ # `mode="reduce-overhead`, as otherwise the input `position_ids` would have various stride
559
+ # during the decoding. Here, simply using `.contiguous()` is not sufficient as in the
560
+ # batch size = 1 case, `position_ids` is already contiguous but with varying stride
561
+ # which retriggers a capture.
562
+ position_ids = position_ids.clone(memory_format=torch.contiguous_format)
563
+
564
+ # if `inputs_embeds` are passed, we only want to use them in the 1st generation step
565
+ if inputs_embeds is not None and is_first_step:
566
+ model_inputs = {"inputs_embeds": inputs_embeds, "input_ids": None}
567
+ else:
568
+ # The clone here is for the same reason as for `position_ids`.
569
+ model_inputs = {"input_ids": input_ids.clone(memory_format=torch.contiguous_format), "inputs_embeds": None}
570
+
571
+ if (
572
+ isinstance(past_key_values, HybridCache)
573
+ and attention_mask.ndim == 2
574
+ and not self.config._attn_implementation == "flash_attention_2"
575
+ ):
576
+ if model_inputs["inputs_embeds"] is not None:
577
+ batch_size, sequence_length, _ = model_inputs["inputs_embeds"].shape
578
+ device = model_inputs["inputs_embeds"].device
579
+ else:
580
+ batch_size, sequence_length = model_inputs["input_ids"].shape
581
+ device = model_inputs["input_ids"].device
582
+ dtype = self.text_decoder.lm_head.weight.dtype
583
+ min_dtype = torch.finfo(dtype).min
584
+ attention_mask = _prepare_4d_causal_attention_mask_with_cache_position(
585
+ attention_mask,
586
+ sequence_length=sequence_length,
587
+ target_length=past_key_values.get_max_cache_shape(),
588
+ dtype=dtype,
589
+ device=device,
590
+ min_dtype=min_dtype,
591
+ cache_position=cache_position,
592
+ batch_size=batch_size,
593
+ )
594
+
595
+ model_inputs.update(
596
+ {
597
+ "attention_mask": attention_mask,
598
+ "position_ids": position_ids,
599
+ "cache_position": cache_position,
600
+ "past_key_values": past_key_values,
601
+ "use_cache": use_cache
602
+ }
603
+ )
604
+
605
+ # Input ids will only be used from the second step.
606
+ if is_first_step:
607
+ model_inputs["input_features"] = input_features
608
+ model_inputs["feature_attention_mask"] = feature_attention_mask
609
+
610
+ return model_inputs
611
+
612
+ def _reorder_cache(self, *args, **kwargs):
613
+ return self.text_decoder._reorder_cache(*args, **kwargs)