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+ # Copyright (c) OpenMMLab. All rights reserved.
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+ from transformers import PretrainedConfig
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+
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+ model_type = 'projector'
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+ # Copyright (c) OpenMMLab. All rights reserved.
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+ import torch
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+ import torch.nn as nn
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+ ],
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+ "bos_token": "<s>",
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+ "chat_template": "{{ bos_token }}{% for message in messages %}{% if (message['role'] == 'system') %}{{'<|system|>' + '\n' + message['content'] + '<|end|>' + '\n'}}{% elif (message['role'] == 'user') %}{{'<|user|>' + '\n' + message['content'] + '<|end|>' + '\n' + '<|assistant|>' + '\n'}}{% elif message['role'] == 'assistant' %}{{message['content'] + '<|end|>' + '\n'}}{% endif %}{% endfor %}",
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+ "clean_up_tokenization_spaces": false,
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+ "legacy": false,
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+ "pad_token": "<|endoftext|>",
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+ "sp_model_kwargs": {},
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+ "tokenizer_class": "LlamaTokenizer",
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+ "unk_token": "<unk>",
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+ "use_default_system_prompt": false
349
+ }
visual_encoder/config.json ADDED
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+ {
2
+ "_name_or_path": "openai/clip-vit-large-patch14-336",
3
+ "architectures": [
4
+ "CLIPVisionModel"
5
+ ],
6
+ "attention_dropout": 0.0,
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+ "dropout": 0.0,
8
+ "hidden_act": "quick_gelu",
9
+ "hidden_size": 1024,
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+ "image_size": 336,
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+ "initializer_factor": 1.0,
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+ "initializer_range": 0.02,
13
+ "intermediate_size": 4096,
14
+ "layer_norm_eps": 1e-05,
15
+ "model_type": "clip_vision_model",
16
+ "num_attention_heads": 16,
17
+ "num_channels": 3,
18
+ "num_hidden_layers": 24,
19
+ "patch_size": 14,
20
+ "projection_dim": 768,
21
+ "torch_dtype": "float32",
22
+ "transformers_version": "4.40.1"
23
+ }
visual_encoder/model.safetensors ADDED
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+ version https://git-lfs.github.com/spec/v1
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+ oid sha256:23a3ca20287302a7d390cf7a90380731c2e28eb690ebf2c2f616c5a30fe66627
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+ size 1214077616
visual_encoder/preprocessor_config.json ADDED
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+ {
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+ "_valid_processor_keys": [
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+ "images",
4
+ "do_resize",
5
+ "size",
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+ "resample",
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+ "do_center_crop",
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+ "crop_size",
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+ "do_rescale",
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+ "rescale_factor",
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+ "do_normalize",
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+ "image_mean",
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+ "image_std",
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+ "do_convert_rgb",
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+ "return_tensors",
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+ "data_format",
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+ "input_data_format"
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+ ],
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+ "crop_size": {
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+ "height": 336,
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+ "width": 336
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+ },
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+ "do_center_crop": true,
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+ "do_convert_rgb": true,
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+ "do_normalize": true,
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+ "do_rescale": true,
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+ "do_resize": true,
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+ "image_mean": [
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+ 0.48145466,
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+ 0.4578275,
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+ 0.40821073
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+ ],
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+ "image_processor_type": "CLIPImageProcessor",
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+ "image_std": [
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+ 0.26862954,
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+ 0.26130258,
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+ 0.27577711
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+ ],
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+ "resample": 3,
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+ "rescale_factor": 0.00392156862745098,
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+ "size": {
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+ "shortest_edge": 336
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+ }
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+ }
xtuner_config.py ADDED
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1
+ # Copyright (c) OpenMMLab. All rights reserved.
2
+ from mmengine.hooks import (CheckpointHook, DistSamplerSeedHook, IterTimerHook,
3
+ LoggerHook, ParamSchedulerHook)
4
+ from mmengine.optim import AmpOptimWrapper, CosineAnnealingLR, LinearLR
5
+ from torch.optim import AdamW
6
+ from transformers import (AutoModelForCausalLM, AutoTokenizer,
7
+ CLIPImageProcessor, CLIPVisionModel)
8
+
9
+ from xtuner.dataset import ConcatDataset, LLaVADataset
10
+ from xtuner.dataset.collate_fns import default_collate_fn
11
+ from xtuner.dataset.map_fns import llava_map_fn, template_map_fn_factory
12
+ from xtuner.dataset.samplers import LengthGroupedSampler
13
+ from xtuner.engine.hooks import DatasetInfoHook, EvaluateChatHook
14
+ from xtuner.engine.runner import TrainLoop
15
+ from xtuner.model import LLaVAModel
16
+ from xtuner.utils import PROMPT_TEMPLATE
17
+
18
+ #######################################################################
19
+ # PART 1 Settings #
20
+ #######################################################################
21
+ # Model
22
+ llm_name_or_path = 'microsoft/Phi-3-mini-4k-instruct'
23
+ visual_encoder_name_or_path = 'openai/clip-vit-large-patch14-336'
24
+ # Specify the pretrained pth
25
+ pretrained_pth = './work_dirs/llava_phi3_mini_4k_instruct_clip_vit_large_p14_336_e1_gpu8_sharegpt4v_pretrain/iter_9742.pth' # noqa: E501
26
+ # Data
27
+ data_root = './data/internvl_sft/'
28
+
29
+ sharegpt4v_caption_data_path = data_root + 'sharegpt4v_instruct_gpt4-vision_cap100k.jsonl' # noqa: E501
30
+ sharegpt4v_caption_image_folder = data_root + 'data'
31
+
32
+ llava_data_path = data_root + 'llava_instruct_150k_zh.jsonl'
33
+ llava_image_folder = data_root + 'data/coco'
34
+
35
+ sharegpt4v_data_path = data_root + 'sharegpt4v_mix665k_cap23k_coco-ap9k_lcs3k_sam9k_div2k.jsonl' # noqa: E501
36
+ sharegpt4v_image_folder = data_root + 'data'
37
+
38
+ dvqa_data_path = data_root + 'dvqa_train_200k.jsonl'
39
+ dvqa_image_folder = data_root + 'data/dvqa'
40
+
41
+ chartqa_data_path = data_root + 'chartqa_train_18k.jsonl'
42
+ chartqa_image_folder = data_root + 'data/chartqa'
43
+
44
+ ai2d_data_path = data_root + 'ai2d_train_12k.jsonl'
45
+ ai2d_image_folder = data_root + 'data/ai2d'
46
+
47
+ docvqa_data_path = data_root + 'docvqa_train_10k.jsonl'
48
+ docvqa_image_folder = data_root + 'data/docvqa'
49
+
50
+ geoqa_data_path = data_root + 'geoqa+.jsonl'
51
+ geoqa_image_folder = data_root + 'data/geoqa+'
52
+
53
+ synthdog_data_path = data_root + 'synthdog_en.jsonl'
54
+ synthdog_image_folder = data_root + 'data/synthdog-en'
55
+
56
+ prompt_template = PROMPT_TEMPLATE.phi3_chat
57
+ max_length = int(4096 - (336 / 14)**2)
58
+
59
+ # Scheduler & Optimizer
60
+ batch_size = 8 # per_device
61
+ accumulative_counts = 2
62
+ dataloader_num_workers = 4
63
+ max_epochs = 2
64
+ optim_type = AdamW
65
+ lr = 2e-5
66
+ betas = (0.9, 0.999)
67
+ weight_decay = 0
68
+ max_norm = 1 # grad clip
69
+ warmup_ratio = 0.03
70
+
71
+ # Save
72
+ save_steps = 5000
73
+ save_total_limit = 2 # Maximum checkpoints to keep (-1 means unlimited)
74
+
75
+ # Evaluate the generation performance during the training
76
+ evaluation_freq = 5000
77
+ SYSTEM = ''
78
+ evaluation_images = 'https://llava-vl.github.io/static/images/view.jpg'
79
+ evaluation_inputs = ['请描述一下这张照片', 'Please describe this picture']
80
+
81
+ #######################################################################
82
+ # PART 2 Model & Tokenizer & Image Processor #
83
+ #######################################################################
84
+ tokenizer = dict(
85
+ type=AutoTokenizer.from_pretrained,
86
+ pretrained_model_name_or_path=llm_name_or_path,
87
+ trust_remote_code=True,
88
+ padding_side='right')
89
+
90
+ image_processor = dict(
91
+ type=CLIPImageProcessor.from_pretrained,
92
+ pretrained_model_name_or_path=visual_encoder_name_or_path,
93
+ trust_remote_code=True)
94
+
95
+ model = dict(
96
+ type=LLaVAModel,
97
+ freeze_llm=False,
98
+ freeze_visual_encoder=False,
99
+ pretrained_pth=pretrained_pth,
100
+ llm=dict(
101
+ type=AutoModelForCausalLM.from_pretrained,
102
+ pretrained_model_name_or_path=llm_name_or_path,
103
+ trust_remote_code=True),
104
+ visual_encoder=dict(
105
+ type=CLIPVisionModel.from_pretrained,
106
+ pretrained_model_name_or_path=visual_encoder_name_or_path))
107
+
108
+ #######################################################################
109
+ # PART 3 Dataset & Dataloader #
110
+ #######################################################################
111
+ sharegpt4v_caption_dataset = dict(
112
+ type=LLaVADataset,
113
+ data_path=sharegpt4v_caption_data_path,
114
+ image_folder=sharegpt4v_caption_image_folder,
115
+ tokenizer=tokenizer,
116
+ image_processor=image_processor,
117
+ dataset_map_fn=llava_map_fn,
118
+ template_map_fn=dict(
119
+ type=template_map_fn_factory, template=prompt_template),
120
+ max_length=max_length,
121
+ pad_image_to_square=True)
122
+
123
+ llava_dataset = dict(
124
+ type=LLaVADataset,
125
+ data_path=llava_data_path,
126
+ image_folder=llava_image_folder,
127
+ tokenizer=tokenizer,
128
+ image_processor=image_processor,
129
+ dataset_map_fn=llava_map_fn,
130
+ template_map_fn=dict(
131
+ type=template_map_fn_factory, template=prompt_template),
132
+ max_length=max_length,
133
+ pad_image_to_square=True)
134
+
135
+ sharegpt4v_dataset = dict(
136
+ type=LLaVADataset,
137
+ data_path=sharegpt4v_data_path,
138
+ image_folder=sharegpt4v_image_folder,
139
+ tokenizer=tokenizer,
140
+ image_processor=image_processor,
141
+ dataset_map_fn=llava_map_fn,
142
+ template_map_fn=dict(
143
+ type=template_map_fn_factory, template=prompt_template),
144
+ max_length=max_length,
145
+ pad_image_to_square=True)
146
+
147
+ dvqa_dataset = dict(
148
+ type=LLaVADataset,
149
+ data_path=dvqa_data_path,
150
+ image_folder=dvqa_image_folder,
151
+ tokenizer=tokenizer,
152
+ image_processor=image_processor,
153
+ dataset_map_fn=llava_map_fn,
154
+ template_map_fn=dict(
155
+ type=template_map_fn_factory, template=prompt_template),
156
+ max_length=max_length,
157
+ pad_image_to_square=True)
158
+
159
+ chartqa_dataset = dict(
160
+ type=LLaVADataset,
161
+ data_path=chartqa_data_path,
162
+ image_folder=chartqa_image_folder,
163
+ tokenizer=tokenizer,
164
+ image_processor=image_processor,
165
+ dataset_map_fn=llava_map_fn,
166
+ template_map_fn=dict(
167
+ type=template_map_fn_factory, template=prompt_template),
168
+ max_length=max_length,
169
+ pad_image_to_square=True)
170
+
171
+ ai2d_dataset = dict(
172
+ type=LLaVADataset,
173
+ data_path=ai2d_data_path,
174
+ image_folder=ai2d_image_folder,
175
+ tokenizer=tokenizer,
176
+ image_processor=image_processor,
177
+ dataset_map_fn=llava_map_fn,
178
+ template_map_fn=dict(
179
+ type=template_map_fn_factory, template=prompt_template),
180
+ max_length=max_length,
181
+ pad_image_to_square=True)
182
+
183
+ docvqa_dataset = dict(
184
+ type=LLaVADataset,
185
+ data_path=docvqa_data_path,
186
+ image_folder=docvqa_image_folder,
187
+ tokenizer=tokenizer,
188
+ image_processor=image_processor,
189
+ dataset_map_fn=llava_map_fn,
190
+ template_map_fn=dict(
191
+ type=template_map_fn_factory, template=prompt_template),
192
+ max_length=max_length,
193
+ pad_image_to_square=True)
194
+
195
+ geoqa_dataset = dict(
196
+ type=LLaVADataset,
197
+ data_path=geoqa_data_path,
198
+ image_folder=geoqa_image_folder,
199
+ tokenizer=tokenizer,
200
+ image_processor=image_processor,
201
+ dataset_map_fn=llava_map_fn,
202
+ template_map_fn=dict(
203
+ type=template_map_fn_factory, template=prompt_template),
204
+ max_length=max_length,
205
+ pad_image_to_square=True)
206
+
207
+ synthdog_dataset = dict(
208
+ type=LLaVADataset,
209
+ data_path=synthdog_data_path,
210
+ image_folder=synthdog_image_folder,
211
+ tokenizer=tokenizer,
212
+ image_processor=image_processor,
213
+ dataset_map_fn=llava_map_fn,
214
+ template_map_fn=dict(
215
+ type=template_map_fn_factory, template=prompt_template),
216
+ max_length=max_length,
217
+ pad_image_to_square=True)
218
+
219
+ train_dataset = dict(
220
+ type=ConcatDataset,
221
+ datasets=[
222
+ sharegpt4v_caption_dataset, llava_dataset, sharegpt4v_dataset,
223
+ dvqa_dataset, chartqa_dataset, ai2d_dataset, docvqa_dataset,
224
+ geoqa_dataset, synthdog_dataset
225
+ ])
226
+
227
+ train_dataloader = dict(
228
+ batch_size=batch_size,
229
+ num_workers=dataloader_num_workers,
230
+ pin_memory=True,
231
+ dataset=train_dataset,
232
+ sampler=dict(
233
+ type=LengthGroupedSampler,
234
+ length_property='modality_length',
235
+ per_device_batch_size=batch_size * accumulative_counts),
236
+ collate_fn=dict(type=default_collate_fn))
237
+
238
+ #######################################################################
239
+ # PART 4 Scheduler & Optimizer #
240
+ #######################################################################
241
+ # optimizer
242
+ optim_wrapper = dict(
243
+ type=AmpOptimWrapper,
244
+ optimizer=dict(
245
+ type=optim_type, lr=lr, betas=betas, weight_decay=weight_decay),
246
+ clip_grad=dict(max_norm=max_norm, error_if_nonfinite=False),
247
+ accumulative_counts=accumulative_counts,
248
+ loss_scale='dynamic',
249
+ dtype='float16')
250
+
251
+ # learning policy
252
+ # More information: https://github.com/open-mmlab/mmengine/blob/main/docs/en/tutorials/param_scheduler.md # noqa: E501
253
+ param_scheduler = [
254
+ dict(
255
+ type=LinearLR,
256
+ start_factor=1e-5,
257
+ by_epoch=True,
258
+ begin=0,
259
+ end=warmup_ratio * max_epochs,
260
+ convert_to_iter_based=True),
261
+ dict(
262
+ type=CosineAnnealingLR,
263
+ eta_min=0.0,
264
+ by_epoch=True,
265
+ begin=warmup_ratio * max_epochs,
266
+ end=max_epochs,
267
+ convert_to_iter_based=True)
268
+ ]
269
+
270
+ # train, val, test setting
271
+ train_cfg = dict(type=TrainLoop, max_epochs=max_epochs)
272
+
273
+ #######################################################################
274
+ # PART 5 Runtime #
275
+ #######################################################################
276
+ # Log the dialogue periodically during the training process, optional
277
+ custom_hooks = [
278
+ dict(type=DatasetInfoHook, tokenizer=tokenizer),
279
+ dict(
280
+ type=EvaluateChatHook,
281
+ tokenizer=tokenizer,
282
+ image_processor=image_processor,
283
+ every_n_iters=evaluation_freq,
284
+ evaluation_inputs=evaluation_inputs,
285
+ evaluation_images=evaluation_images,
286
+ system=SYSTEM,
287
+ prompt_template=prompt_template)
288
+ ]
289
+
290
+ # configure default hooks
291
+ default_hooks = dict(
292
+ # record the time of every iteration.
293
+ timer=dict(type=IterTimerHook),
294
+ # print log every 10 iterations.
295
+ logger=dict(type=LoggerHook, log_metric_by_epoch=False, interval=10),
296
+ # enable the parameter scheduler.
297
+ param_scheduler=dict(type=ParamSchedulerHook),
298
+ # save checkpoint per `save_steps`.
299
+ checkpoint=dict(
300
+ type=CheckpointHook,
301
+ by_epoch=False,
302
+ interval=save_steps,
303
+ max_keep_ckpts=save_total_limit),
304
+ # set sampler seed in distributed evrionment.
305
+ sampler_seed=dict(type=DistSamplerSeedHook),
306
+ )
307
+
308
+ # configure environment
309
+ env_cfg = dict(
310
+ # whether to enable cudnn benchmark
311
+ cudnn_benchmark=False,
312
+ # set multi process parameters
313
+ mp_cfg=dict(mp_start_method='fork', opencv_num_threads=0),
314
+ # set distributed parameters
315
+ dist_cfg=dict(backend='nccl'),
316
+ )
317
+
318
+ # set visualizer
319
+ visualizer = None
320
+
321
+ # set log level
322
+ log_level = 'INFO'
323
+
324
+ # load from which checkpoint
325
+ load_from = None
326
+
327
+ # whether to resume training from the loaded checkpoint
328
+ resume = False
329
+
330
+ # Defaults to use random seed and disable `deterministic`
331
+ randomness = dict(seed=None, deterministic=False)
332
+
333
+ # set log processor
334
+ log_processor = dict(by_epoch=False)