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* [Feat] Add public dataset support for visualglm, qwenvl, and flamingo * [Fix] MMBench related changes. * [Fix] Openflamingo inference. * [Fix] Hide ckpt path. * [Fix] Pre-commit. --------- Co-authored-by: Haodong Duan <dhd.efz@gmail.com>
44 lines
1.5 KiB
Python
44 lines
1.5 KiB
Python
from opencompass.multimodal.models.qwen import QwenVLChatVQAPromptConstructor
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# dataloader settings
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val_pipeline = [
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dict(type='mmpretrain.LoadImageFromFile'),
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dict(type='mmpretrain.ToPIL', to_rgb=True),
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dict(type='mmpretrain.torchvision/Resize',
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size=(448, 448),
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interpolation=3),
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dict(type='mmpretrain.torchvision/ToTensor'),
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dict(type='mmpretrain.torchvision/Normalize',
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mean=(0.48145466, 0.4578275, 0.40821073),
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std=(0.26862954, 0.26130258, 0.27577711)),
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dict(
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type='mmpretrain.PackInputs',
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algorithm_keys=['question', 'gt_answer', 'gt_answer_weight'],
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meta_keys=['question_id', 'image_id'],
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)
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]
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dataset = dict(
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type='mmpretrain.COCOVQA',
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data_root='data/coco',
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data_prefix='images/val2014',
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question_file='annotations/v2_OpenEnded_mscoco_val2014_questions.json',
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ann_file='annotations/v2_mscoco_val2014_annotations.json',
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pipeline=val_pipeline)
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qwen_vqav2_dataloader = dict(batch_size=1,
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num_workers=4,
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dataset=dataset,
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collate_fn=dict(type='pseudo_collate'),
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sampler=dict(type='DefaultSampler', shuffle=False))
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# model settings
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qwen_vqav2_model = dict(
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type='qwen-vl-chat',
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pretrained_path='Qwen/Qwen-VL-Chat', # or Huggingface repo id
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prompt_constructor=dict(type=QwenVLChatVQAPromptConstructor)
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)
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# evaluation settings
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qwen_vqav2_evaluator = [dict(type='mmpretrain.VQAAcc')]
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