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RAMM: Retrieval-augmented Biomedical Visual Question Answering with Multi-modal Pre-training (2303.00534v1)

Published 1 Mar 2023 in cs.CV and cs.CL

Abstract: Vision-and-language multi-modal pretraining and fine-tuning have shown great success in visual question answering (VQA). Compared to general domain VQA, the performance of biomedical VQA suffers from limited data. In this paper, we propose a retrieval-augmented pretrain-and-finetune paradigm named RAMM for biomedical VQA to overcome the data limitation issue. Specifically, we collect a new biomedical dataset named PMCPM which offers patient-based image-text pairs containing diverse patient situations from PubMed. Then, we pretrain the biomedical multi-modal model to learn visual and textual representation for image-text pairs and align these representations with image-text contrastive objective (ITC). Finally, we propose a retrieval-augmented method to better use the limited data. We propose to retrieve similar image-text pairs based on ITC from pretraining datasets and introduce a novel retrieval-attention module to fuse the representation of the image and the question with the retrieved images and texts. Experiments demonstrate that our retrieval-augmented pretrain-and-finetune paradigm obtains state-of-the-art performance on Med-VQA2019, Med-VQA2021, VQARAD, and SLAKE datasets. Further analysis shows that the proposed RAMM and PMCPM can enhance biomedical VQA performance compared with previous resources and methods. We will open-source our dataset, codes, and pretrained model.

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Authors (7)
  1. Zheng Yuan (117 papers)
  2. Qiao Jin (74 papers)
  3. Chuanqi Tan (56 papers)
  4. Zhengyun Zhao (8 papers)
  5. Hongyi Yuan (23 papers)
  6. Fei Huang (408 papers)
  7. Songfang Huang (51 papers)
Citations (17)