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LiteGPT: Large Vision-Language Model for Joint Chest X-ray Localization and Classification Task
July 16, 2024 Β· Entered Twilight Β· π arXiv.org
Repo contents: .gitignore, README.md, docs, examples, medlvlm, setup.py, tests
Authors
Khai Le-Duc, Ryan Zhang, Ngoc Son Nguyen, Tan-Hanh Pham, Anh Dao, Ba Hung Ngo, Anh Totti Nguyen, Truong-Son Hy
arXiv ID
2407.12064
Category
eess.IV: Image & Video Processing
Cross-listed
cs.CL,
cs.CV,
cs.LG,
cs.MM
Citations
7
Venue
arXiv.org
Repository
https://github.com/leduckhai/LiteGPT
β 24
Last Checked
3 months ago
Abstract
Vision-language models have been extensively explored across a wide range of tasks, achieving satisfactory performance; however, their application in medical imaging remains underexplored. In this work, we propose a unified framework - LiteGPT - for the medical imaging. We leverage multiple pre-trained visual encoders to enrich information and enhance the performance of vision-language models. To the best of our knowledge, this is the first study to utilize vision-language models for the novel task of joint localization and classification in medical images. Besides, we are pioneers in providing baselines for disease localization in chest X-rays. Finally, we set new state-of-the-art performance in the image classification task on the well-benchmarked VinDr-CXR dataset. All code and models are publicly available online: https://github.com/leduckhai/LiteGPT
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