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生成模型使用健康和患病图像对进行像素级胸部X光病理定位。

A generative model uses healthy and diseased image pairs for pixel-level chest X-ray pathology localization.

作者信息

Dong Kaiming, Cheng Yuxiao, He Kunlun, Suo Jinli

机构信息

Department of Automation, Tsinghua University, Beijing, China.

Chinese PLA General Hospital, Beijing, China.

出版信息

Nat Biomed Eng. 2025 Jul 14. doi: 10.1038/s41551-025-01456-y.

Abstract

Medical artificial intelligence (AI) offers potential for automatic pathological interpretation, but a practicable AI model demands both pixel-level accuracy and high explainability for diagnosis. The construction of such models relies on substantial training data with fine-grained labelling, which is impractical in real applications. To circumvent this barrier, we propose a prompt-driven constrained generative model to produce anatomically aligned healthy and diseased image pairs and learn a pathology localization model in a supervised manner. This paradigm provides high-fidelity labelled data and addresses the lack of chest X-ray images with labelling at fine scales. Benefitting from the emerging text-driven generative model and the incorporated constraint, our model presents promising localization accuracy of subtle pathologies, high explainability for clinical decisions, and good transferability to many unseen pathological categories such as new prompts and mixed pathologies. These advantageous features establish our model as a promising solution to assist chest X-ray analysis. In addition, the proposed approach is also inspiring for other tasks lacking massive training data and time-consuming manual labelling.

摘要

医学人工智能(AI)为自动病理解读提供了潜力,但一个可行的AI模型既需要像素级的准确性,又需要对诊断有高可解释性。此类模型的构建依赖于带有细粒度标注的大量训练数据,这在实际应用中是不切实际的。为了克服这一障碍,我们提出了一种由提示驱动的约束生成模型,以生成解剖结构对齐的健康和患病图像对,并以监督方式学习病理定位模型。这种范式提供了高保真标注数据,并解决了缺乏细粒度标注的胸部X光图像的问题。受益于新兴的文本驱动生成模型和纳入的约束,我们的模型在细微病理的定位准确性方面表现出良好前景,对临床决策具有高可解释性,并且对许多未见的病理类别(如新提示和混合病理)具有良好的可迁移性。这些优势特性使我们的模型成为协助胸部X光分析的一个有前景的解决方案。此外,所提出的方法对于其他缺乏大量训练数据和耗时手动标注的任务也具有启发性。

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