cs.AI updates on arXiv.org 08月08日
Skin-SOAP: A Weakly Supervised Framework for Generating Structured SOAP Notes
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文章提出一种名为skin-SOAP的弱监督多模态框架,可从有限输入生成临床结构的SOAP笔记,减少手动标注,减轻医生负担,并在多个临床相关指标上与GPT-4o等模型性能相当。

arXiv:2508.05019v1 Announce Type: cross Abstract: Skin carcinoma is the most prevalent form of cancer globally, accounting for over $8 billion in annual healthcare expenditures. Early diagnosis, accurate and timely treatment are critical to improving patient survival rates. In clinical settings, physicians document patient visits using detailed SOAP (Subjective, Objective, Assessment, and Plan) notes. However, manually generating these notes is labor-intensive and contributes to clinician burnout. In this work, we propose skin-SOAP, a weakly supervised multimodal framework to generate clinically structured SOAP notes from limited inputs, including lesion images and sparse clinical text. Our approach reduces reliance on manual annotations, enabling scalable, clinically grounded documentation while alleviating clinician burden and reducing the need for large annotated data. Our method achieves performance comparable to GPT-4o, Claude, and DeepSeek Janus Pro across key clinical relevance metrics. To evaluate this clinical relevance, we introduce two novel metrics MedConceptEval and Clinical Coherence Score (CCS) which assess semantic alignment with expert medical concepts and input features, respectively.

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皮肤癌检测 弱监督学习 SOAP笔记 临床相关指标 多模态框架
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