SkinGEN: an Explainable Dermatology Diagnosis-to-Generation Framework with Interactive Vision-Language Models

April 23, 2024 Β· Declared Dead Β· πŸ› International Conference on Intelligent User Interfaces

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Authors Bo Lin, Yingjing Xu, Xuanwen Bao, Zhou Zhao, Zhouyang Wang, Jianwei Yin arXiv ID 2404.14755 Category cs.MM: Multimedia Cross-listed cs.AI, cs.CV, cs.HC Citations 10 Venue International Conference on Intelligent User Interfaces Last Checked 3 months ago
Abstract
With the continuous advancement of vision language models (VLMs) technology, remarkable research achievements have emerged in the dermatology field, the fourth most prevalent human disease category. However, despite these advancements, VLM still faces explainable problems to user in diagnosis due to the inherent complexity of dermatological conditions, existing tools offer relatively limited support for user comprehension. We propose SkinGEN, a diagnosis-to-generation framework that leverages the stable diffusion(SD) model to generate reference demonstrations from diagnosis results provided by VLM, thereby enhancing the visual explainability for users. Through extensive experiments with Low-Rank Adaptation (LoRA), we identify optimal strategies for skin condition image generation. We conduct a user study with 32 participants evaluating both the system performance and explainability. Results demonstrate that SkinGEN significantly improves users' comprehension of VLM predictions and fosters increased trust in the diagnostic process. This work paves the way for more transparent and user-centric VLM applications in dermatology and beyond.
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