arXiv:2509.09844cs.CV2025-09

用合成数据和临床先验实现隐私保护的玫瑰痤疮自动检测

Privacy-Preserving Automated Rosacea Detection Based on Medically Inspired Region of Interest Selection

  • 基于面部红度区域构建固定掩码,聚焦诊断相关区域
  • 在真实数据上准确率、召回率、F1值均优于全脸基线
  • 适合远程医疗和大规模筛查等隐私敏感场景

玫瑰痤疮是一种常见但常被漏诊的炎症性皮肤病,主要影响面部中央区域,表现为轻微发红、脓疱和可见血管。自动化检测面临症状弥散、标注数据稀缺及人脸图像隐私问题的挑战。本文提出一种受临床先验启发的隐私保护自动化检测方法,完全基于合成数据训练。该方法首先利用面部图像中红通道强度一致高的区域,构建固定的红度导向掩码,聚焦于脸颊、鼻子和额头等诊断相关部位,排除暴露身份的特征。其次,基于掩码处理的合成图像训练的ResNet-18模型,在真实测试数据上表现优异,准确率、召回率和F1分数显著优于全脸基准。实验表明,合成数据与临床先验相结合,可实现高精度且符合伦理的皮肤科AI系统,尤其适用于远程医疗和大规模筛查等隐私敏感场景。

原文摘要 · Abstract (English)

Rosacea is a common but underdiagnosed inflammatory skin condition that primarily affects the central face and presents with subtle redness, pustules, and visible blood vessels. Automated detection remains challenging due to the diffuse nature of symptoms, the scarcity of labeled datasets, and privacy concerns associated with using identifiable facial images. A novel privacy-preserving automated rosacea detection method inspired by clinical priors and trained entirely on synthetic data is presented in this paper. Specifically, the proposed method, which leverages the observation that rosacea manifests predominantly through central facial erythema, first constructs a fixed redness-informed mask by selecting regions with consistently high red channel intensity across facial images. The mask thus is able to focus on diagnostically relevant areas such as the cheeks, nose, and forehead and exclude identity-revealing features. Second, the ResNet-18 deep learning method, which is trained on the masked synthetic images, achieves superior performance over the full-face baselines with notable gains in terms of accuracy, recall and F1 score when evaluated using the real-world test data. The experimental results demonstrate that the synthetic data and clinical priors can jointly enable accurate and ethical dermatological AI systems, especially for privacy sensitive applications in telemedicine and large-scale screening.

皮肤检测隐私保护合成数据临床先验

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