构建可复现的皮肤镜图像数据集,助力医疗诊断模型可信评估
Methodology for Creating a Clinically Verified Dermoscopic Image Dataset

- 制定移动皮肤镜拍摄标准流程与结构化元数据模板
- 1026张图像经三名专家会诊+病理验证,恶性病变全确认
- 适合医疗AI模型验证、跨域分析及可解释性研究
本研究提出一种构建临床验证皮肤镜图像数据集的方法。自动化诊断系统的性能不仅依赖图像数量,更取决于成像过程可重复性、元数据完整性及诊断标签可靠性。现有国际数据集多基于与俄罗斯门诊实践不同的采集条件。所提方法包含三部分:(1) 移动皮肤镜拍摄标准操作流程;(2) 包含16个结构化字段的临床导向信息模型(六类模块,符合ISIC格式);(3) 多阶段专家标签验证机制(初诊标注、三名专家共识评审、所有恶性肿瘤病理确认)。2025年6月至2026年5月间,共收集443名患者1026张唯一图像(初始1044条记录中剔除18条重复)。数据涵盖九种疾病类别,39个恶性病灶均经病理证实(18例黑色素瘤,15例基底细胞癌,6例鳞状细胞癌)。患者年龄2至90岁(中位数38),女性279人(63%),男性164人(37%)。每张图像附有专家标注的皮损结构及明确的验证阶段标识。该数据集为独立模型评估、领域偏移分析、可解释性研究提供初步验证资源,并支持后续扩展。
原文摘要 · Abstract (English)
This study presents a methodology for constructing a clinically verified dataset of dermatoscopic images for medical informatics research. The relevance of the work is driven by the fact that the performance of automated diagnostic support systems depends not only on the volume of images, but also on the reproducibility of the image acquisition procedure, the completeness of structured metadata, and the reliability of diagnostic labels. International collections were primarily created under conditions that differ substantially from routine Russian outpatient practice and mobile dermatoscopy. The proposed methodology integrates three interconnected components: (1) a standard operating procedure (SOP) for acquiring images via mobile dermatoscopy, (2) an information model comprising 16 structured metadata fields organized into six clinically oriented blocks in ISIC-compatible notation, and (3) a multi-stage expert verification of diagnostic labels (initial clinical annotation, consensus review by three specialists, and histological confirmation of all malignant neoplasms). Using this methodology, a dataset of 1,026 unique dermatoscopic images from 443 patients was collected between June 2025 and May 2026. From 1,044 initial records, 18 duplicates were excluded. The dataset includes nine nosological categories; all 39 malignant lesions (18 melanomas, 15 basal cell carcinomas, and 6 squamous cell carcinomas) were histologically verified. Patient age ranged from 2 to 90 years (median 38), with 279 females (63%) and 164 males (37%). Each image is accompanied by expert-annotated dermatoscopic structures and an explicit verification_stage field indicating the level of diagnostic confirmation. The resulting dataset serves as a pilot clinically verified resource suitable for independent model evaluation, domain shift analysis, interpretability studies, and further expansion.
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