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Unsupervised Skin Lesion Segmentation via Structural Entropy Minimization on Multi-Scale Superpixel Graphs

  • Guangjie Zeng*
  • , Hao Peng*
  • , Angsheng Li*
  • , Zhiwei Liu
  • , Chunyang Liu
  • , Philip S. Yu
  • , Lifang He
  • *此作品的通讯作者
  • Beihang University
  • Zhongguancun Laboratory
  • Salesforce AI Research
  • DiDi Chuxing
  • University of Illinois at Chicago
  • Lehigh University

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Skin lesion segmentation is a fundamental task in dermoscopic image analysis. The complex features of pixels in the lesion region impede the lesion segmentation accuracy, and existing deep learning-based methods often lack interpretability to this problem. In this work, we propose a novel unsupervised Skin Lesion sEgmentation framework based on structural entropy and isolation forest outlier Detection, namely SLED. Specifically, skin lesions are segmented by minimizing the structural entropy of a superpixel graph constructed from the dermoscopic image. Then, we characterize the consistency of healthy skin features and devise a novel multi-scale segmentation mechanism by outlier detection, which enhances the segmentation accuracy by leveraging the superpixel features from multiple scales. We conduct experiments on four skin lesion benchmarks and compare SLED with nine representative unsupervised segmentation methods. Experimental results demonstrate the superiority of the proposed framework. Additionally, some case studies are analyzed to demonstrate the effectiveness of SLED.

源语言英语
主期刊名Proceedings - 23rd IEEE International Conference on Data Mining, ICDM 2023
编辑Guihai Chen, Latifur Khan, Xiaofeng Gao, Meikang Qiu, Witold Pedrycz, Xindong Wu
出版商Institute of Electrical and Electronics Engineers Inc.
768-777
页数10
ISBN(电子版)9798350307887
DOI
出版状态已出版 - 2023
活动23rd IEEE International Conference on Data Mining, ICDM 2023 - Shanghai, 中国
期限: 1 12月 20234 12月 2023

出版系列

姓名Proceedings - IEEE International Conference on Data Mining, ICDM
ISSN(印刷版)1550-4786

会议

会议23rd IEEE International Conference on Data Mining, ICDM 2023
国家/地区中国
Shanghai
时期1/12/234/12/23

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