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使用组织病理学图像的乳腺癌诊断计算机辅助模型综述

A Comprehensive Review of Computer-Aided Models for Breast Cancer Diagnosis Using Histopathology Images.

作者信息

Labrada Alberto, Barkana Buket D

机构信息

Department of Electrical Engineering, The University of Bridgeport, Bridgeport, CT 06604, USA.

Department of Biomedical Engineering, The University of Akron, Akron, OH 44325, USA.

出版信息

Bioengineering (Basel). 2023 Nov 7;10(11):1289. doi: 10.3390/bioengineering10111289.

Abstract

Breast cancer is the second most common cancer in women who are mainly middle-aged and older. The American Cancer Society reported that the average risk of developing breast cancer sometime in their life is about 13%, and this incident rate has increased by 0.5% per year in recent years. A biopsy is done when screening tests and imaging results show suspicious breast changes. Advancements in computer-aided system capabilities and performance have fueled research using histopathology images in cancer diagnosis. Advances in machine learning and deep neural networks have tremendously increased the number of studies developing computerized detection and classification models. The dataset-dependent nature and trial-and-error approach of the deep networks' performance produced varying results in the literature. This work comprehensively reviews the studies published between 2010 and 2022 regarding commonly used public-domain datasets and methodologies used in preprocessing, segmentation, feature engineering, machine-learning approaches, classifiers, and performance metrics.

摘要

乳腺癌是主要发生在中老年女性中的第二大常见癌症。美国癌症协会报告称,女性一生中患乳腺癌的平均风险约为13%,且近年来这一发病率每年上升0.5%。当筛查测试和影像学结果显示乳房有可疑变化时,会进行活检。计算机辅助系统能力和性能的进步推动了利用组织病理学图像进行癌症诊断的研究。机器学习和深度神经网络的进展极大地增加了开发计算机化检测和分类模型的研究数量。深度网络性能的数据集依赖性和试错方法在文献中产生了不同的结果。这项工作全面回顾了2010年至2022年间发表的关于常用公共领域数据集以及在预处理、分割、特征工程、机器学习方法、分类器和性能指标中使用的方法的研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/865b/10669627/64244cf234bb/bioengineering-10-01289-g001.jpg

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