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Computer-aided diagnosis for the identification of breast cancer using thermogram images: A comprehensive review

机译:计算机辅助诊断用于使用热量点图像鉴定乳腺癌图像:全面审查

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摘要

Breast cancer is a cancer that can form in the cells of breasts. It is much more common in females than in males. The typical periods of cancer development are during puberty, pregnancy, and breastfeeding. Thermography can be utilized for breast analysis, and provides useful data on the location of hyperthermia and the vascular state of the tissue. Computer-aided diagnosis is an algorithmic approach which can be assistive during routine screening, so that human error in breast analysis for cancer detection is reduced. In early-stage cancer, the accuracy of the assessment then increases, enabling clinicians to make an improved diagnosis of benign versus malignant classification. Herein, we have reviewed thermogram-based computer-aided diagnostic systems developed during the last two decades for breast cancer screening and analysis. We explore the quantitative and qualitative performances of machine learning based approaches, which include segmentation based and feature extraction based methods, dimensionality reduction, and various classification schemes, as proposed in the literature. We also describe the limitations, as well as future requirements to improve current techniques, which can help researchers and clinicians to be apprised of quantitative developments and to plan for the future.
机译:乳腺癌是可以在乳腺细胞中形成的癌症。在女性中比男性更常见。典型的癌症发育期间是青春期,怀孕和母乳喂养。热成像可用于乳房分析,并提供关于热疗的位置和组织的血管状态的有用数据。计算机辅助诊断是一种算法方法,可以在常规筛查期间有助于辅助,从而降低了癌症检测的乳房分析中的人体误差。在早期癌症中,评估的准确性随后增加,使临床医生能够改善对良性分类的良性诊断。在此,我们已经介绍了在过去二十年中开发的基于热视图的计算机辅助诊断系统,用于乳腺癌筛查和分析。我们探讨了基于机器学习方法的定量和定性表演,其包括基于分割的基于分段和基于特征的基于方法,维数减少和各种分类方案,如文献所提出的。我们还描述了限制,以及改善当前技术的未来要求,可以帮助研究人员和临床医生了解量化发展和计划未来。

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