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纹理分析和机器学习在甲状腺结节及分化型甲状腺癌中的特征描述:我们的进展如何?

Texture analysis and machine learning to characterize suspected thyroid nodules and differentiated thyroid cancer: Where do we stand?

机构信息

Department of Biomedical Sciences, Humanitas University, via Rita Levi Montalcini, 20090 Pieve Emanuele (Milan), Italy.

Department of Biomedical Sciences, Humanitas University, via Rita Levi Montalcini, 20090 Pieve Emanuele (Milan), Italy; Radiotherapy and Radiosurgery, Humanitas Clinical and Research Center, via Manzoni 56, 20089 Rozzano (Milan), Italy.

出版信息

Eur J Radiol. 2018 Feb;99:1-8. doi: 10.1016/j.ejrad.2017.12.004. Epub 2017 Dec 7.

Abstract

In thyroid imaging, "texture" refers to the echographic appearence of the parenchyma or a nodule. However, definition of the image characteristics is operator dependent and influenced by the operator's experience. In a more objective texture analysis, a variety of mathematical methods are used to describe image inhomogeneity, allowing assessment of an image by means of quantitative parameters. Moreover, this approach may be used to develop an efficient computer-aided diagnosis (CAD) system to yield a second opinion when differentiating malignant and benign thyroid lesions. The aim of this review is to summarize the available literature data on texture analysis, with and without CAD, in patients with suspected thyroid nodules or differentiated thyroid cancer, and to assess the current state of the approach.

摘要

在甲状腺成像中,“纹理”是指实质或结节的超声表现。然而,图像特征的定义取决于操作者,并且受到操作者经验的影响。在更客观的纹理分析中,使用各种数学方法来描述图像的不均匀性,允许通过定量参数来评估图像。此外,这种方法可用于开发有效的计算机辅助诊断(CAD)系统,以便在区分甲状腺良恶性病变时提供第二个意见。本文综述的目的是总结有或无 CAD 的纹理分析在可疑甲状腺结节或分化型甲状腺癌患者中的现有文献数据,并评估该方法的现状。

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