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不同波束形成技术和动态范围下获取的超声图像纹理分析——一项稳健性研究。

Texture analysis of ultrasound images obtained with different beamforming techniques and dynamic ranges - A robustness study.

作者信息

Seoni Silvia, Matrone Giulia, Meiburger Kristen M

机构信息

Polito(BIO)Med Lab, Biolab, Dept. of Electronics and Telecommunications, Politecnico di Torino, Torino, Italy.

Dept. of Electrical, Computer and Biomedical Engineering, University of Pavia, Pavia, Italy.

出版信息

Ultrasonics. 2023 May;131:106940. doi: 10.1016/j.ultras.2023.106940. Epub 2023 Feb 1.

Abstract

Texture analysis of medical images gives quantitative information about the tissue characterization for possible pathology discrimination. Ultrasound B-mode images are generated through a process called beamforming. Then, to obtain the final 8-bit image, the dynamic range value must be set. It is currently unknown how different beamforming techniques or dynamic range values may alter the final image texture. We provide here a robustness analysis of first and higher order texture features using six beamforming methods and seven dynamic range values, on experimental phantom and in vivo musculoskeletal images acquired using two different ultrasound research scanners. To investigate the repeatability of the texture parameters, we applied the multivariate analysis of variance (MANOVA) and estimated the intraclass correlation coefficient (ICC) on the texture features calculated on the B-mode images created with different beamforming methods and dynamic range values. We demonstrated the high repeatability of texture features when varying the dynamic range and showed texture features can differentiate between beamforming methods through a MANOVA analysis, hinting at the potential future clinical application of specific beamformers.

摘要

医学图像的纹理分析可提供有关组织特征的定量信息,以用于可能的病理鉴别。超声B模式图像是通过一种称为波束形成的过程生成的。然后,为了获得最终的8位图像,必须设置动态范围值。目前尚不清楚不同的波束形成技术或动态范围值如何改变最终图像纹理。我们在此提供了使用六种波束形成方法和七个动态范围值对一阶和高阶纹理特征的稳健性分析,分析对象为使用两台不同超声研究扫描仪采集的实验体模和体内肌肉骨骼图像。为了研究纹理参数的可重复性,我们应用了多变量方差分析(MANOVA),并对使用不同波束形成方法和动态范围值创建的B模式图像上计算出的纹理特征估计了组内相关系数(ICC)。我们证明了在改变动态范围时纹理特征具有很高的可重复性,并通过MANOVA分析表明纹理特征可以区分波束形成方法,这暗示了特定波束形成器在未来潜在的临床应用。

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