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西门子体模CT图像中层厚的自动测量

Automatic measurement of slice thickness in CT images of a Siemens phantom.

作者信息

Amatullah Nada S, Anam Choirul, Hidayanto Eko, Naufal Ariij, Dougherty Geoff

机构信息

Department of Physics, Faculty of Sciences and Mathematics, Diponegoro University, Jl. Prof. Soedarto SH, Tembalang, Semarang 50275, Central Java, Indonesia.

Department of Applied Physics and Medical Imaging, California State University Channel Islands, Camarillo, CA 93012, United States of America.

出版信息

Biomed Phys Eng Express. 2023 Apr 6;9(3). doi: 10.1088/2057-1976/acc870.

Abstract

This study aims to develop a program in Python language for automatic measurement of slice thickness in computed tomography (CT) images of a Siemens phantom with different values of slice thickness, field of view (FOV), and pitch. A Siemens phantom was scanned using a Siemens 64-slice Somatom Perspective CT scanner with various slice thicknesses (i.e. 2, 4, 6, 8, and 10 mm), FOVs (i.e. 220, 260, and 300 mm), and pitch (i.e. 0.7, 0.9, and 1). Automatic measurement of slice thickness was performed by segmenting the ramp insert in the image and detecting angles of the ramp insert using the Hough transform. The resulting angles were subsequently used to rotate the image. Profiles of pixel along the ramp insert were made from the rotated images, and the slice thickness was calculated by determining the full-width at half maximum (FWHM) of the profiles. The product of the FWHM in pixels and the pixel size was corrected by the tangent of the ramp insert (i.e., 23°) to obtain the measured slice thickness. The results of the automatic measurements were compared with manual measurements carried out using a MicroDicom Viewer. The differences between the automatic and manual measurements at all slice thicknesses were less than 0.30 mm. The automatic and manual measurements had high linear correlations. For variations of the FOV and pitch, the differences between the automatic and manual measurement were less than 0.16 mm. The automatic and manual measurements were significantly different (p-value < 0.05) for slice thickness variation. In addition, the automatic and manual measurements were not significantly different (p-value > 0.05) for variations of FOV and pitch.

摘要

本研究旨在开发一个用Python语言编写的程序,用于自动测量西门子体模的计算机断层扫描(CT)图像中的层厚,该体模具有不同的层厚、视野(FOV)和螺距值。使用西门子64层Somatom Perspective CT扫描仪对一个西门子体模进行扫描,扫描时采用了各种层厚(即2、4、6、8和10毫米)、视野(即220、260和300毫米)以及螺距(即0.7、0.9和1)。通过分割图像中的斜坡插入物并使用霍夫变换检测斜坡插入物的角度来进行层厚的自动测量。随后,利用得到的角度旋转图像。从旋转后的图像中获取沿斜坡插入物的像素轮廓,并通过确定轮廓的半高全宽(FWHM)来计算层厚。将以像素为单位的FWHM与像素大小的乘积通过斜坡插入物的切线(即23°)进行校正,以获得测量的层厚。将自动测量的结果与使用MicroDicom Viewer进行的手动测量结果进行比较。在所有层厚下,自动测量和手动测量之间的差异均小于0.30毫米。自动测量和手动测量具有高度的线性相关性。对于视野和螺距的变化,自动测量和手动测量之间的差异小于0.16毫米。对于层厚变化,自动测量和手动测量存在显著差异(p值<0.05)。此外,对于视野和螺距的变化,自动测量和手动测量没有显著差异(p值>0.05)。

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