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利用图像矩对虚拟结肠镜检查中结肠分割进行定量验证。

A quantitative validation of segmented colon in virtual colonoscopy using image moments.

作者信息

Manjunath K N, Prabhu G K, Siddalingaswamy P C

机构信息

Computer Science & Engineering, Manipal Institute of Technology, Manipal Academy of Higher Education, Manipal, India.

Electronics and Communication, Manipal University, Jaipur, 303007, India.

出版信息

Biomed J. 2020 Feb;43(1):74-82. doi: 10.1016/j.bj.2019.07.006. Epub 2020 Feb 25.

Abstract

BACKGROUND

Evaluation of segmented colon is one of the challenges in Computed Tomography Colonography (CTC). The objective of the study was to measure the segmented colon accurately using image processing techniques.

METHODS

This was a retrospective study, and the Institutional Ethical clearance was obtained for the secondary dataset. The technique was tested on 85 CTC dataset. The CTC dataset of 100-120 kVp, 100 mA, and ST (Slice Thickness) of 1.25 and 2.5 mm were used for empirical testing. The initial results of the work appear in the conference proceedings. Post colon segmentation, three distance measurement techniques, and one volumetric overlap computation were applied in Euclidian space in which the distances were measured on MPR views of the segmented and unsegmented colons and the volumetric overlap calculation between these two volumes.

RESULTS

The key finding was that the measurements on both the segmented and the unsegmented volumes remain same without much difference noticed. This was statistically proved. The results were validated quantitatively on 2D MPR images. An accuracy of 95.265±0.4551% was achieved through volumetric overlap computation. Through pairedt-test, at α=5%, statistical values were p=0.6769, and t=0.4169 which infer that there was no much significant difference.

CONCLUSION

The combination of different validation techniques was applied to check the robustness of colon segmentation method, and good results were achieved with this approach. Through quantitative validation, the results were accepted at α=5%.

摘要

背景

在计算机断层结肠成像(CTC)中,对结肠进行分段评估是一项挑战。本研究的目的是使用图像处理技术准确测量分段结肠。

方法

这是一项回顾性研究,已获得机构伦理批准以使用该二次数据集。该技术在85个CTC数据集上进行了测试。使用100 - 120 kVp、100 mA以及层厚(ST)为1.25和2.5 mm的CTC数据集进行实证测试。该工作的初步结果发表在会议论文集中。在结肠分割后,在欧几里得空间中应用了三种距离测量技术和一种体积重叠计算方法,其中距离是在分段结肠和未分段结肠的多平面重建(MPR)视图上测量的,并且计算这两个体积之间的体积重叠。

结果

关键发现是,在分段和未分段体积上的测量结果基本相同,没有明显差异。这已得到统计学证明。结果在二维MPR图像上进行了定量验证。通过体积重叠计算实现了95.265±0.4551%的准确率。通过配对t检验,在α = 5%时,统计值为p = 0.6769,t = 0.4169,这表明没有显著差异。

结论

应用不同的验证技术组合来检查结肠分割方法的稳健性,该方法取得了良好的结果。通过定量验证,结果在α = 5%时被接受。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5b72/7090282/478d9b69b34f/gr1.jpg

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