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基于点滤波器和中心线提取算法的粘连性肺结节检测

Adhesion Pulmonary Nodules Detection Based on Dot-Filter and Extracting Centerline Algorithm.

作者信息

Liu Liwei, Wang Xin, Li Yang, Wang Liping, Dong Jianghui

机构信息

College of Computer Science and Engineering, Changchun University of Technology, Changchun 130012, China.

Sansom Institute for Health Research and School of Pharmacy and Medical Sciences, University of South Australia, Adelaide, SA 5001, Australia.

出版信息

Comput Math Methods Med. 2015;2015:597313. doi: 10.1155/2015/597313. Epub 2015 May 19.

Abstract

A suspected pulmonary nodule detection method was proposed based on dot-filter and extracting centerline algorithm. In this paper, we focus on the distinguishing adhesion pulmonary nodules attached to vessels in two-dimensional (2D) lung computed tomography (CT) images. Firstly, the dot-filter based on Hessian matrix was constructed to enhance the circular area of the pulmonary CT images, which enhanced the circular suspected pulmonary nodule and suppresses the line-like areas. Secondly, to detect the nondistinguishable attached pulmonary nodules by the dot-filter, an algorithm based on extracting centerline was developed to enhance the circle area formed by the end or head of the vessels including the intersection of the lines. 20 sets of CT images were used in the experiments. In addition, 20 true/false nodules extracted were used to test the function of classifier. The experimental results show that the method based on dot-filter and extracting centerline algorithm can detect the attached pulmonary nodules accurately, which is a basis for further studies on the pulmonary nodule detection and diagnose.

摘要

提出了一种基于点滤波和中心线提取算法的疑似肺结节检测方法。本文重点研究二维(2D)肺部计算机断层扫描(CT)图像中附着于血管的粘连性肺结节的鉴别。首先,构建基于Hessian矩阵的点滤波器,增强肺部CT图像的圆形区域,增强圆形疑似肺结节并抑制线状区域。其次,为了检测点滤波器无法区分的附着性肺结节,开发了一种基于中心线提取的算法,以增强由血管末端或头部形成的圆形区域,包括线的交叉点。实验使用了20组CT图像。此外,提取的20个真假结节用于测试分类器的功能。实验结果表明,基于点滤波和中心线提取算法的方法能够准确检测出附着性肺结节,为进一步研究肺结节的检测与诊断奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/07b1/4452339/65dfc4c04062/CMMM2015-597313.001.jpg

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