Contourlet based feature extraction and classification for Wireless Capsule Endoscopic images

Jun-zhou Chen, He Run, Zhang Li, Peng Qiang, Gan Tao
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引用次数: 4

Abstract

Wireless Capsule Endoscopy (WCE) is a late-model non-invasive device to detect abnormalities in small intestine. The traditional diagnostic method that only depending on clinicians' naked eyes is time-consuming and labor-intensive. It is necessary to develop a computer-aided system to alleviate the burden of clinicians. In this paper, a new color-texture feature extraction method is proposed for the classification of normal and abnormal WCE tissue images. The Contourlet Transform is introduced and used for each color channel of each WCE image in HSV color space. Finally, we construct a 288-dimensions feature vector by calculating the 3-order color moments for each baseband generated by using the Contourlet Transform. Real experiments using different classifiers in various color spaces are implemented to evaluate the performance of the proposed method.
基于Contourlet的无线胶囊内镜图像特征提取与分类
无线胶囊内窥镜(WCE)是一种用于检测小肠异常的新型无创设备。传统的诊断方法仅依靠临床医生的肉眼,费时费力。有必要开发一种计算机辅助系统来减轻临床医生的负担。本文提出了一种新的彩色纹理特征提取方法,用于WCE组织图像的正常和异常分类。引入Contourlet变换,并对HSV色彩空间中每个WCE图像的每个颜色通道进行处理。最后,通过计算Contourlet变换生成的每个基带的三阶颜色矩,构造一个288维的特征向量。在不同的颜色空间中使用不同的分类器进行了实际实验,以评估所提出方法的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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