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Capsule endoscopy image analysis using texture information from various colour models

机译:使用来自各种颜色模型的纹理信息进行胶囊内窥镜图像分析

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摘要

Wireless capsule endoscopy (WCE) is a novel imaging technique that is gradually gaining ground as it enables the non-invasive and efficacious visualization of the digestive track, and especially the entire small bowel including its middle part. However, the task of reviewing the vast amount of images produced by a WCE examination is a burden for the physicians. To tackle this major drawback, an innovative scheme for discriminating endoscopic images related to one of the most common intestinal diseases, ulceration, is presented here. This new approach focuses on colour-texture features in order to investigate how the structure information of healthy and abnormal tissue is distributed on RGB, HSV and CIE . Lab colour spaces. The WCE images are pre-processed using bidimensional ensemble empirical mode decomposition so as to facilitate differential lacunarity analysis to extract the texture patterns of normal and ulcerous regions. Experimental results demonstrated promising classification performance (mean accuracy. >. 95%), exhibiting a high potential towards automatic WCE image analysis.
机译:无线胶囊内窥镜检查(WCE)是一种新颖的成像技术,正在逐步普及,因为它可以无创且有效地显示消化道,尤其是整个小肠,包括其中间部分。然而,检查由WCE检查产生的大量图像的任务是医师的负担。为了解决这个主要缺点,本文提出了一种创新方案,用于区分与最常见的肠道疾病之一溃疡相关的内窥镜图像。为了研究健康和异常组织的结构信息如何分布在RGB,HSV和CIE上,这种新方法侧重于颜色纹理特征。实验室色彩空间。使用二维整体经验模式分解对WCE图像进行预处理,以利于差异性盲点分析以提取正常和溃疡区域的纹理图案。实验结果证明了有希望的分类性能(平均准确度> 95%),在自动WCE图像分析方面显示出很高的潜力。

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