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Bleeding Detection in Wireless Capsule Endoscopy Images Using Texture and Color Features

机译:使用纹理和颜色特征的无线胶囊内窥镜图像中的出血检测

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Technology development enables progress in numerous areas and one of the relatively recent examples is wireless capsule endoscopy. It is used for detailed examination of a digestive track. Capsule size camera is swallowed by a patient and it takes thousands of images during the travel through digestive tract. The obtained images are used to detect different anomalies such as bleedings. In this paper we propose a method for automatic bleeding detection in capsule endoscopy images based on color and texture features. The proposed method is region based and it uses HSI and CIE Lab color spaces along with uniform local binary pattern for describing each region. Based on these features, regions are classified by support vector machine into three groups: background, bleeding or non-bleeding region. The proposed method was tested on benchmark dataset and the results were compared with other state-of-the-art method. Our proposed method shows competitive results based on the Dice similarity coefficient and misclassification error.
机译:技术的发展可以在许多领域取得进步,相对较新的例子之一就是无线胶囊内窥镜检查。它用于详细检查消化道。胶囊大小的相机被患者吞下,并在穿过消化道的过程中拍摄了数千张图像。所获得的图像用于检测不同的异常情况,例如出血。在本文中,我们提出了一种基于颜色和纹理特征的胶囊内窥镜图像自动出血检测方法。所提出的方法是基于区域的,它使用HSI和CIE Lab颜色空间以及统一的本地二进制模式来描述每个区域。基于这些特征,通过支持向量机将区域分为三类:背景区域,出血区域或非出血区域。在基准数据集上对提出的方法进行了测试,并将结果与​​其他最新方法进行了比较。我们提出的方法基于Dice相似系数和误分类误差显示出竞争结果。

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