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首页> 外文期刊>Biomedical Engineering, IEEE Transactions on >Computer-Aided Detection of Bleeding Regions for Capsule Endoscopy Images
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Computer-Aided Detection of Bleeding Regions for Capsule Endoscopy Images

机译:胶囊内窥镜图像出血区域的计算机辅助检测

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摘要

Capsule endoscopy (CE) has been widely used to diagnose diseases in human digestive tract. However, a tough problem of this new technology is that too many images to be inspected by eyes cause a huge burden to physicians, so it is significant to investigate computerized diagnosis methods. In this paper, a new computer-aided system aimed for bleeding region detection in CE images is proposed. This new system exploits color texture feature, an important clue used by physicians, to analyze status of gastrointestinal tract. We put forward a new idea of chrominance moment as the color part of color texture feature, which makes full use of Tchebichef polynomials and illumination invariant of hue/saturation/intensity color space. Combined with uniform local binary pattern, a current texture representation model, it can be applied to discriminate normal regions and bleeding regions in CE images. Classification of bleeding regions using multilayer perceptron neural network is then deployed to verify performance of the proposed color texture features. Experimental results on our bleeding image data show that the proposed scheme is promising in detecting bleeding regions.
机译:胶囊内窥镜(CE)已被广泛用于诊断人类消化道疾病。但是,这项新技术的一个棘手问题是太多的眼睛无法检查图像,这给医生带来了巨大负担,因此研究计算机诊断方法具有重要意义。在本文中,提出了一种新的计算机辅助系统,用于检测CE图像中的出血区域。这个新系统利用了色彩纹理特征(医生使用的重要线索)来分析胃肠道的状态。我们提出了色度矩作为颜色纹理特征的颜色部分的新思想,它充分利用了Tchebichef多项式和色相/饱和度/强度色空间的照明不变性。结合统一的局部二值模式和当前的纹理表示模型,可以将其用于区分CE图像中的正常区域和出血区域。然后使用多层感知器神经网络对出血区域进行分类,以验证提出的颜色纹理特征的性能。在我们的出血图像数据上的实验结果表明,该方案在检测出血区域方面很有希望。

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