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A computer aided method to detect bleeding, tumor, and disease regions in Wireless Capsule Endoscopy

机译:一种检测无线胶囊内窥镜检查中出血,肿瘤和疾病区域的计算机辅助方法

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Wireless Capsule Endoscopy (WCE) is a relatively new technology to record the entire gastrointestinal (GI) tract, in vivo. A large amount of images (frames) are captured during the WCE examination. Reviewing this number of images by a gastroenterologist would be time consuming and prone to human error. Therefore, a diagnostic computer-aided technique is essential to detect and segment regions of abnormalities. In this study, a novel method based on textural features (such as Gabor filters, local binary pattern, and Haralick) in HSV color space, Fisher score test, and neural networks is presented to detect and differentiate regions such as bleeding, tumor, and other types of gastric diseases including Crohn's, Lymphangectasia, Stenosis, Lymphoid Hyperslasia and Xanathoma. The experimental results indicate that this method is able to classify a lesion from a normal region in every single frame and group them into normal and abnormal frames to be considered for surgery/treatment planning by an expert.
机译:无线胶囊内窥镜检查(WCE)是一种相对较新的技术,可在体内记录整个胃肠道(GI)道。在WCE检查期​​间捕获大量图像(框架)。通过胃肠学家审查此数量的图像将是耗时和容易出现人的错误。因此,诊断计算机辅助技术对于检测和分割异常区域是必不可少的。在本研究中,提出了一种基于HSV颜色空间,Fisher评分测试和神经网络的纹理特征(如Gabor滤波器,局部二进制图案和haralick)的新方法,以检测和区分诸如出血,肿瘤和其他类型的胃疾病,包括克罗恩,淋巴囊切除术,狭窄,淋巴畸形和Xanathoma。实验结果表明,该方法能够将来自每帧的正常区域的病变分类,并将其分组成正常和异常框架,以考虑专家进行手术/治疗计划。

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