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Detection of cirrhosis through ultrasound imaging by intensity difference technique

机译:强度差异技术通过超声成像检测肝硬化

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Abstract Cirrhosis is a liver disease that is considered to be among the most common diseases in healthcare. Due to its non-invasive nature, ultrasound (US) imaging is a widely accepted technology for the diagnosis of this disease. This research work proposed a method for discriminating the cirrhotic liver from normal liver through US images. The liver US images were obtained from the radiologist. The radiologist also specified the region of interest (ROI) from these images, and then the proposed method was applied to it. Two parameters were extracted from the US images through differences in intensity of neighboring pixels. Then, these parameters can be used to train a classifier by which cirrhotic region of test patient can be detected. A 2-D array was created by the difference in intensity of the neighboring pixels. From this array, two parameters were calculated. The decision was taken by checking these parameters. The validation of the proposed tool was done on 80 images of cirrhotic and 30 images of normal liver, and classification accuracy of 98.18% was achieved. The result was also verified by the radiologist. The results verified its possibility and applicability for high-performance cirrhotic liver discrimination.
机译:摘要肝硬化是一种肝病,被认为是医疗保健中最常见的疾病。由于其非侵入性,超声(美国)成像是一种广泛接受的诊断该疾病的技术。该研究工作提出了一种通过美国图像辨别来自正常肝脏的肝硬化肝脏的方法。肝脏美国图像是从放射科医生获得的。放射科医师还指定了来自这些图像的感兴趣区域(ROI),然后将该方法应用于其中。通过相邻像素强度的差异从美国图像中提取两个参数。然后,这些参数可用于训练可以检测到测试患者的循环区域的分类器。通过相邻像素的强度差异来创建2-D阵列。从该阵列中,计算了两个参数。通过检查这些参数采取的决定。拟议工具的验证是在80个肝硬化和30个正常肝脏图像图像上进行的,并且实现了98.18%的分类精度。结果也被放射科医师验证。结果证实了其对高性能肝硬化肝脏歧视的可能性和适用性。

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