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胆管癌——一种使用 MLP 的自动化初步检测系统。

Cholangiocarcinoma--an automated preliminary detection system using MLP.

机构信息

Global School of Media, Soongsil University, Seoul, South Korea.

出版信息

J Med Syst. 2009 Dec;33(6):413-21. doi: 10.1007/s10916-008-9203-3.

Abstract

Cholangiocarcinoma, cancer of the bile ducts, is often diagnosed via magnetic resonance cholangiopancreatography (MRCP). Due to low resolution, noise and difficulty is actually seeing the tumor in the images, especially by examining only a single image, there has been very little development of automated systems for cholangiocarcinoma diagnosis. This paper presents a computer-aided diagnosis (CAD) system for the automated preliminary detection of the tumor using a single MRCP image. The multi-stage system employs algorithms and techniques that correspond to the radiological diagnosis characteristics employed by doctors. A popular artificial neural network, the multi-layer perceptron (MLP), is used for decision making to differentiate images with cholangiocarcinoma from those without. The test results achieved was 94% when differentiating only healthy and tumor images, and 88% in a robust multi-disease test where the system had to identify the tumor images from a large set of images containing common biliary diseases.

摘要

胆管癌是一种胆管癌症,通常通过磁共振胰胆管成像(MRCP)进行诊断。由于分辨率低、噪声大,以及实际上很难在图像中看到肿瘤,特别是仅检查单个图像时,因此针对胆管癌诊断的自动化系统的发展非常有限。本文提出了一种使用单个 MRCP 图像的计算机辅助诊断(CAD)系统,用于自动初步检测肿瘤。该多级系统采用了与医生采用的放射诊断特征相对应的算法和技术。多层感知器(MLP)是一种流行的人工神经网络,用于进行决策,以区分有胆管癌的图像和没有胆管癌的图像。仅区分健康和肿瘤图像时,测试结果达到 94%,而在稳健的多疾病测试中,系统必须从一组包含常见胆道疾病的大量图像中识别肿瘤图像,测试结果为 88%。

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