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A computer-aided system for classifying computed tomographic (CT) lung images using artificial neural network

机译:一种计算机辅助系统,用于使用人工神经网络进行分类计算断层摄影(CT)肺图像

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In this paper, computed tomographic (CT) images were investigated to develop a computer-aided system to discriminate different lung abnormalities. These were done by analyzing Data recorded for healthy subjects and patients suffering from lung asthma and emphysema diseases were considered. The techniques for utilized feature extraction included statistical, intensity, and morphological features as well as features derived from texture analysis, Fourier-based features and wavelet-based features. An artificial neural network (ANN) classifier was utilized and the results have shown that using wavelet domain features gives the highest rates to recognize lung abnormalities. Classification rate reaches about 98%.
机译:在本文中,研究了计算的断层(CT)图像以开发一种计算机辅助系统以区分不同的肺异常。这些是通过分析记录的数据进行的数据来完成,并且考虑患有肺哮喘和肺气肿疾病的患者。利用特征提取的技术包括统计,强度和形态特征以及源自纹理分析,基于傅里叶的特征和基于小波的特征的特征。利用人工神经网络(ANN)分类器,结果表明,使用小波域特征给出了识别肺异常的最高速率。分类率达到约98%。

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