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Convolutional Neural Network for categorization of Lung Tissue Patterns in Interstitial Lung Diseases

机译:间质肺病中肺组织模式分类的卷积神经网络

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In computer aided diagnosis (CAD), automatic tissue categorization is very crucial part. Deep learning methods provide excellent results in the area where medicinal image analysis is required. Here, we have propose and develop a framework in which Convolutional Neural Network (CNN) will be used for tissue categorization of Interstitial Lung Diseases. The planned framework made up of 5 convolutional layers and 2 fully connected layers. The last layer provide different outputs of the tissue patterns such as healthy, Honeycombing, Ground Glass Opacity (GGO), Reticulation etc. We used a dataset of 100 HRCT scan which are collected from different radiology centers for training and evaluation of the system. In future we can use a three-dimensional images of the CT scans and also we can integrate this system into a computer aided diagnosis (CAD) system which will assist radiologist for better diagnosis.
机译:在计算机辅助诊断(CAD)中,自动组织分类是非常关键的部分。深度学习方法在需要药物图像分析的区域提供优异的结果。在这里,我们提出并制定了一个框架,其中卷积神经网络(CNN)将用于间质肺病的组织分类。计划的框架由5个卷积层和2个完全连接的层组成。最后一层提供了诸如健康,蜂窝,地面玻璃不透明度(GGO),网格等的组织图案的不同输出,我们使用了100个HRCT扫描的数据集,该数据集从不同的放射学中心收集,用于培训和评估系统。在将来,我们可以使用CT扫描的三维图像,并且我们也可以将该系统集成到计算机辅助诊断(CAD)系统中,帮助放射科医师进行更好的诊断。

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