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An Ensemble of Triplet Neural Networks for Differential Diagnostics of Lung Cancer

机译:三重态神经网络的集成,用于肺癌的鉴别诊断

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A new classification subsystem of a lung cancer computer-aided-diagnosis systems is proposed in the paper. Its implementation is based on two main approaches. First, the computed tomography images of segmented suspicious lung nodules are represented by means of five histograms characterizing the shape, inner and outer structures of nodules. This representation significantly reduces the dimensionality of data. Second, an ensemble of triplet neural networks is used to take into account atypical cases of lung cancer and to improve accuracy of the classification subsystem usage. An architecture of the developed triplet network and peculiarities of the triplet network ensemble training process are considered in detail. The corresponding results of numerical experiments with using public dataset LUNA16 show outperforming properties of the proposed classification subsystem.
机译:本文提出了一种新型的肺癌计算机辅助诊断系统分类子系统。它的实现基于两种主要方法。首先,通过五个可表征结节的形状,内部和外部结构的直方图来表示分段的可疑肺结节的计算机断层扫描图像。这种表示方式大大降低了数据的维数。第二,使用三元组神经网络的集成来考虑非典型肺癌的情况,并提高分类子系统使用的准确性。详细考虑了已开发的三元组网络的体系结构和三元组网络集成训练过程的特殊性。使用公共数据集LUNA16进行的数值实验的相应结果显示了所提出分类子系统的性能。

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