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Mirror deep neural networks that regularize to linear networks

机译:镜像深度神经网络,将其正规化为线性网络

摘要

The mirror deep neural networks (DNNs) as described herein recognize patterns in an input signal. Mirror DNNs regularize to a linear function and train very quickly. Mirror DNNs employ a neural network pattern recognizer that receives a set of features extracted from an input signal and inputs the set of features into a multi-layer neural network. The multi-layer neural network has an input layer that receives the set of features, a plurality of intermediate layers, and an output layer that generates a set of output values that are indicative of a recognized pattern exhibited in the input signal. A first and second non-linear equation pair are chosen and applied to intermediate layers of the neural network so as to make the output values that are indicative of a pattern exhibited in the input signal linear.
机译:如本文所述的镜像深度神经网络(DNN)识别输入信号中的模式。镜像DNN正则化为线性函数并很快地进行训练。镜像DNN使用神经网络模式识别器,该模式接收从输入信号提取的一组特征并将该组特征输入到多层神经网络中。多层神经网络具有一个输入层,该输入层接收一组特征,多个中间层以及一个输出层,该输出层生成一组输出值,这些输出值指示在输入信号中显示的已识别模式。选择第一和第二非线性方程对,并将其应用于神经网络的中间层,以使指示在输入信号中呈现的模式的输出值线性。

著录项

  • 公开/公告号US10685285B2

    专利类型

  • 公开/公告日2020-06-16

    原文格式PDF

  • 申请/专利权人 MICROSOFT TECHNOLOGY LICENSING LLC;

    申请/专利号US201615359924

  • 发明设计人 PATRICE SIMARD;

    申请日2016-11-23

  • 分类号G06N3/08;G06N3/04;G06N20;

  • 国家 US

  • 入库时间 2022-08-21 11:31:33

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