首页> 外国专利> Acceleration of convolutional neural network training using stochastic perforation

Acceleration of convolutional neural network training using stochastic perforation

机译:利用随机穿孔加速卷积神经网络训练

摘要

Technical solutions are described to accelerate training of a multi-layer convolutional neural network. According to one aspect, a computer implemented method is described. A convolutional layer includes input maps, convolutional kernels, and output maps. The method includes a forward pass, a backward pass, and an update pass that each include convolution calculations. The described method performs the convolutional operations involved in the forward, the backward, and the update passes based on a first, a second, and a third perforation map respectively. The perforation maps are stochastically generated, and distinct from each other. The method further includes interpolating results of the selective convolution operations to obtain remaining results. The method includes iteratively repeating the forward pass, the backward pass, and the update pass until the convolutional neural network is trained. Other aspects such as a system, apparatus, and computer program product are also described.
机译:描述了用于加速多层卷积神经网络训练的技术解决方案。根据一个方面,描述了一种计算机实现的方法。卷积层包括输入图,卷积核和输出图。该方法包括前向遍历,后向遍历和更新遍历,每一个都包括卷积计算。所描述的方法分别基于第一,第二和第三穿孔图来执行向前,向后和更新通过中所涉及的卷积操作。穿孔图是随机生成的,并且彼此不同。该方法还包括对选择性卷积运算的结果进行插值以获得剩余结果。该方法包括迭代地重复前向遍历,后向遍历和更新遍历,直到训练卷积神经网络为止。还描述了诸如系统,装置和计算机程序产品的其他方面。

著录项

  • 公开/公告号US10540583B2

    专利类型

  • 公开/公告日2020-01-21

    原文格式PDF

  • 申请/专利权人 INTERNATIONAL BUSINESS MACHINES CORPORATION;

    申请/专利号US201514954600

  • 发明设计人 LELAND CHANG;SUYOG GUPTA;

    申请日2015-11-30

  • 分类号G06N7/02;G06N7/04;G06N7/06;G06N7/08;G06N3/04;G06N3/08;

  • 国家 US

  • 入库时间 2022-08-21 11:27:29

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