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FAST NEURAL NETWORK IMPLEMENTATIONS BY INCREASING PARALLELISM OF CELL COMPUTATIONS

机译:通过增加细胞计算的平行性快速神经网络实现

摘要

The amount of time required to train a neural network may be decreased by modifying the neural network to allow for greater parallelization of computations. The computations for cells of the neural network may be modified so that the matrix-vector multiplications of the cell do not depend on a previous cell and thus allowing the matrix-vector computations to be performed outside of the cells. Because the matrix-vector multiplications can be performed outside of the cells, they can be performed in parallel to decrease the computation time required for processing a sequence of training vectors with the neural network. The trained neural network may be applied to a wide variety of applications, such as performing speech recognition, determining a sentiment of text, determining a subject matter of text, answering a question in text, or translating text to another language.
机译:通过修改神经网络,可以减少训练神经网络所需的时间量,以允许计算的更大并行化。 可以修改神经网络的小区的计算,使得小区的矩阵矢量乘法不依赖于先前的小区,从而允许在小区外部执行矩阵矢量计算。 因为矩阵 - 向量乘法可以在小区之外执行,所以它们可以并行地执行,以减少处理与神经网络的训练向量序列所需的计算时间。 训练有素的神经网络可以应用于各种各样的应用,例如执行语音识别,确定文本的情绪,确定文本的主题,在文本中应答问题,或将文本翻译为另一种语言。

著录项

  • 公开/公告号US2021350238A1

    专利类型

  • 公开/公告日2021-11-11

    原文格式PDF

  • 申请/专利权人 ASAPP INC.;

    申请/专利号US202117384391

  • 发明设计人 TAO LEI;

    申请日2021-07-23

  • 分类号G06N3/08;G06F17/16;G06N3/04;G06N3/063;

  • 国家 US

  • 入库时间 2022-08-24 22:11:11

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