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ADVANCED WAVELET FILTERING FOR ACCELERATED DEEP LEARNING

机译:高级小波滤波,加速深度学习

摘要

Techniques in wavelet filtering for advanced deep learning provide improvements in one or more of accuracy, performance, and energy efficiency. An array of processing elements comprising a portion of a neural network accelerator performs flow-based computations on wavelets of data. Each processing element comprises a compute element to execute programmed instructions using the data and a router to route the wavelets in accordance with virtual channel specifiers. Each processing element is enabled to perform local filtering of wavelets received at the processing element, selectively, conditionally, and/or optionally discarding zero or more of the received wavelets, thereby preventing further processing of the discarded wavelets. The wavelet filtering is performed by one or more configurable wavelet filters operable in various modes, such as counter, sparse, and range modes.
机译:对高级深度学习的小波滤波技术提供了一种或多种精度,性能和能效的改进。包括一部分神经网络加速器的处理元件阵列对数据的小波执行基于流的计算。每个处理元件包括计算元素,用于使用数据和路由器执行编程的指令,以根据虚拟信道指定者路由小波。每个处理元件被能够在处理元件上的位置,有条件地,条件地,和/或可选地丢弃所接收的小波中的零或更多,从而防止每个处理元件的局部滤波,从而防止丢弃的小波的进一步处理。小波滤波由一个或多个可配置的小波滤波器执行,可在各种模式下操作,例如计数器,稀疏和范围模式。

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