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Systems and Methods for Modification of Neural Networks Based on Estimated Edge Utility

机译:基于估计边缘效用的神经网络修改系统和方法

摘要

The present disclosure provides systems and methods for modification (e.g., pruning, compression, quantization, etc.) of artificial neural networks based on estimations of the utility of network connections (also known as “edges”). In particular, the present disclosure provides novel techniques for estimating the utility of one or more edges of a neural network in a fashion that requires far less expenditure of resources than calculation of the actual utility. Based on these estimated edge utilities, a computing system can make intelligent decisions regarding network pruning, network quantization, or other modifications to a neural network. In particular, these modifications can reduce resource requirements associated with the neural network. By making these decisions with knowledge of and based on the utility of various edges, this reduction in resource requirements can be achieved with only a minimal, if any, degradation of network performance (e.g., prediction accuracy).
机译:本公开提供了基于对网络连接的效用(也称为“边缘”)的估计来修改(例如,修剪,压缩,量化等)人工神经网络的系统和方法。特别地,本公开提供了一种新颖的技术,该技术以比计算实际效用需要更少的资源花费的方式来估计神经网络的一个或多个边缘的效用。基于这些估计的边缘效用,计算系统可以做出有关网络修剪,网络量化或对神经网络的其他修改的智能决策。特别地,这些修改可以减少与神经网络相关的资源需求。通过在知道并基于各种边缘的效用的情况下做出这些决定,可以仅以最小的(如果有的话)网络性能(例如,预测精度)降级来实现资源需求的减少。

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