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Estimating neural networks-based algorithm for adaptive cache replacement

机译:估计基于神经网络的自适应缓存替换算法

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摘要

In this paper, we propose an adaptive cache replacement scheme based on the estimating type of neural networks (NN's). The statistical prediction property of such NN's is used in our work to develop a neural network based replacement policy which can effectively identify and eliminate inactive cache lines. This would provide larger free space for a cache to retain actively referenced lines. The proposed strategy may, therefore, yield better cache performance as compared to the conventional schemes. Simulation results for a wide spectrum of cache configurations indicate that the estimating neural network based replacement scheme provides significant performance advantage over existing policies.
机译:在本文中,我们提出了一种基于神经网络(NN)估计类型的自适应缓存替换方案。此类NN的统计预测属性在我们的工作中用于开发基于神经网络的替换策略,该策略可以有效地识别和消除不活动的缓存行。这将为缓存提供更大的可用空间,以保留主动引用的行。因此,与常规方案相比,所提出的策略可以产生更好的高速缓存性能。各种缓存配置的仿真结果表明,基于估计神经网络的替换方案与现有策略相比具有明显的性能优势。

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