Reuse-based online models for caches

Rathijit Sen, D. Wood
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引用次数: 58

Abstract

We develop a reuse distance/stack distance based analytical modeling framework for efficient, online prediction of cache performance for a range of cache configurations and replacement policies LRU, PLRU, RANDOM, NMRU. Our framework unifies existing cache miss rate prediction techniques such as Smith's associativity model, Poisson variants, and hardware way-counter based schemes. We also show how to adapt LRU way-counters to work when the number of sets in the cache changes. As an example application, we demonstrate how results from our models can be used to select, based on workload access characteristics, last-level cache configurations that aim to minimize energy-delay product.
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基于重用的缓存在线模型
我们开发了一个基于重用距离/堆栈距离的分析建模框架,用于有效地在线预测一系列缓存配置和替换策略LRU, PLRU, RANDOM, NMRU的缓存性能。我们的框架统一了现有的缓存缺失率预测技术,如史密斯的关联模型、泊松变量和基于硬件方式计数器的方案。我们还将展示如何调整LRU方式计数器,使其在缓存中的集合数量发生变化时工作。作为一个示例应用程序,我们演示了如何使用模型的结果来基于工作负载访问特征选择旨在最小化能量延迟产品的最后一级缓存配置。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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