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FOS: a low-power cache organization for multicores

机译:FOS:多核的低功耗缓存组织

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The cache hierarchy of current multicore processors typically consists of one or two levels of private caches per core and a large shared last-level cache. This approach incurs area and energy wasting due to oversizing the private cache space, data replication through the inclusive cache levels, as well as the use of highly set-associative caches. In this paper, we claim that although this is the commonly adopted approach, it presents important design issues that can be addressed by a more energy efficient organization. This work proposes Flat On-chip Storage (FOS), a novel cache organization that, aimed at addressing energy and area on low-power processors, resolves the mentioned issues. For this purpose, FOS combines L2 and L3 cache levels into a single one, organized as a flat space, and composed of a pool of private small cache slices. These slices are initially powered off to save energy, and they are powered on and assigned to cores provided that the system performance is expected to improve. To provide fast and uniform access from the private L1 caches to the FOS's cache slices, multiple architectural challenges are overcome, which entails the design of a custom optical network-on-chip. Experimental results show that FOS achieves significant energy savings on both static and dynamic energy over conventional cache organizations with the same storage capacity. FOS static energy savings are as much as 60% over an electrically connected shared cache; these savings grow up to 75% compared to optically connected baselines. Moreover, despite deactivating part of the cache space, FOS achieves similar performance values as those achieved by conventional approaches.
机译:当前多核处理器的缓存层次结构通常由每个核心一个或两个级别的专用缓存以及一个大型共享的最后一级缓存组成。由于私有缓存空间过大,通过包含性缓存级别进行的数据复制以及使用高度集关联的缓存,这种方法会导致面积和能量浪费。在本文中,我们声称尽管这是普遍采用的方法,但它提出了重要的设计问题,而这些问题可以由更节能的组织来解决。这项工作提出了扁平的片上存储(FOS),这是一个新颖的缓存组织,旨在解决低功耗处理器上的能源和面积问题,从而解决了上述问题。为此,FOS将L2和L3缓存级别组合为一个单一级别,组织为一个平面空间,并由一组专用的小型缓存切片组成。最初将关闭这些逻辑片以节省能源,并打开并分配给内核,前提是可以预期会提高系统性能。为了提供从私有L1缓存到FOS缓存片的快速统一访问,克服了多个架构难题,这需要设计定制的片上光网络。实验结果表明,与具有相同存储容量的传统缓存组织相比,FOS在静态和动态能源方面均实现了显着的节能。通过电气连接的共享缓存,FOS静态能源节省高达60%;与光连接的基准线相比,这些节省的费用增长了75%。此外,尽管停用了部分缓存空间,FOS仍获得了与常规方法相似的性能值。

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