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An Energy-Efficient L2 Cache Architecture Using Way Tag Information Under Write-Through Policy

机译:直写策略下使用路标信息的节能L2缓存体系结构

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Many high-performance microprocessors employ cache write-through policy for performance improvement and at the same time achieving good tolerance to soft errors in on-chip caches. However, write-through policy also incurs large energy overhead due to the increased accesses to caches at the lower level (e.g., L2 caches) during write operations. In this paper, we propose a new cache architecture referred to as way-tagged cache to improve the energy efficiency of write-through caches. By maintaining the way tags of L2 cache in the L1 cache during read operations, the proposed technique enables L2 cache to work in an equivalent direct-mapping manner during write hits, which account for the majority of L2 cache accesses. This leads to significant energy reduction without performance degradation. Simulation results on the SPEC CPU2000 benchmarks demonstrate that the proposed technique achieves 65.4% energy savings in L2 caches on average with only 0.02% area overhead and no performance degradation. Similar results are also obtained under different L1 and L2 cache configurations. Furthermore, the idea of way tagging can be applied to existing low-power cache design techniques to further improve energy efficiency.
机译:许多高性能微处理器采用高速缓存直写策略来提高性能,并同时对片上高速缓存中的软错误实现良好的容忍度。但是,由于在写操作期间增加了对较低级别的高速缓存(例如,L2高速缓存)的访问,因此直写策略也引起大量的能量开销。在本文中,我们提出了一种新的高速缓存体系结构,称为路标高速缓存,以提高直写式高速缓存的能效。通过在读取操作期间在L1缓存中维护L2缓存的方式标签,所提出的技术使L2缓存能够在写入命中期间以等效的直接映射方式工作,这占了L2缓存访问的大部分。这导致显着的能量减少而性能不会下降。在SPEC CPU2000基准测试中的仿真结果表明,所提出的技术平均在二级缓存中实现了65.4%的能源节省,而面积开销仅为0.02%,并且不会降低性能。在不同的L1和L2缓存配置下也可以获得类似的结果。此外,可以将方式标记的思想应用于现有的低功耗缓存设计技术,以进一步提高能源效率。

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