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Statistical Cache Bypassing for Non-Volatile Memory

机译:非易失性内存的统计缓存绕过

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With the increasing data throughput requirement, non-volatile memories, such as STT-RAM, PCM and RRAM, have become very competitive designs as on-chip caches in chip-multi-processors (CMPs). Since the write operations are more expensive in an asymmetric-access cache, it is more valuable to justify the data allocation. However, the asymmetric-access property of non-volatile memory is not well addressed in prior bypassing approaches, which are not energy efficient and induce non-trivial operation overhead. In this paper, we propose cache-bypassing methods designed for non-volatile memory. The basic method, SBAC, is based on data locality statistics of the whole cache rather than a signature of each cache line. The multicore extensions, SBAC-C and SBAC-G, strengthen the SBAC by distinguishing data patterns in CMPs. We observe that the decision-making of SBAC and its multicore extensions is highly accurate. Experiments show that SBAC can reduce overall energy consumption by 22.3 percent, and reduce execution time by 8.3 percent on average. The energy consumption is reduced by 21.4 and 23.4 percent for SBAC-C and SBAC-G. And the performance is improved by 7.8 and 9.6 percent for SBAC-C and SBAC-G in multicore scenario. Compared to prior approaches, SBAC outperforms and induces trivial design overhead.
机译:随着对数据吞吐量要求的提高,非易失性存储器(例如STT-RAM,PCM和RRAM)已成为具有竞争性的设计,成为芯片多处理器(CMP)中的片上高速缓存。由于写操作在非对称访问缓存中更昂贵,因此证明数据分配合理性更有价值。然而,在先前的旁路方法中不能很好地解决非易失性存储器的非对称访问特性,这不是能量有效的,并且会引起非平凡的操作开销。在本文中,我们提出了为非易失性存储器设计的高速缓存绕过方法。基本方法SBAC基于整个缓存的数据位置统计信息,而不是每个缓存行的签名。多核扩展SBAC-C和SBAC-G通过区分CMP中的数据模式来增强SBAC。我们注意到SBAC及其多核扩展的决策非常准确。实验表明,SBAC可以将总体能耗降低22.3%,并平均减少8.3%的执行时间。 SBAC-C和SBAC-G的能耗分别降低了21.4%和23.4%。在多核方案中,SBAC-C和SBAC-G的性能分别提高了7.8%和9.6%。与以前的方法相比,SBAC的性能要好,并会带来微不足道的设计开销。

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