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Research on Cache Partitioning and Adaptive Replacement Policy for CPU-GPU Heterogeneous Processors

机译:CPU-GPU异构处理器缓存分区和自适应替换策略研究

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Heterogeneous multicore processors integrate CPU and GPU cores which use a common last-level cache (LLC). However, it puts more pressure on cache management algorithm. Since GPU cores have higher number of threads, most of the LLC space will be dominated by GPU application, leaving limited space for CPU application. Because of this reason, it seriously affects the overall system performance. Aiming at the unfair utilization of GPU and CPU cores for shared cache resource, this paper mainly proposes a novel cache management method: cache partition combined with the adaptive replacement policy. We first split the cache capacity to adjust the ratio of CPU and GPU cores for shared LLC resource and then use adaptive replacement policies for CPU and GPU applications to access LLC. Experimental results show that our scheme can make GPU applications in the case of minimal loss of performance, improve the performance of CPU applications by 16% on average (up to 33%), the overall performance improved by 6 %( up to 19%).
机译:异构多核处理器集成了CPU和GPU核心,它使用常见的最后级别缓存(LLC)。但是,它对缓存管理算法产生了更大的压力。由于GPU核心具有较高数量的线程,因此大多数LLC空间将由GPU应用主导,为CPU应用留下有限的空间。由于这个原因,它严重影响了整体系统性能。针对共享缓存资源的GPU和CPU内核的不公平利用,本文主要提出了一种新的缓存管理方法:缓存分区与自适应替换策略相结合。我们首先将缓存容量分开以调整CPU和GPU内核的比率为共享LLC资源,然后使用CPU和GPU应用程序的自适应替换策略来访问LLC。实验结果表明,我们的方案可以使GPU应用在最小的性能损失的情况下,提高CPU应用的性能16 %平均(最多33 %),整体性能提高了6 %(最多19 %)。

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