CloudCache: Expanding and shrinking private caches

Hyunjin Lee, Sangyeun Cho, B. Childers
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引用次数: 80

Abstract

The number of cores in a single chip multiprocessor is expected to grow in coming years. Likewise, aggregate on-chip cache capacity is increasing fast and its effective utilization is becoming ever more important. Furthermore, available cores are expected to be underutilized due to the power wall and highly heterogeneous future workloads. This trend makes existing L2 cache management techniques less effective for two problems: increased capacity interference between working cores and longer L2 access latency. We propose a novel scalable cache management framework called CloudCache that creates dynamically expanding and shrinking L2 caches for working threads with fine-grained hardware monitoring and control. The key architectural components of CloudCache are L2 cache chaining, inter- and intra-bank cache partitioning, and a performance-optimized coherence protocol. Our extensive experimental evaluation demonstrates that CloudCache significantly improves performance of a wide range of workloads when all or a subset of cores are occupied.
CloudCache:扩展和收缩私有缓存
单芯片多处理器的核心数量预计将在未来几年增长。同样,片上聚合缓存容量正在快速增长,其有效利用变得越来越重要。此外,由于电源墙和未来高度异构的工作负载,预计可用的核心将得不到充分利用。这种趋势使得现有的L2缓存管理技术在两个问题上不那么有效:工作核心之间的容量干扰增加和L2访问延迟延长。我们提出了一种新的可扩展缓存管理框架,称为CloudCache,它通过细粒度硬件监控和控制为工作线程创建动态扩展和收缩L2缓存。CloudCache的关键架构组件是L2缓存链,银行间和银行内部缓存分区,以及性能优化的一致性协议。我们广泛的实验评估表明,当所有内核或子集被占用时,CloudCache显着提高了各种工作负载的性能。
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