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DPPC: Dynamic Power Partitioning and Control for Improved Chip Multiprocessor Performance

机译:DPPC:动态功率分配和控制,可改善芯片多处理器性能

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A key challenge in chip multiprocessor (CMP) design is to optimize the performance within a power budget limited by the CMP’s cooling, packaging, and power supply capacities. Most existing solutions rely solely on dynamic voltage and frequency scaling (DVFS) to adapt the power consumption of CPU cores, without coordinating with the last-level on-chip (e.g., L2) cache. This paper proposes DPPC, a chip-level power partitioning and control strategy that can dynamically and explicitly partition the chip-level power budget among different CPU cores and the shared last-level cache in a CMP based on the workload characteristics measured online. DPPC features a novel performance-power model and an online model estimator to quantitatively estimate the performance contributed by each core and the cache with their respective local power budgets. DPPC then re-partitions the chip-level power budget among them for optimized CMP performance. The partitioned local power budgets for the CPU cores and cache are precisely enforced by power control algorithms designed rigorously based on feedback control theory. Our extensive experimental results demonstrate that DPPC achieves better CMP performance, within a given power budget, than several state-of-the-art power control solutions for both SPEC CPU2006 benchmarks and multi-threaded SPLASH-2 workloads.
机译:芯片多处理器(CMP)设计中的关键挑战是在受CMP的冷却,封装和电源容量限制的功率预算内优化性能。大多数现有解决方案仅依靠动态电压和频率缩放(DVFS)来适应CPU内核的功耗,而无需与最后一级的片上(例如L2)缓存进行协调。本文提出了DPPC,一种芯片级功率分配和控制策略,该策略可以根据在线测量的工作负载特征在CMP中的不同CPU内核和共享的最后一级缓存之间动态,显式地分配芯片级功率预算。 DPPC具有新颖的性能-功率模型和在线模型估计器,可通过其各自的本地功率预算来定量估计每个内核和缓存所贡献的性能。然后,DPPC将其中的芯片级功率预算重新分配,以优化CMP性能。通过基于反馈控制理论严格设计的电源控制算法,可以精确地执行CPU内核和缓存的分区本地电源预算。我们广泛的实验结果表明,在几个给定SPEC CPU2006基准测试和多线程SPLASH-2工作负载的先进电源控制解决方案的前提下,DPPC在给定的电源预算下都能实现更好的CMP性能。

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