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Power- and Cache-Aware Task Mapping with Dynamic Power Budgeting for Many-Cores

机译:功率和高速缓存感知任务映射,具有多核的动态电源预算

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Two factors primarily affect the performance of multi-threaded tasks on many-core processors with logically-shared and physically-distributed Last-Level Cache (LLC): the LLC latencies of threads running on different cores and the per-core power budgets that aim to guarantee thermally safe operation. Two knobs affect these factors: First, the mapping of threads to cores affects both the LLC latencies and the power budgets. Second, dynamic power budgeting refines the power budgets during task execution. A mapping that spatially distributes threads across the many-core increases the power budgets, but unfortunately also increases the LLC latencies. Contrarily, mapping all threads near the center of the many-core minimizes the LLC latencies, but unfortunately also decreases the power budgets. Consequently, both metrics cannot be simultaneously optimal, which leads to a Pareto-optimization for task mapping that has formerly not been exploited. Dynamic power budgeting reallocates the power budgets according to the tasks' execution phases. This results in a dynamically changing non-uniform power budget, which further increases the performance. We are the first to present a run-time algorithm PCGov combining task-agnostic task mapping and task-aware dynamic power budgeting for many-cores with shared distributed LLC. PCGov yields up to 21 percent lower response time and 13 percent lower energy consumption compared to the state-of-the-art, with a low overhead of less than 0.5 percent.
机译:两个因素主要影响多线程任务对许多核心处理器的性能,具有逻辑共享和物理分布的最后级别缓存(LLC):在不同核心上运行的线程的LLC延迟和目标的每核电源预算保证热安全操作。两个旋钮会影响这些因素:首先,线程到核心的映射会影响LLC延迟和电力预算。其次,动态功率预算在任务执行期间改进电源预算。在空间地分配跨越核心的线程的映射增加了电力预算,但遗憾的是还增加了LLC延迟。相反,映射许多核心中心附近的所有线程最小化LLC延迟,但不幸的是还降低了电力预算。因此,两个度量都不能同时最佳,这导致了以前未被利用的任务映射的静态优化。动态功率预算根据任务的执行阶段重新分配电源预算。这导致动态变化的非均匀电源预算,这进一步提高了性能。我们是第一个呈现运行时算法PCGOV与共享分布式LLC的许多核心组合任务 - 不可止性的任务映射和任务感知动态功率预算。与最先进的PCGOV较低的响应时间较低,较低的能耗降低了13%,低于0.5%的低开销。

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