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Energy Consumption Improvement of Shared-Cache Multicore Clusters Based on Explicit Simultaneous Multithreading

机译:基于显式同时多线程的共享缓存多核群集的能耗改善

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The use of multicore clusters is one of the strategies used to achieve energy-efficient multicore architecture designs. Even though chips have multiple cores in these designs, cache constraints such as size, latency, concurrency, and scalability still apply. Multicore clusters must therefore implement alternative solutions to the shared cache access problem. Bigger or more frequently accessed caches consume more energy, which is a problem in explicit multithread concurrency. In this work, we simulate different multicore cluster architectures to identify the best configuration in terms of energy efficiency, concerning a varying number of cores, cache sizes and sharing strategies. We also observe the simultaneous and individual multithreading concurrency of two application groups. The results showed that for applications with regular tasks loads, the simultaneous multithreading approach was 43.6% better than the individual one, in terms of energy consumption. For irregular tasks loads, individual executions proved to be the best option, with an increase of up to 81.3% in energy efficiency. We also concluded that shared L2 caches were up to 13.4% more energy-efficient than private cache configurations.
机译:多核群集的使用是实现节能多核体系结构设计的策略之一。尽管芯片在这些设计中具有多个内核,但缓存约束(例如大小,延迟,并发性和可伸缩性)仍然适用。因此,多核群集必须实现共享缓存访问问题的替代解决方案。更大或更频繁访问的缓存消耗更多能量,这在显式多线程并发中是一个问题。在这项工作中,我们模拟了不同的多核群集体系结构,以在能源效率方面确定最佳配置,涉及不同数量的内核,缓存大小和共享策略。我们还观察了两个应用程序组的同时和单独的多线程并发。结果表明,对于具有常规任务负载的应用程序,就能耗而言,同时多线程方法比单个方法好43.6%。对于不规则的任务负荷,个人执行被证明是最佳选择,其能效提高了81.3%。我们还得出结论,共享L2缓存比私有缓存配置的能源效率高出13.4%。

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