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Distributed task migration for thermal management in many-core systems

机译:用于多核系统中的热管理的分布式任务迁移

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In the deep submicron era, thermal hot spots and large temperature gradients significantly impact system reliability, performance, cost and leakage power. As the system complexity increases, it is more and more difficult to perform thermal management in a centralized manner because of state explosion and the overhead of monitoring the entire chip. In this paper, we propose a framework for distributed thermal management for many-core systems where balanced thermal profile can be achieved by proactive task migration among neighboring cores. The framework has a low cost agent residing in each core that observes the local workload and temperature and communicates with its nearest neighbor for task migration/exchange. By choosing only those migration requests that will result balanced workload without generating thermal emergency, the proposed framework maintains workload balance across the system and avoids unnecessary migration. Experimental results show that, compared with existing proactive task migration technique, our approach generates less hotspots and smoother thermal gradient with less migration overhead and higher processing throughput.
机译:在深亚微米时代,热点和较大的温度梯度会显着影响系统的可靠性,性能,成本和泄漏功率。随着系统复杂度的增加,由于状态爆炸和监视整个芯片的开销,以集中方式执行热管理变得越来越困难。在本文中,我们提出了用于多核系统的分布式热管理的框架,该框架中的热分布可通过在相邻核之间进行主动的任务迁移来实现平衡。该框架在每个内核中都有一个低成本代理,该代理观察本地工作负载和温度,并与其最近的邻居进行通信以进行任务迁移/交换。通过仅选择那些将导致平衡的工作负载而不产生热紧急情况的迁移请求,建议的框架可在整个系统上保持工作负载平衡,并避免不必要的迁移。实验结果表明,与现有的主动任务迁移技术相比,我们的方法产生的热点更少,热梯度更平滑,迁移开销更少,处理吞吐量更高。

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