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3D Many-Core Microprocessor Power Management by Space-Time Multiplexing Based Demand-Supply Matching

机译:基于时空复用的需求匹配的3D多核微处理器电源管理

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A reconfigurable power switch network is proposed to perform a demand-supply matched power management between 3D-integrated microprocessor cores and power converters. The power switch network makes physical connections between cores and converters by 3D through-silicon-vias (TSVs). Space-time multiplexing is achieved by the configuration of power switch network and is realized by learning and classifying power-signature of workloads. As such, by classifying workloads based on magnitude and phase of power-signature, space-time multiplexing can be performed with the minimum number of converters allocated to cluster of cores. Furthermore, a demand-response based workload scheduling is performed to reduce peak-power and to balance workload. The proposed power management is verified by system models with physical design parameters and benched power traces of workloads. For a 64-core case, experiment results show 40.53 percent peak-power reduction and 2.50 balanced workload along with a 42.86 percent reduction in the required number of power converters compared to the work without using STM based power management.
机译:提出了一种可重新配置的电源开关网络,以在集成3D的微处理器核心和电源转换器之间执行供需匹配的电源管理。电源开关网络通过3D硅通道(TSV)在内核和转换器之间建立物理连接。时空复用是通过电源交换网络的配置来实现的,并且是通过学习和分类工作负载的电源签名来实现的。这样,通过基于功率签名的大小和相位对工作负载进行分类,可以使用分配给核心集群的最少数量的转换器来执行空时复用。此外,执行基于需求响应的工作负载调度以减少峰值功率并平衡工作负载。所建议的电源管理已通过具有物理设计参数和工作负载台式电源跟踪的系统模型进行了验证。对于64核情况,与不使用基于STM的电源管理的工作相比,实验结果表明,峰值功耗降低了40.53%,平衡工作负载降低了2.50,同时所需的电源转换器数量减少了42.86%。

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