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Energy-Efficient Application Mapping and Scheduling for Lifetime Guaranteed MPSoCs

机译:终身保证的MPSoC的节能应用映射和调度

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Energy optimization is one of the most critical objectives for the synthesis of multiprocessor system-on-chip (MPSoC). Besides, to ensure a long processor lifetime and to maintain a safe chip temperature are also important for multiprocessor manufactures under deep submicrometer process technologies. This paper presents a mixed integer linear programming (MILP) model to determine the mapping and scheduling of real-time applications onto embedded MPSoC platforms, such that the total energy consumption is minimized with the lifetime reliability constraint and the temperature threshold constraint satisfied. We develop a lightweight temperature model that can be integrated in the MILP model to predict the chip temperature accurately and efficiently. By exploiting the dynamic voltage and frequency scaling capability of modern processors, processor voltage/frequency assignment is also considered in our MILP model. Extensive performance evaluations on synthetic and real-world applications demonstrate the effectiveness of the proposed approach. Our MILP model achieves an average reduction of 19.09% and 28.53% total energy in comparison with two state-of-the-art techniques on the basis of guaranteeing the safe chip temperature and system lifetime reliability.
机译:能源优化是综合多处理器片上系统(MPSoC)的最关键目标之一。此外,对于采用深亚微米工艺技术的多处理器制造商而言,确保较长的处理器寿命并保持安全的芯片温度也很重要。本文提出了一种混合整数线性规划(MILP)模型来确定实时应用在嵌入式MPSoC平台上的映射和调度,从而在满足寿命可靠性约束和温度阈值约束的情况下将总能耗降至最低。我们开发了一种轻量级的温度模型,可以将其集成到MILP模型中,以准确高效地预测芯片温度。通过利用现代处理器的动态电压和频率缩放功能,我们的MILP模型中也考虑了处理器电压/频率分配。对综合和实际应用程序进行的广泛性能评估证明了该方法的有效性。与两种最先进的技术相比,我们的MILP模型在确保安全的芯片温度和系统寿命可靠性的基础上,平均总能耗降低了19.09%和28.53%。

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