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An Efficient Technique for Chip Temperature Optimization of Multiprocessor Systems in the Dark Silicon Era

机译:黑暗硅时代多处理器系统芯片温度优化的高效技术

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In the dark silicon era, a fundamental problem is: given a real-time computation demand represented by a set of independent applications with their own power consumption, how to determine if an on-chip multiprocessor system is able to respond to this demand and maintain its reliability by keeping every core within the safe temperature range. In this paper, we first present a novel thermal model for the prediction of chip peak temperature assuming the application-to-core mapping is determined. The mathematical model combines linearized steady-state thermal model with empirical scaling factors to achieve significantly improved accuracy and running efficiency. Based on it, a MILP-based approach is presented to find the optimal application-to-core assignment such that the computation demand is met and the chip temperature is minimized. At last, if the minimized temperature still exceeds the safe temperature threshold, a novel heuristic algorithm, called temperature threshold-aware result handling (TTRH), is proposed to drop certain applications selectively from immediate execution, and lower the chip peak temperature to the safety threshold. Extensive performance evaluation shows that the MILP-based approach can reduce the chip peak temperature by 9.1 C on average compared to traditional techniques. TTRH algorithm can further lower the chip peak temperature by 1.38° C on average with the application dropping rate of less than 4.35%.
机译:在黑暗中硅的时代,一个根本的问题是:给出一组与自身耗电独立的应用程序所代表的实时计算需求,如何确定一个片上多处理器系统能够满足这一要求,并保持通过保持安全温度范围内的每个核心来实现其可靠性。在本文中,首先介绍一种用于预测芯片峰值温度的新型热模型,假设确定了应用到核心映射。数学模型将线性化稳态热模型与经验缩放因子相结合,实现了显着提高的准确性和运行效率。基于它,提出了一种基于MILP的方法,以找到最佳的应用到核心分配,使得满足计算需求,并且芯片温度最小化。最后,如果最小化的温度仍然超过安全温度阈值,则提出一种名为温度阈值感知结果处理(TTRH)的新型启发式算法,以便从立即执行中选择性地放下某些应用,并将芯片峰值温度降低到安全性临界点。广泛的性能评估表明,与传统技术相比,基于MILP的方法可以将芯片峰值温度降低9.1℃。 TTRH算法平均进一步将芯片峰值温度降低1.38°C,施加掉度小于4.35%。

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