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首页> 外文期刊>IEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems >Augmented Cross-Entropy-Based Joint Temperature Optimization of Real-Time 3-D MPSoC Systems
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Augmented Cross-Entropy-Based Joint Temperature Optimization of Real-Time 3-D MPSoC Systems

机译:基于跨熵的基于交叉熵的关节温度优化,实时3-D MPSOC系统

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摘要

3-D multiprocessor system-on-chip (MPSoC) systems can offer higher integration density, lower interaction cost, better bandwidth, and greater performance. However, vertically stacked silicon layers and limited heat dissipation paths result in high peak temperature and large temperature variation, which incur reliability reduction, lifetime decay, and performance degradation. In this article, we propose an offline augmented cross-entropy (CE)-based task scheduling strategy to jointly optimize peak temperature and temperature variation under the constraint of timeliness. Specifically, based on the conventional CE method, a heuristic iterative sampling method is designed to explore task-to-core assignment for balanced heat distribution between the top-layer and the bottom-layer cores. Subsequently, thermal characteristics of 3-D MPSoC systems are used to judiciously swap tasks between the two layers to improve the conventional CE-based task assignment and accelerate the iterative process. The peak temperature of individual cores is further reduced via sequencing, splitting, and slacking task execution. The experimental results demonstrate that compared to the existing state-of-the-art methods, the proposed scheme can reduce peak temperature by up to 8.02 degrees C and temperature variation by up to 24.78% without violating the timeliness of tasks.
机译:3-D多处理器系统上片(MPSOC)系统可以提供更高的集成密度,更低的交互成本,更好的带宽和更高的性能。然而,垂直堆叠的硅层和有限的散热路径导致高峰温度和大的温度变化,这产生可靠性,寿命衰减和性能劣化。在本文中,我们提出了一个离线增强的跨熵(CE)的基于任务调度策略,以在及时性的约束下共同优化峰值温度和温度变化。具体地,基于传统的CE方法,启发式迭代采样方法旨在探索顶层和底层核之间的平衡热分布的任务到核心分配。随后,3-D MPSOC系统的热特性用于明智地交换两层之间的任务,以改善传统的基于CE的任务分配并加速迭代过程。通过测序,分裂和松弛任务执行进一步降低单个芯的峰值温度。实验结果表明,与现有的最先进的方法相比,所提出的方案可以将峰值温度降低至8.02℃,温度变化高达24.78%,而无需违反任务的时间性。

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