Thermal management of manycore systems with silicon-photonic networks

Tiansheng Zhang, José L. Abellán, A. Joshi, A. Coskun
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引用次数: 42

Abstract

Silicon-photonic network-on-chips (NoCs) provide high bandwidth density; therefore, they are promising candidates to replace electrical NoCs in manycore systems. The silicon-photonic NoCs, however, are sensitive to the temperature gradients that typically occur on the chip, and hence, require proactive thermal management. This paper first provides a design space exploration of silicon-photonic networks in manycore systems and quantifies the performance impact of the temperature gradients for various network bandwidths. The paper then introduces a novel job allocation technique that minimizes the temperature gradients among the ring modulators/filters to improve the application performance. Experimental results for a single-chip 256-core system demonstrate that our policy is able to maintain the maximum network bandwidth. Compared to existing workload allocation policies, the proposed policy improves system performance by up to 26.1% when running a single application and 18.3% for multi-program scenarios.
硅光子网络多核系统的热管理
硅光子片上网络(noc)提供高带宽密度;因此,它们有望取代多核系统中的电气noc。然而,硅光子noc对通常发生在芯片上的温度梯度很敏感,因此需要主动热管理。本文首先对多核系统中硅光子网络的设计空间进行了探索,并量化了不同网络带宽下温度梯度对性能的影响。然后,本文介绍了一种新的工作分配技术,该技术可以最小化环形调制器/滤波器之间的温度梯度,以提高应用性能。在单片256核系统上的实验结果表明,该策略能够保持最大的网络带宽。与现有的工作负载分配策略相比,建议的策略在运行单个应用程序时可将系统性能提高26.1%,在运行多程序场景时可将系统性能提高18.3%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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