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Islands of heaters: A novel thermal management framework for photonic NoCs

机译:加热器岛:用于光子NoC的新型热管理框架

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Silicon photonics has become a promising candidate for future networks-on-chip (NoCs) as it can enable high bandwidth density and lower latency with traversal of data at the speed of light. But the operation of photonic NoCs (PNoCs) is very sensitive to temperature variations that frequently occur on a chip. These variations can create significant reliability issues for PNoCs. For example, microring resonators (MRRs) which are the building blocks of PNoCs, may resonate at another wavelength instead of their designated wavelength due to thermal variations, which can lead to bandwidth wastage and data corruption in PNoCs. This paper proposes a novel run-time framework to overcome temperature-induced issues in PNoCs. The framework consists of (i) a PID controlled heater mechanism to nullify the thermal gradient across PNoCs, (ii) a device-level thermal island framework to distribute MRRs across regions of temperatures; and (iii) a system-level proactive thread migration technique to avoid on-chip thermal threshold violations and to reduce MRR tuning/trimming power by migrating threads between cores. Our experimental results with 64-core Corona and Flexishare PNoCs indicate that the proposed approach reliably satisfies on-chip thermal thresholds and maintains high network bandwidth while reducing total power by up to 64.1%.
机译:硅光子学已经成为未来的片上网络(NoC)的有希望的候选者,因为它可以实现高带宽密度和较低的延迟,并且能够以光速遍历数据。但是光子NoC(PNoC)的操作对芯片上经常发生的温度变化非常敏感。这些变化会给PNoC带来严重的可靠性问题。例如,由于热变化,作为PNoC构件的微环谐振器(MRR)可能会在另一个波长而不是其指定波长处发生谐振,这可能导致PNoC中的带宽浪费和数据损坏。本文提出了一种新颖的运行时框架,以克服PNoC中温度引起的问题。该框架包括:(i)PID控制的加热器机制,以消除PNoC之间的热梯度;(ii)设备级的热岛框架,以在整个温度区域分布MRR; (iii)一种系统级主动线程迁移技术,可避免在芯片上违反热阈值,并通过在内核之间迁移线程来降低MRR调整/调整能力。我们在64核Corona和Flexishare PNoC上的实验结果表明,该方法可靠地满足了片上温度阈值并保持了较高的网络带宽,同时将总功耗降低了64.1%。

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