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首页> 外文期刊>IEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems >Adaptive Tuning of Photonic Devices in a Photonic NoC Through Dynamic Workload Allocation
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Adaptive Tuning of Photonic Devices in a Photonic NoC Through Dynamic Workload Allocation

机译:通过动态工作负荷分配对光子NoC中的光子设备进行自适应调整

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摘要

Photonic network-on-chip (PNoC) is a promising candidate to replace traditional electrical NoC in manycore systems that require substantial bandwidths. The photonic links in the PNoC comprise laser sources, optical ring resonators, passive waveguides, and photodetectors. Reliable link operation requires laser sources and ring resonators to have matching optical frequencies. However, inherent thermal sensitivity of photonic devices and manufacturing process variations can lead to a frequency mismatch. To avoid this mismatch, micro-heaters are used for thermal trimming and tuning, which can dissipate a significant amount of power. This paper proposes a novel FreqAlign workload allocation policy, accompanying an adaptive frequency tuning (AFT) policy, that is capable of reducing thermal tuning power of PNoC. FreqAlign uses thread allocation and thread migration to control temperature for matching the optical frequencies of ring resonators in each photonic link. The AFT policy reduces the remaining optical frequency difference among ring resonators and corresponding on-chip laser sources by hardware tuning methods. We use a full modeling stack of a PNoC that includes a performance simulator, a power simulator, and a thermal simulator with a temperature-dependent laser source power model to design and evaluate our proposed policies. Our experimental results demonstrate that FreqAlign reduces the resonant frequency gradient between ring resonators by 50%-60% when compared to existing workload allocation policies. Coupled with AFT, FreqAlign reduces localized thermal tuning power by 19.28 W on average, and is capable of saving up to 34.57 W when running realistic loads in a 256-core system without any performance degradation.
机译:在许多需要大量带宽的核心系统中,光子片上网络(PNoC)有望取代传统的电子NoC。 PNoC中的光子链路包括激光源,光学环形谐振器,无源波导和光电探测器。可靠的链接操作要求激光源和环形谐振器具有匹配的光学频率。但是,光子器件固有的热敏性和制造工艺的差异会导致频率失配。为了避免这种不匹配,微加热器用于热修整和调整,这会耗散大量功率。本文提出了一种新颖的FreqAlign工作负载分配策略,并带有自适应频率调整(AFT)策略,该策略能够降低PNoC的热调整能力。 FreqAlign使用线程分配和线程迁移来控制温度,以匹配每个光子链路中环形谐振器的光学频率。 AFT策略通过硬件调整方法减少了环形谐振器和相应的片上激光源之间的剩余光频差。我们使用完整的PNoC建模堆栈,其中包括性能模拟器,功率模拟器和带有温度相关激光源功率模型的热模拟器,以设计和评估我们提出的策略。我们的实验结果表明,与现有工作量分配策略相比,FreqAlign将环形谐振器之间的谐振频率梯度降低了50%-60%。与AFT结合使用时,FreqAlign平均将本地化的热调谐功率降低了19.28 W,并且在256核系统中运行实际负载时,能够节省高达34.57 W的功率,而不会降低性能。

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  • 作者单位

    Department of Computer Science, Catholic University of Murcia, Murcia, Spain;

    Department of Electrical and Computer Engineering, Boston University, Boston, MA, USA;

    Department of Electrical and Computer Engineering, University of California at San Diego, La Jolla, CA, USA;

    Department of Electrical and Computer Engineering, University of California at Santa Barbara, Santa Barbara, CA, USA;

    Department of Electrical and Computer Engineering, Boston University, Boston, MA, USA;

    Department of Computer Science and Engineering and the Department of Electrical and Computer Engineering, University of California at San Diego, La Jolla, CA, USA;

    Department of Electrical and Computer Engineering, University of California at Santa Barbara, Santa Barbara, CA, USA;

    Department of Electrical and Computer Engineering, Boston University, Boston, MA, USA;

    Department of Electrical and Computer Engineering, University of California at San Diego, La Jolla, CA, USA;

    Department of Electrical and Computer Engineering, University of California at San Diego, La Jolla, CA, USA;

    Department of Electrical and Computer Engineering, Boston University, Boston, MA, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Optical ring resonators; Resonant frequency; Ring lasers; Laser tuning; Optical sensors; Photonics;

    机译:光学环形谐振器;谐振频率;环形激光器;激光调谐;光学传感器;光子学;

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