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Energy-Efficient and Bandwidth-Reconfigurable Photonic Networks for High-Performance Computing (HPC) Systems

机译:高效能和带宽可重构的光子网络,用于高性能计算(HPC)系统

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摘要

Optical interconnects are becoming ubiquitous for short-range communication within boards and racks due to higher communication bandwidth at lower power dissipation when compared to metallic interconnects. Efficient multiplexing techniques (wavelengths, time, and space) allow bandwidths to scale; static or predetermined resource allocation of wavelengths can be detrimental to network performance for nonuniform (adversial) workloads. Dynamic bandwidth reallocation (DBR) based on actual traffic pattern can lead to improved network performance by utilizing idle resources. While DBR techniques can alleviate interconnection bottlenecks, power consumption also increases considerably with increase in bit rate and channels. In this paper, we propose to improve the performance of optical interconnects using DBR techniques and simultaneously optimize the power consumption using dynamic power management (DPM) techniques. DBR reallocates idle channels to busy channels (wavelengths) for improving throughput, and DPM regulates the bit rates and supply voltages for the individual channels. A reconfigurable optoelectronic architecture and a performance adaptive algorithm for implementing DBR and DPM are proposed in this paper. Our proposed reconfiguration algorithm achieves a significant reduction in power consumption and considerable improvement in throughput, with a marginal increase in latency for synthetic and real (Splash-2) traffic traces.
机译:由于与金属互连相比,光互连具有更高的通信带宽和更低的功耗,因此在板和机架内进行短距离通信变得越来越普遍。高效的复用技术(波长,时间和空间)允许带宽扩展;波长的静态或预定资源分配可能不利于非均匀(恶意)工作负载的网络性能。基于实际流量模式的动态带宽重新分配(DBR)可通过利用空闲资源来提高网络性能。尽管DBR技术可以缓解互连瓶颈,但功耗也会随着比特率和通道的增加而显着增加。在本文中,我们建议使用DBR技术提高光互连的性能,并同时使用动态电源管理(DPM)技术来优化功耗。 DBR将空闲信道重新分配给繁忙信道(波长)以提高吞吐量,而DPM则为各个信道调节比特率和电源电压。提出了一种可重构的光电体系结构和用于实现DBR和DPM的性能自适应算法。我们提出的重新配置算法可实现功耗的显着降低和吞吐量的显着提高,同时对合成和实际(Splash-2)流量跟踪的延迟会略有增加。

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