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Partitioning Strategies of Wavelength-Routed Optical Networks-on-Chip for Laser Power Minimization

机译:激光功率最小化波长路由光网络的分区策略

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Many researchers are currently at work to assess the congruent multiples in performance and energy efficiency that should be expected by the photonic integration of multi and many-core processors. However, such processors and their interconnection networks are typically viewed as monolithic resources, which fails to capture the most recent trends in the usage model of these computation-rich devices. In fact, partitioning of computation and communication resources is gaining momentum as a way of enabling application concurrency, and of consolidating software functions with heterogeneous requirements onto the same platform. Optical NoCs have never been embodied in this context. This work bridges this gap and proposes a partitioning technology for wavelength-routed ONoCs, including an algorithm for online allocation of wavelengths, that aims at their maximum reuse across partitions. This way, laser sources that are not inuse at a given point in time can be powered-off, thus mitigating the most significant contribution to static power dissipation in optical NoCs.
机译:许多研究人员目前正在努力评估通过多和许多核心处理器的光子集成应该预期的性能和能效的一致性倍数。然而,这种处理器及其互连网络通常被视为单片资源,这不能捕获这些富有设备的使用模型中的最新趋势。实际上,计算和通信资源的分区是将动量作为启用应用程序并发的方式,并且将软件功能与异构要求合并到同一平台上。光学NOCs从未在这种情况下实施过。这项工作桥接该差距并提出了一种用于波长路由的ONOC的分区技术,包括一种用于在线分配波长的算法,其涉及跨分区的最大重用。这样,在给定时间点不在给定时间的激光源可以断电,从而减轻了对光学NOC的静态功耗的最显着贡献。

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