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P-sync: A Photonically Enabled Architecture for Efficient Non-local Data Access

机译:P同步:光子启用的架构,用于有效的非本地数据访问

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Communication in multi- and many-core processors has long been a bottleneck to performance due to the high cost of long-distance electrical transmission. This difficulty has been partially remedied by architectural constructs such as caches and novel interconnect topologies, albeit at a steep cost in terms of complexity. Unfortunately, even these measures are rendered ineffective by certain kinds of communication, most notably scatter and gather operations that exhibit highly non-local data access patterns. Much work has gone into examining how the increased bandwidth density afforded by chip-scale silicon photonic interconnect technologies affects computing, but photonics have additional properties that can be leveraged to greatly accelerate performance and energy efficiency under such difficult loads. This paper describes a novel synchronized global photonic bus and system architecture called P-sync that uses photonics' distance independence to greatly improve performance on many important applications previously limited by electronic interconnect. The architecture is evaluated in the context of a non-local yet common application: the distributed Fast Fourier Transform. We show that it is possible to achieve high efficiency by tightly balancing computation and communication latency in P-sync and achieve upwards of a 6x performance increase on gather patterns, even when bandwidth is equalized.
机译:由于长距离电气传输的高昂成本,多核和多核处理器中的通信一直是性能的瓶颈。尽管在复杂性方面付出了高昂的代价,但这种困难已通过诸如高速缓存和新颖的互连拓扑之类的体系结构进行了部分补救。不幸的是,某些通信甚至使这些措施都无效,最显着的是散布和收集表现出高度非本地数据访问模式的操作。目前已经进行了很多工作来研究芯片级硅光子互连技术所提供的增加的带宽密度如何影响计算,但是光子学具有其他特性,可以利用这些特性极大地提高在如此困难的负载下的性能和能效。本文介绍了一种新颖的同步全球光子总线和系统架构,称为P-sync,该架构使用光子的距离独立性来大大提高以前受电子互连限制的许多重要应用的性能。该体系结构是在非本地但通用的应用程序环境中进行评估的:分布式快速傅立叶变换。我们证明,即使在带宽相等的情况下,也可以通过在P-sync中紧密平衡计算和通信延迟来实现高效率,并在聚集模式上实现6倍以上的性能提升。

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