硅中间商系统的NoC架构:当你可以(从中间商)免费获得它们时,为什么还要支付更多的电线?

Natalie D. Enright Jerger, Ajaykumar Kannan, Zimo Li, G. Loh
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引用次数: 74

摘要

硅中间层技术(“2.5D”堆叠)能够将多个存储堆栈集成到处理器芯片上,从而大大增加封装内存储容量,同时在很大程度上避免了在处理器上3D堆叠DRAM的热挑战。采用中介器进行存储器集成的系统使用中介器在芯片之间提供点对点互连。然而,这些互连只利用了中间器总体路由容量的一小部分,在这项工作中,我们探索如何利用这些未使用的资源。我们描述了一种扩展片上网络(NoC)架构的通用方法,以更好地利用硅中间层的额外路由资源。我们提出了一种非对称组织,将NoC分布在多核芯片和中间层上,其中每个子网在流量类型、拓扑结构、使用或不使用集中、直接与间接网络组织以及其他网络属性方面都不同。通过实验评估,我们发现利用中介器中未被利用的路由资源可以显著提高性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
NoC Architectures for Silicon Interposer Systems: Why Pay for more Wires when you Can Get them (from your interposer) for Free?
Silicon interposer technology ("2.5D" stacking) enables the integration of multiple memory stacks with a processor chip, thereby greatly increasing in-package memory capacity while largely avoiding the thermal challenges of 3D stacking DRAM on the processor. Systems employing interposers for memory integration use the interposer to provide point-to-point interconnects between chips. However, these interconnects only utilize a fraction of the interposer's overall routing capacity, and in this work we explore how to take advantage of this otherwise unused resource. We describe a general approach for extending the architecture of a network-on-chip (NoC) to better exploit the additional routing resources of the silicon interposer. We propose an asymmetric organization that distributes the NoC across both a multi-core chip and the interposer, where each sub-network is different from the other in terms of the traffic types, topologies, the use or non-use of concentration, direct vs. Indirect network organizations, and other network attributes. Through experimental evaluation, we show that exploiting the otherwise unutilized routing resources of the interposer can lead to significantly better performance.
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