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Performance evaluation of three Network-on-Chip (NoC) architectures (Invited)

机译:三种片上网络(NoC)架构的性能评估(已邀请)

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As the number of processing elements which can be placed on a single chip doubles about every two years, both System-on-Chip (SoC) and the microprocessor market call for high-performance, flexible, scalable, and design-friendly interconnection network architectures [1]. Network-on-Chip (NoC) has been proposed as a solution to multi-core communication problems. The advantages of NoC include high bandwidth, low latency, low power consumption and scalability. The interconnection architecture has a significant impact on the performance of networks in terms of point-to-point delay, throughput, and loss rate. We evaluate the performance of three NoC architectures, including the torus, the Metacube and the hypercube under Poisson and bit-complement traffic pattern. Network sizes of 32, 64, 128, 512 and 1024 nodes are considered. Three injection rates ranging from 10% to 30% are applied to the target networks. Performance evaluation reflects that the torus is a viable choice for small networks (32–64 nodes) and the Metacube exhibits similar performance to the hypercube for 128 nodes and 512 nodes networks under a moderate load. Lower link complexity and fewer long wires make the Metacube a cheaper alternative to the hypercube.
机译:随着可放置在单个芯片上的处理元件数量大约每两年翻一番,片上系统(SoC)和微处理器市场都要求高性能,灵活,可扩展且设计友好的互连网络架构[1]。片上网络(NoC)已被提出作为多核通信问题的解决方案。 NoC的优势包括高带宽,低延迟,低功耗和可扩展性。就点对点延迟,吞吐量和丢失率而言,互连体系结构对网络性能具有重大影响。我们评估了三种NoC架构的性能,包括Poisson和位互补流量模式下的环面,Metacube和超立方体。考虑网络大小为32、64、128、512和1024个节点。目标网络采用三种注入率,范围从10%到30%。性能评估表明,对于小型网络(32-64个节点),圆环是一个可行的选择,并且在中等负载下,对于128个节点和512个节点的网络,Metacube的性能与超立方体相似。较低的链接复杂度和较少的长电线使Metacube成为超立方体的便宜替代品。

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