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Power-Performance Analysis of Networks-on-Chip With Arbitrary Buffer Allocation Schemes

机译:带有任意缓冲区分配方案的片上网络的功率性能分析

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摘要

End-to-end delay, throughput, energy consumption, and silicon area are the most important design metrics of networks-on-chip (NoCs). Although several analytical models have been previously proposed for predicting such metrics in NoCs, very few of them consider the effect of message waiting time in the buffers of network routers for predicting overall power consumptions and none of them consider structural heterogeneity of network routers. This paper introduces two inter-related analytical models to compute message latency and power consumption of NoCs with arbitrary topology, buffering structure, and routing algorithm. Buffer allocation scheme defines the buffering space for each individual channel of the NoC that can be homogenous (all channels having similar buffer structures) or heterogeneous (each channel having its own buffer structure). Here, the buffer allocation scheme can be either homogenous or heterogeneous. We assume no bandwidth sharing of virtual channels for a physical channel, and IP cores generate messages following a Poisson distribution. The results obtained from simulation experiments confirm that the proposed models exhibit acceptable accuracy for different network configurations operating under various working conditions. We have shown that basing our analysis on a Poisson traffic model is still useful for scenarios with real application workloads.
机译:端到端延迟,吞吐量,能耗和硅面积是片上网络(NoC)的最重要设计指标。尽管先前已经提出了几种分析模型来预测NoC中的此类指标,但是很少有分析模型考虑消息路由器等待时间在网络路由器的缓冲区中的影响,以预测总体功耗,而没有一个模型考虑网络路由器的结构异质性。本文介绍了两个相互关联的分析模型,它们利用任意拓扑,缓冲结构和路由算法来计算NoC的消息等待时间和功耗。缓冲区分配方案为NoC的每个单独通道定义了缓冲区空间,该空间可以是同质的(所有通道具有相似的缓冲区结构)或异质的(每个通道均具有自己的缓冲区结构)。在这里,缓冲区分配方案可以是同质的也可以是异质的。我们假设没有物理信道的虚拟信道带宽共享,并且IP核遵循泊松分布生成消息。从仿真实验中获得的结果证实,所提出的模型对于在各种工作条件下运行的不同网络配置都显示出可接受的精度。我们已经表明,基于泊松流量模型的分析对于具有实际应用程序工作负载的场景仍然有用。

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