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首页> 外文期刊>Journal of systems architecture >Hierarchical opto-electrical on-chip network for future multiprocessor architectures
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Hierarchical opto-electrical on-chip network for future multiprocessor architectures

机译:用于未来多处理器架构的分层光电片上网络

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Importance of power dissipation in NoCs, along with power reduction capability of on-chip optical interconnects, offers optical network-on-chip as a new technology solution for on-chip interconnects. In this paper, we extract analytical models for data transmission delay, power consumption, and energy dissipation of optical and traditional NoCs. Utilizing extracted models, we compare optical NoC with electrical one and calculate lower bound limit on the optical link length below which optical on-chip network loses its efficiency. Based on this constraint, we propose a novel hierarchical on-chip network architecture, named as H2NoC, which benefits from optical transmissions in large scale SoCs and overcomes the scalability problem resulted from lower bound limit on the optical link length. Performing a series of simulation-based experiments, we study efficiency of H2NoC along with its power and energy consumption and data transmission delay. Furthermore, the impact of network size, traffic pattern, and packet size distribution on the prominence of the proposed architecture over traditional NoC and non-hierarchical ONoC is addressed in this paper. Our experimental results verify that the proposed hierarchical architecture outperforms non-hierarchical ONoC for moderate and large scale MPSoCs, while its prominence degrades for small number of processing cores.
机译:NoC中功耗的重要性以及片上光学互连的功耗降低功能,为片上互连提供了片上光网络作为一种新技术解决方案。在本文中,我们提取了光学和传统NoC的数据传输延迟,功耗和能量耗散的分析模型。利用提取的模型,我们将光NoC与电NoC进行了比较,并计算了光链路长度的下限限制,低于该限制时,片上光网络会失去效率。基于此约束,我们提出了一种新颖的分层片上网络结构,称为H2NoC,它得益于大规模SoC中的光传输,并克服了由于光链路长度的下限限制而导致的可扩展性问题。通过执行一系列基于仿真的实验,我们研究了H2NoC的效率以及其功耗和能耗以及数据传输延迟。此外,本文还讨论了网络大小,流量模式和数据包大小分布对所提出的体系结构在传统NoC和非分层ONoC之上的影响。我们的实验结果证明,对于中等规模和大型MPSoC,所提出的分层体系结构优于非分层ONoC,而对于少数处理内核,其突出性能会下降。

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