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Design of adaptive communication channel buffers for low-power area-efficient network-on-chip architecture

机译:低功耗,面积效率低的片上网络架构的自适应通信通道缓冲器的设计

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Network-on-Chip (NoC)architectures provide a scalable solution to the wire delay constraints in deep submicron VLSI designs. Recent research into the ptimization of NoC architectures has shown that the design of buffers in the NoC routers influences the power consumption, area overhead and performance of the entire network. In this paper, we propose a low-power area-efficient NoC architecture by reducing the number of router buffers. As a reduction in the number of buffers degrades the network's performance, we propose to use the existing repeaters along the inter-router links as adaptive channel buffers for storing data when required. We evaluate the proposed adaptive communication channel buffers under static and dynamic buffer allocation in 8 x 8 mesh and folded torus network topologies. Simulation results show that reducing the router buffer size in half and using the adaptive channel buffers reduces the buffer power by 40-52% and leads to a 17-20% savings in overall network power with a 50% reduction in router area. The design with dynamic buffer allocation shows a marginal 1-5% drop in performance, while static buffer allocation shows a 10-20% drop in performance, for various traffic patterns.
机译:片上网络(NoC)架构为深亚微米VLSI设计中的线延迟限制提供了可扩展的解决方案。最近对NoC架构优化的研究表明,NoC路由器中缓冲区的设计会影响功耗,整个系统的区域开销和性能。在本文中,我们通过减少路由器缓冲区的数量提出了一种低功耗,面积高效的NoC架构。由于缓冲区数量的减少会降低网络的性能,因此我们建议沿路由器间链路使用现有的转发器作为自适应通道缓冲区,以在需要时存储数据。我们在8 x 8网格和折叠环形网络拓扑的静态和动态缓冲区分配下评估提出的自适应通信信道缓冲区。仿真结果表明,将路由器缓冲区的大小减小一半,并使用自适应通道缓冲区,可使缓冲区的功耗降低40-52%,并在使整个网络功耗节省17-20%的同时,将路由器的面积减少50%。对于各种流量模式,具有动态缓冲区分配的设计显示性能略有降低1-5%,而静态缓冲区分配显示的性能下降了10-20%。

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