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A-WiNoC: Adaptive Wireless Network-on-Chip Architecture for Chip Multiprocessors

机译:A-WiNoC:用于芯片多处理器的自适应无线片上网络架构

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With the rise of chip multiprocessors, an energy-efficient communication fabric is required to satisfy the data rate requirements of future multi-core systems. The Network-on-Chip (NoC) paradigm is fast becoming the standard communication infrastructure to provide scalable inter-core communication. However, research has shown that metallic interconnects cause high latency and consume excess energy in NoC architectures. Emerging technologies such as on-chip wireless interconnects can alleviate the power and bandwidth problems of traditional metallic NoCs. In this paper, we propose , a scalable, adaptable wireless Network-on-Chip architecture that uses energy efficient wireless transceivers and improves network throughput by dynamically re-assigning channels in response to bandwidth demands from different cores. To implement such adaptability in our network at run-time, we propose an adaptable algorithm that works in the background along with a token sharing scheme to fully utilize the wireless bandwidth efficiently. Since no wireless NoC design has been completely realized with current technology, we describe technology trends in designing energy-efficient wireless transceivers with emerging technologies. We compare our proposed A-WiNoC to both wireless and wired topologies at 64 cores, with results showing a 1.4-2.6 speedup on real applications and a 54 percent improvement in throughput for synthetic traffic. Using Synopsys Design Compiler, our results indicate that A-WiNoC saves 25-35 percent energy over other state-of-the-art networks. We show that A-WiNoC can scale to 256 cores with an energy improvement of 21 percent and a saturation throughput increase of approximately 37 percent.
机译:随着芯片多处理器的兴起,需要一种节能通信架构来满足未来多核系统的数据速率要求。片上网络(NoC)范例正迅速成为提供可扩展内核间通信的标准通信基础结构。但是,研究表明,金属互连会导致NoC架构中的高延迟并消耗过多的能量。片上无线互连等新兴技术可以缓解传统金属NoC的功率和带宽问题。在本文中,我们提出了一种可扩展,适应性强的无线片上网络体系结构,该体系结构使用了节能无线收发器,并通过动态重新分配信道来响应来自不同核心的带宽需求,从而提高了网络吞吐量。为了在运行时在我们的网络中实现这种适应性,我们提出了一种在后台运行的适应性算法以及令牌共享方案,以有效地充分利用无线带宽。由于目前的技术还没有完全实现无线NoC设计,因此我们将介绍采用新兴技术设计节能无线收发器的技术趋势。我们将提议的A-WiNoC与64核的无线和有线拓扑进行了比较,结果显示,在实际应用中的速度提高了1.4-2.6,综合流量的吞吐量提高了54%。使用Synopsys Design编译器,我们的结果表明,与其他最新网络相比,A-WiNoC节省了25-35%的能源。我们证明,A-WiNoC可以扩展到256个内核,能耗提高21%,饱和吞吐量提高约37%。

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