为许多核心架构实现可靠的高吞吐量片上无线通信

G. Harsha, Mitali Sinha, Sidhartha Sankar Rout, Sujay Deb
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引用次数: 9

摘要

无线片上网络(wnoc)已经被证明可以通过低延迟、低能量、长距离无线链路来增强有线noc,从而克服有线noc的扩展挑战。然而,现有的无线实现在提供高通信性能的同时,在可靠性方面面临挑战。单通道通信是实现wnoc的主要方式,容易受到色散、衰落等信道效应的影响,并且提供有限的带宽。多信道通信虽然具有高吞吐量,但容易产生信道间和码元间的干扰。为了应对性能和可靠性方面的挑战,我们提出了使用正交频分复用(OFDM)调制的无线网络设计。提出的设计实现了可靠和信道弹性的无线通信,同时在WNoC中提供高吞吐量和并发传输。OFDM通过将宽带信道分成几个较小的子信道,克服了信道色散和ISI的影响。在提出的设计中,OFDM子信道被分组成多个连续频带,并分配给WNoC中的每个收发器。通过允许每个收发器仅在指定的组上传输,我们实现了同时的高带宽通信。评价结果表明,该设计达到了10^-12阶的误码率。使用并行无线链路设计,与基线网格拓扑相比,运行时间提高了29%,网络能量减少了68%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enabling Reliable High Throughput On-chip Wireless Communication for Many Core Architectures
Wireless Networks-on-Chip (WNoCs) have been shown to overcome the scaling challenges of wired NoCs by augmenting them with low latency, low energy, long range wireless links. However, existing wireless implementations face challenges in terms of reliability while providing high communication performance. Single channel communication, the pre-dominant way of implementing WNoCs, are susceptible to channel effects like dispersion, fading, etc. and also provide limited bandwidth. Multi-channel communication, though provides high throughput, are prone to inter-channel and inter-symbol interference. In order to handle both performance and reliability challenges, we propose wireless network design using Orthogonal Frequency Division Multiplexing (OFDM) modulation. The proposed design enables reliable and channel resilient wireless communication, while providing high throughput, concurrent transmissions in WNoC. OFDM, by dividing wide band channel into several smaller sub-channels, overcomes channel dispersion and ISI effects. In the proposed design, OFDM sub-channels are grouped into multiple contiguous bands and assigned to each transceiver in WNoC. By allowing each transceiver to transmit only over assigned group, we enable simultaneous, high bandwidth communications. Evaluations show that proposed design achieves BER of the order 10^-12. Using the concurrent wireless link design, the runtime is improved by 29% and network energy is reduced by 68% as compared to baseline mesh topology.
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