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WIFi-Nano: Reclaiming WiFi Efficiency Through 800 ns Slots

机译:WIFi-Nano:通过800 ns的插槽恢复WiFi效率

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The increase in WiFi physical layer transmission speeds from 1 Mbps to 1 Gbps has reduced transmission times for a 1500 byte packet from 12 ms to 12 μs. However, WiFi MAC overheads such as channel access and acks have not seen similar reductions and cumulatively contribute about 150 μs on average per packet. Thus, the efficiency of WiFi has deteriorated from over 80% at 1 Mbps to under 10% at 1 Gbps. In this paper, we propose WiFi-Nano, a system that uses 800 ns slots to significantly improve WiFi efficiency. Reducing slot time from 9 μs to 800 ns makes backoffs efficient, but clear channel assessment can no longer be completed in one slot since preamble detection can now take multiple slots. Instead of waiting for multiple slots for detecting preambles, nodes speculatively transmit preambles as their backoff counters expire, while continuing to detect premables using self-interference cancellation. Upon detection of preambles from other transmitters, nodes simply abort their own preamble transmissions, thereby allowing the earliest transmitter to succeed. Further, receivers speculatively transmit their ack preambles at the end of packet reception, thereby reducing ack overhead. We validate the effectiveness of WiFi-Nano through implementation on an FPGA-based software defined radio platform, and through extensive simulations, demonstrate efficiency gains of up to 100%.
机译:WiFi物理层传输速度从1 Mbps增加到1 Gbps,将1500字节数据包的传输时间从12 ms减少到12μs。但是,WiFi MAC开销(例如通道访问和ack)并未出现类似的减少,并且平均每个数据包累计贡献了约150μs。因此,WiFi的效率已从1 Mbps时的80%以上降至1 Gbps时的10%以下。在本文中,我们提出了WiFi-Nano系统,该系统使用800 ns的插槽来显着提高WiFi效率。将时隙时间从9μs减少到800 ns可以提高退避效率,但是由于前同步码检测现在可以占用多个时隙,因此无法在一个时隙中完成清晰的信道评估。节点不必等待多个时隙来检测前同步码,而是在其退避计数器到期时以推测方式发送前同步码,同时继续使用自干扰消除功能检测可升级码。一旦检测到来自其他发射机的前同步码,节点就简单地中止其自己的前同步码传输,从而允许最早的发射机成功。此外,接收机在分组接收结束时推测性地发送其ack前同步码,从而减少了ack开销。我们通过在基于FPGA的软件定义的无线电平台上实施,并通过广泛的仿真,证明WiFi-Nano的有效性高达100%。

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