Laissez-Faire : Fully Asymmetric Backscatter Communication.

Pan Hu, Pengyu Zhang, Deepak Ganesan
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Abstract

Backscatter provides dual-benefits of energy harvesting and low-power communication, making it attractive to a broad class of wireless sensors. But the design of a protocol that enables extremely power-efficient radios for harvesting-based sensors as well as high-rate data transfer for data-rich sensors presents a conundrum. In this paper, we present a new fully asymmetric backscatter communication protocol where nodes blindly transmit data as and when they sense. This model enables fully flexible node designs, from extraordinarily power-efficient backscatter radios that consume barely a few micro-watts to high-throughput radios that can stream at hundreds of Kbps while consuming a paltry tens of micro-watts. The challenge, however, lies in decoding concurrent streams at the reader, which we achieve using a novel combination of time-domain separation of interleaved signal edges, and phase-domain separation of colliding transmissions. We provide an implementation of our protocol, LF-Backscatter, and show that it can achieve an order of magnitude or more improvement in throughput, latency and power over state-of-art alternatives.

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自由放任:完全不对称反向散射通信。
反向散射提供了能量收集和低功耗通信的双重好处,使其对广泛的无线传感器具有吸引力。但是,要设计一种协议,既能为基于采集的传感器提供极节能的无线电,又能为数据丰富的传感器提供高速数据传输,这就成了一个难题。在本文中,我们提出了一种新的完全非对称反向散射通信协议,该协议中节点在感知时盲目传输数据。这种模式可以实现完全灵活的节点设计,从非常节能的反向散射无线电,仅消耗几微瓦,到高吞吐量无线电,可以以数百Kbps的速度传输,而消耗微不足道的数十微瓦。然而,挑战在于在读取器上解码并发流,我们使用交错信号边缘的时域分离和碰撞传输的相域分离的新组合来实现。我们提供了我们的协议lf -反向散射的实现,并表明它可以在吞吐量,延迟和功率方面实现数量级或更多的改进,而不是最先进的替代方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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Laissez-Faire : Fully Asymmetric Backscatter Communication.
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