使用符号转换映射的物理层跨技术通信

Lingang Li, Yongrui Chen, Zhijun Li
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引用次数: 5

摘要

物理层跨技术通信(PHY-CTC)的最新进展已经实现了跨不同无线技术的高吞吐量直接通信。这些物理- ctc工作通常是通过模拟接收机的目标信号波形来实现的。然而,由于仿真的不完善,信号仿真存在固有的不可靠性,并且只支持很少的通信通道。当应用于WiFi到蓝牙低功耗(BLE)场景时,它将面临两个挑战:1)BLE接收器不能容忍帧中的任何比特错误,同时很容易出现仿真错误;ii)当大多数BLE信道不可用于基于CTC的仿真时,BLE设备执行信道跳变。为了应对这些挑战,我们提出了WiBle,这是一种高可靠的全通道支持从WiFi到BLE的PHY-CTC。WiBle的关键技术见解是符号转换映射:当一个符号由WiFi发送者传输并流入BLE接收器时,它会留下一些独特的签名,可以利用这些签名提取信息。更具体地说,可以观察到BLE接收信号的相移可以映射到WiFi符号的过渡。因此,通过仔细选择WiFi发送方的符号,我们可以产生正确的BLE GFSK解调所需的相移,并实现可靠的CTC。USRP和商用芯片的评估结果表明,在包括室内/室外和LoS/NLoS设置在内的各种配置下,WiBle在更高的可靠性(> 95%的帧接收比),更宽的信道覆盖范围(支持所有40个BLE信道)和更高的吞吐量(974.3Kbps)方面优于最先进的ctc。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
WiBle: Physical-Layer Cross-Technology Communication with Symbol Transition Mapping
Recent advances on Physical-layer Cross-Technology Communication (PHY-CTC) have achieved high throughput direct communication across different wireless technologies. These PHY-CTC works are commonly achieved by emulating the target signal waveform of the receiver. However, signal emulation suffers from inherent unreliability due to imperfect emulation, and it only supports few communication channels. When applied in WiFi to Bluetooth Low Energy (BLE) scenario, it will face two challenges: i) a BLE receiver can not tolerate any bit error in a frame, while emulation errors are easy to appear; and ii) the BLE device performs channel hopping while most BLE channels are unavailable for emulation based CTC.To address these challenges, we present WiBle, a high reliable and all-channel supporting PHY-CTC from WiFi to BLE. The key technical insight of WiBle is symbol transition mapping: When a symbol is transmitted by a WiFi sender and flows into a BLE receiver, it will leave some unique signatures which can be leveraged to extract information. More specifically, it is observed that the phase shifts of BLE received signal can be mapped to the transitions of WiFi symbols. Therefore, by carefully selecting the symbols at the WiFi sender, we can generate the desired phase shifts for correct BLE GFSK demodulation and achieve reliable CTC. Evaluation results on both USRP and commodity chip show that WiBle outperforms state-of-the-art CTCs by higher reliability (> 95% frame reception ratio), wider channel coverage (supporting all 40 BLE channels), and higher throughput (974.3Kbps), under a full range of configurations including indoor/outdoor and LoS/NLoS settings.
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