Cross-Technology Communication via PHY-Layer Emulation

Wenchao Jiang, Zhijun Li, Zhimeng Yin, Ruofeng Liu, Ling Liu, T. He
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引用次数: 2

Abstract

Cross-Technology Communication is an emerging research direction providing a promising solution to the wireless coexistence problem in the ISM bands. However, the state-of-the-art CTC designs have intrinsic limitations in the throughput due to their use of coarse-grained packet-level information. In contrast, we propose to exploit the fine-grained signal modulation information via a technique called PHY-layer emulation to boost CTC throughput. We can embed a legitimate packet of a target technology, e.g., ZigBee, within the payload of a source technology, e.g., WiFi or Bluetooth Low Energy (BLE). At the mean time, we require no modification at the hardware or firmware at either sender or receiver. We can achieve 8,000x throughput from WiFi to ZigBee and 10,000x throughput from BLE to ZigBee compared to the state of the art. We also have a demo showcasing how our designs can be implemented on off-the-shelf smartphones for smart light bulbs control.
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通过物理层仿真的跨技术通信
跨技术通信是一个新兴的研究方向,为解决ISM频段的无线共存问题提供了一个有希望的解决方案。然而,由于使用了粗粒度的包级信息,最先进的CTC设计在吞吐量方面存在固有的限制。相反,我们建议通过一种称为物理层仿真的技术来利用细粒度的信号调制信息来提高CTC吞吐量。我们可以将目标技术(例如ZigBee)的合法数据包嵌入源技术(例如WiFi或低功耗蓝牙(BLE))的有效负载中。同时,我们不需要修改发送方或接收方的硬件或固件。与目前的技术水平相比,我们可以实现从WiFi到ZigBee的8,000倍吞吐量和从BLE到ZigBee的10,000倍吞吐量。我们还有一个演示,展示我们的设计如何在现成的智能手机上实现,用于智能灯泡控制。
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