利用WiFi保护带实现安全ZigBee

Yoon Chae, Shuai Wang, S. Kim
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引用次数: 25

摘要

来自密集和普遍无线的跨技术干扰(CTI)已成为低功耗物联网的主要威胁。G-Bee是一种CTI规避技术,它将ZigBee数据包独特地放置在正在进行的WiFi流量的保护频带上,有效地保护了数据包免受WiFi干扰。这样的设计确保了可靠的ZigBee通信,即使在饱和的WiFi流量下,传统的ZigBee被认为是不可操作的。技术亮点在于轻量级WiFi保护带捕获机制采用ZigBee物理层样本,可直接访问各种商用ZigBee芯片。G-Bee的另一个独特功能是频谱同步低占空比-通过利用周期性WiFi信标的保护带,有效地将活动槽同步到频谱可用性(即保护带),从而显着改善延迟。对我们原型系统的广泛评估表明,在数百个WiFi用户的严重干扰下,G-Bee的PRR超过95%,而传统ZigBee的PRR降至15%以下,低占空比延迟减少87.5%,所有这些都是在计算开销仅为0.3%的情况下实现的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploiting WiFi Guard Band for Safeguarded ZigBee
Cross-technology interference (CTI) from dense and prevalent wireless has become a primary threat to low-power IoT. This paper presents G-Bee, a CTI avoidance technique that uniquely places ZigBee packet on the guard band of ongoing WiFi traffic, which effectively safeguards the packet from WiFi interference. Such design ensures reliable ZigBee communication even under saturated WiFi traffic where traditional ZigBee is considered inoperable. Technical highlight is in lighweight WiFi guard band capture mechanism using ZigBee PHY layer samples directly accessible in various commercial ZigBee chip. Another exclusive feature of G-Bee is spectrum-synchronized low duty cycling - by utilizing guard bands of periodic WiFi beacons, active slots are effectively synchronized to spectrum availability (i.e., guard band) for significant delay improvement. Extensive evaluations on our prototype system demonstrates G-Bee PRR over 95% where legacy ZigBee drops to below 15% under significant interference with hundreds WiFi users and reduction of low duty cycle delay by 87.5%, all of which are achieved with a light computational overhead of 0.3%.
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