BiCord:共存无线设备之间的双向协调

Zihao Yu, Pengyu Li, C. Boano, Yuan He, Meng Jin, Xiuzhen Guo, Xiaolong Zheng
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引用次数: 7

摘要

跨技术干扰是影响低功耗无线通信可靠性的主要因素。由于功率和带宽的不对称,Wi-Fi等技术倾向于主导RF信道,无意中破坏了ZigBee等资源受限技术的低功耗无线通信,导致严重的共存问题。为了解决这些问题,现有的方案使ZigBee节点单独评估射频信道的可用性,或者让Wi-Fi设备盲目地为低功耗设备的传输保留介质。如果在使用不同无线技术的设备之间不进行双向交互,这些方法的使用场景就会受到限制,或者实现低效率的网络性能。BiCord是一种双向协调方案,在这种方案中,资源受限的无线设备(如ZigBee节点和功能强大的Wi-Fi设备)可以协调它们的活动,以增加共存并提高网络性能。具体来说,在BiCord中,ZigBee节点直接向Wi-Fi设备请求信道资源,然后Wi-Fi设备为ZigBee按需传输保留信道。这种交互一直持续到ZigBee节点的传输需求被Wi-Fi设备满足并理解为止。这样,BiCord避免了不必要的信道分配,最大限度地提高了频谱的可用性,并最大限度地减少了传输延迟。我们在现成的Wi-Fi和ZigBee设备上评估了BiCord,并通过实验证明了其有效性。其中,我们的研究结果表明,与最先进的方法相比,BiCord将信道利用率提高了50.6%,并将ZigBee节点的平均传输延迟降低了84.2%。
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BiCord: Bidirectional Coordination among Coexisting Wireless Devices
Cross-technology interference is a major threat to the dependability of low-power wireless communications. Due to power and bandwidth asymmetries, technologies such as Wi-Fi tend to dominate the RF channel and unintentionally destroy low-power wireless communications from resource-constrained technologies such as ZigBee, leading to severe coexistence issues. To address these issues, existing schemes make ZigBee nodes individually assess the RF channel's availability or let Wi-Fi appliances blindly reserve the medium for the transmissions of low-power devices. Without a two-way interaction between devices making use of different wireless technologies, these approaches have limited scenarios or achieve inefficient network performance. This paper presents BiCord, a bidirectional coordination scheme in which resource-constrained wireless devices such as ZigBee nodes and powerful Wi-Fi appliances coordinate their activities to increase coexistence and enhance network performance. Specifically, in BiCord, ZigBee nodes directly request channel resources from Wi-Fi devices, who then reserve the channel for ZigBee transmissions on-demand. This interaction continues until the transmission requirement of ZigBee nodes is both fulfilled and understood by Wi-Fi devices. This way, BiCord avoids unnecessary channel allocations, maximizes the availability of the spectrum, and minimizes transmission delays. We evaluate BiCord on off-the-shelf Wi-Fi and ZigBee devices, demonstrating its effectiveness experimentally. Among others, our results show that BiCord increases channel utilization by up to 50.6% and reduces the average transmission delay of ZigBee nodes by 84.2% compared to state-of-the-art approaches.
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