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Scalable Channel Allocation and Access Scheduling for Wireless Internet-of-Things

机译:无线物联网的可扩展信道分配和访问调度

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摘要

Wireless communication channels are a scarce resource shared among multiple users in either scheduled or randomized fashions. We challenge a few design aspects of the widely used IEEE 802.11 MAC in wireless sensor networks (WSNs), such as the use of RTS, CTS, and ACK handshaking and the binary exponential backoff mechanisms, and argue that these key mechanisms incur high channel overhead and cannot effectively eliminate hidden terminal problems in multi-hop scenarios. Instead, we propose a set of efficient grid-based channel allocation and access scheduling algorithms using Latin squares, called as GAALS, for scalable WSNs with single-radio multi-channel communication capabilities. Using nodal location information and forming grids over the WSN deployment area, GAALS maps Latin squares to the grids, and dynamically assigns multiple channels to the WSN grids for channel access scheduling purposes. The fairness and scalability of GAALS are analyzed and evaluated in multiflow multihop WSNs with multi-channel capabilities. The results show that GAALS achieves much better performance than other multichannel protocols.
机译:无线通信信道是以计划或随机方式在多个用户之间共享的稀缺资源。我们挑战无线传感器网络(WSN)中广泛使用的IEEE 802.11 MAC的一些设计方面,例如RTS,CTS和ACK握手以及二进制指数退避机制的使用,并认为这些关键机制会导致高昂的信道开销并且无法有效消除多跳场景中的隐藏终端问题。取而代之的是,我们提出了一组有效的基于拉丁语的正方形网格信道分配和访问调度算法,称为GAALS,用于具有单无线电多信道通信功能的可扩展WSN。利用节点位置信息并在WSN部署区域上形成网格,GAALS将拉丁方映射到网格,并为信道访问调度目的将多个信道动态分配给WSN网格。 GAALS的公平性和可扩展性在具有多通道功能的多流多跳WSN中进行了分析和评估。结果表明,GAALS比其他多通道协议具有更好的性能。

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