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DRAND: Distributed Randomized TDMA Scheduling for Wireless Ad Hoc Networks

机译:DRAND:无线自组织网络的分布式随机TDMA调度

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This paper presents a distributed implementation of RAND, a randomized time slot scheduling algorithm, called DRAND. DRAND runs in O(delta ) time and message complexity where delta is the maximum size of a two-hop neighborhood in a wireless network while message complexity remains O(delta ), assuming that message delays can be bounded by an unknown constant. DRAND is the first fully distributed version of RAND. The algorithm is suitable for a wireless network where most nodes do not move, such as wireless mesh networks and wireless sensor networks. We implement the algorithm in TinyOS and demonstrate its performance in a real testbed of Mica2 nodes. The algorithm does not require any time synchronization and is shown to be effective in adapting to local topology changes without incurring global overhead in the scheduling. Because of these features, it can also be used even for other scheduling problems such as frequency or code scheduling (for FDMA or CDMA) or local identifier assignment for wireless networks where time synchronization is not enforced. We further evaluate the effect of the time-varying nature of wireless links on the conflict-free property of DRAND-assigned time slots. This experiment is conducted on a 55-node testbed consisting of the more recent MicaZ sensor nodes.
机译:本文提出了一种称为RAND的随机时隙调度算法RAND的分布式实现。 DRAND以O(delta)时间和消息复杂度运行,其中delta是无线网络中两跳邻居的最大大小,而消息复杂度保持O(delta),假设消息延迟可以由未知常数限制。 DRAND是RAND的第一个完全分布式版本。该算法适用于大多数节点不移动的无线网络,例如无线网状网络和无线传感器网络。我们在TinyOS中实现该算法,并在Mica2节点的实际测试平台上演示其性能。该算法不需要任何时间同步,并且被证明可以有效地适应本地拓扑变化,而不会在调度中产生全局开销。由于这些功能,它甚至还可以用于其他调度问题,例如频率或代码调度(对于FDMA或CDMA)或无线网络的本地标识符分配,其中不要求时间同步。我们进一步评估了无线链接的时变性质对DRAND分配的时隙的无冲突属性的影响。该实验是在55个节点的试验台上进行的,该试验台由最新的MicaZ传感器节点组成。

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