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Localization of Large-Scale Wireless Sensor Networks Using Niching Particle Swarm Optimization and Reliable Anchor Selection

机译:利用小生境粒子群优化和可靠锚点选择的大规模无线传感器网络定位

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Due to uneven deployment of anchor nodes in large-scale wireless sensor networks, localization performance is seriously affected by two problems. The first is that some unknown nodes lack enough noncollinear neighbouring anchors to localize themselves accurately. The second is that some unknown nodes have many neighbouring anchors to bring great computing burden during localization. This paper proposes a localization algorithm which combined niching particle swarm optimization and reliable reference node selection in order to solve these problems. For the first problem, the proposed algorithm selects the most reliable neighbouring localized nodes as the reference in localization and using niching idea to cope with localization ambiguity problem resulting from collinear anchors. For the second problem, the algorithm utilizes three criteria to choose a minimum set of reliable neighbouring anchors to localize an unknown node. Three criteria are given to choose reliable neighbouring anchors or localized nodes when localizing an unknown node, including distance, angle, and localization precision. The proposed algorithm has been compared with some existing range-based and distributed algorithms, and the results show that the proposed algorithm achieves higher localization accuracy with less time complexity than the current PSO-based localization algorithms and performs well for wireless sensor networks with coverage holes.
机译:由于锚节点在大规模无线传感器网络中的部署不均匀,本地化性能受到两个问题的严重影响。首先是一些未知节点缺乏足够的非共线的相邻锚来精确定位自身。第二个问题是,一些未知节点具有许多相邻的锚点,从而在定位期间带来了巨大的计算负担。为了解决这些问题,提出了一种结合小生境粒子群优化算法和可靠的参考节点选择算法的定位算法。对于第一个问题,所提出的算法选择最可靠的邻近局部节点作为定位参考,并利用适当的思路来解决共线锚引起的定位歧义问题。对于第二个问题,该算法利用三个标准来选择一组最小的可靠相邻锚来定位未知节点。在定位未知节点时,给出了三个标准来选择可靠的相邻锚点或本地化节点,包括距离,角度和定位精度。将该算法与现有的一些基于距离和分布式的算法进行了比较,结果表明,与基于PSO的定位算法相比,该算法具有更高的定位精度和更少的时间复杂度,并且在具有覆盖孔的无线传感器网络中表现良好。

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