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DisLoc: A Convex Partitioning Based Approach for Distributed 3-D Localization in Wireless Sensor Networks

机译:DisLoc:一种基于凸分区的无线传感器网络中分布式3-D定位方法

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摘要

Accurate localization in wireless sensor networks (WSNs) is fundamental to many applications, such as geographic routing and position-aware data processing. This, however, is challenging in large scale 3-D WSNs due to the irregular topology, such as holes in the path, of the network. The irregular topology may cause overestimated Euclidean distance between nodes as the communication path is bent and accordingly introduces severe errors in 3-D WSN localization. As an effort towards the issue, this paper develops a distributed algorithm to achieve accurate 3-D WSN localization. Our proposal is composed of two steps, segmentation and joint localization. In specific, the entire network is first divided into several subnetworks by applying the approximate convex partitioning. A spatial convex node recognition mechanism is developed to assist the network segmentation, which relies on the connectivity information only. After that, each subnetwork is accurately localized by using the multidimensional scaling-based algorithm. The proposed localization algorithm also applies a new 3-D coordinate transformation algorithm, which helps reduce the errors introduced by coordinate integration between subnetworks and improve the localization accuracy. Using extensive simulations, we show that our proposal can effectively segment a complex 3-D sensor network and significantly improve the localization rate in comparison with existing solutions.
机译:无线传感器网络(WSN)中的精确定位对于许多应用程序而言至关重要,例如地理路由和位置感知数据处理。但是,由于网络的不规则拓扑(例如路径中的孔),这在大规模3-D WSN中具有挑战性。当通信路径弯曲时,不规则拓扑可能会导致节点之间的高估欧式距离,从而在3-D WSN定位中引入严重错误。为了解决这个问题,本文开发了一种分布式算法来实现准确的3-D WSN定位。我们的建议包括两个步骤:分段和联合本地化。具体而言,首先通过应用近似凸分区将整个网络划分为几个子网络。开发了空间凸节点识别机制来辅助网络分段,该机制仅依赖于连接性信息。之后,使用基于多维缩放的算法对每个子网进行精确定位。所提出的定位算法还应用了新的3-D坐标变换算法,该算法有助于减少子网之间的坐标集成所引入的误差,并提高定位精度。通过广泛的仿真,我们证明了我们的提案可以有效地分割复杂的3D传感器网络,并且与现有解决方案相比,可以大大提高定位速度。

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