EXTENDED MONTE CARLO LOCALIZATION ALGORITHM FOR MOBILE SENSOR NETWORKS

被引:0
|
作者
Wang Weidong Zhu Qingxin (School of Computer Science and Engineering
机构
基金
中国国家自然科学基金;
关键词
Monte Carlo Localization (MCL); Radio propagation model; Degree of irregularity; Mobile sensor networks;
D O I
暂无
中图分类号
TN929.5 [移动通信]; TP212.9 [传感器的应用];
学科分类号
080202 ; 080402 ; 080904 ; 0810 ; 081001 ;
摘要
A real-world localization system for wireless sensor networks that adapts for mobility and irregular radio propagation model is considered. The traditional range-based techniques and recent range-free localization schemes are not well competent for localization in mobile sensor networks, while the probabilistic approach of Bayesian filtering with particle-based density representations provides a comprehensive solution to such localization problem. Monte Carlo localization is a Bayesian filtering method that approximates the mobile node’s location by a set of weighted particles. In this paper, an enhanced Monte Carlo localization algorithm-Extended Monte Carlo Localization (Ext-MCL) is proposed, i.e., the traditional Monte Carlo localization algorithm is improved and extended to make it suitable for the practical wireless network environment where the radio propagation model is irregular. Simulation results show the proposal gets better localization accuracy and higher localizable node number than previously proposed Monte Carlo localization schemes not only for ideal radio model, but also for irregular one.
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页码:746 / 760
页数:15
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