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Dynamic searching particle filtering scheme for indoor localization in wireless sensor network

机译:无线传感器网络中室内定位的动态搜索粒子滤波方案

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In this paper, we propose a robust and efficient particle filtering framework for indoor localization in wireless sensor network (WSN) which searches effective anchors and constructs particle filter dynamically. Within this framework, three algorithms are integrated into the dynamic particle filter: anchor selection algorithm, location constraint resampling and SIR particle filter. The proposed scheme searches the maximum number of anchors with line of sight (LOS) to the target to guarantee the effective measurement. Then, we construct a dynamic particle filter with the chosen anchors and develop a novel resampling scheme which generates the particles within the indoor location constraints. The proposed scheme is proved to be robust and computational efficient. Simulation results show that our scheme is accurate with low computation cost, which is promising for real-time implementation.
机译:在本文中,我们提出了一种稳健而有效的粒子过滤框架,用于在无线传感器网络(WSN)中的室内定位,该颗粒在无线传感器网络(WSN)中搜索有效的锚点并动态构建粒子滤波器。在此框架内,三种算法集成到动态粒子滤波器中:锚定选择算法,位置约束重采样和SIR粒子滤波器。所提出的方案在目标线(LOS)中搜索最大锚点,以保证有效的测量。然后,我们用所选择的锚点构造动态粒子滤波器,并开发一种新的重采样方案,该方案在室内位置约束内产生粒子。拟议的计划被证明是强大和计算效率。仿真结果表明,我们的方案具有低计算成本的准确性,这是对实时实施的承诺。

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