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Self-Adaptive Filtering Approach for Improved Indoor Localization of a Mobile Node with Zigbee-Based RSSI and Odometry

机译:基于ZigBee的RSSI和OCOMOTRY改进移动节点室内定位的自适应过滤方法

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摘要

This study presents a new technique to improve the indoor localization of a mobile node by utilizing a Zigbee-based received-signal-strength indicator (RSSI) and odometry. As both methods suffer from their own limitations, this work contributes to a novel methodological framework in which coordinates of the mobile node can more accurately be predicted by improving the path-loss propagation model and optimizing the weighting parameter for each localization technique via a convex search. A self-adaptive filtering approach is also proposed which autonomously optimizes the weighting parameter during the target node’s translational and rotational motions, thus resulting in an efficient localization scheme with less computational effort. Several real-time experiments consisting of four different trajectories with different number of straight paths and curves were carried out to validate the proposed methods. Both temporal and spatial analyses demonstrate that when odometry data and RSSI values are available, the proposed methods provide significant improvements on localization performance over existing approaches.
机译:这项研究提出一种新技术,通过利用基于ZigBee的接收信号强度指示器(RSSI)和里程计,以提高移动节点的室内定位。由于这两种方法从自己的限制的影响,这项工作有助于一种新颖的方法框架,其中所述移动节点的坐标可以被更精确地通过改善路径损耗的传播模型,并通过凸搜索优化为每个定位技术的加权参数的预测。一种自自适应滤波方法也提出了自主地优化在目标节点的平移和旋转运动的加权参数,从而导致高效的本地化方案以较少的计算工作量。由四个不同的轨迹与不同数量的直线路径和曲线几个实时进行实验,以验证所提出的方法。时间和空间的分析表明,当里程计数据和RSSI值可用,所提出的方法提供超过现有方法的定位性能显著的改善。

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