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Performance Analysis of ToA-Based Positioning Algorithms for Static and Dynamic Targets with Low Ranging Measurements

机译:低距离测量的基于ToA的静态和动态目标定位算法的性能分析

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摘要

Indoor Positioning Systems (IPSs) for emergency responders is a challenging field attracting researchers worldwide. When compared with traditional indoor positioning solutions, the IPSs for emergency responders stand out as they have to operate in harsh and unstructured environments. From the various technologies available for the localization process, ultra-wide band (UWB) is a promising technology for such systems due to its robust signaling in harsh environments, through-wall propagation and high-resolution ranging. However, during emergency responders’ missions, the availability of UWB signals is generally low (the nodes have to be deployed as the emergency responders enter a building) and can be affected by the non-line-of-sight (NLOS) conditions. In this paper, the performance of four typical distance-based positioning algorithms (Analytical, Least Squares, Taylor Series, and Extended Kalman Filter methods) with only three ranging measurements is assessed based on a COTS UWB transceiver. These algorithms are compared based on accuracy, precision and root mean square error (RMSE). The algorithms were evaluated under two environments with different propagation conditions (an atrium and a lab), for static and mobile devices, and under the human body’s influence. A NLOS identification and error mitigation algorithm was also used to improve the ranging measurements. The results show that the Extended Kalman Filter outperforms the other algorithms in almost every scenario, but it is affected by the low measurement rate of the UWB system.
机译:用于应急人员的室内定位系统(IPSs)是一个充满挑战的领域,吸引了全球研究人员。与传统的室内定位解决方案相比,应急人员的IPS脱颖而出,因为它们必须在恶劣的非结构化环境中运行。从用于定位过程的各种技术来看,超宽带(UWB)在此类系统中是一种有前途的技术,因为它在恶劣环境中具有强大的信号传递,穿墙传播和高分辨率测距功能。但是,在紧急响应者执行任务期间,UWB信号的可用性通常较低(当紧急响应者进入建筑物时必须部署节点),并且可能会受到非视距(NLOS)条件的影响。在本文中,基于COTS UWB收发器评估了只有三种测距测量的四种典型的基于距离的定位算法(分析,最小二乘,泰勒级数和扩展卡尔曼滤波方法)的性能。根据准确性,精度和均方根误差(RMSE)对这些算法进行比较。在两种具有不同传播条件的环境(中庭和实验室),静态和移动设备以及人体的影响下对算法进行了评估。 NLOS识别和错误缓解算法也用于改善测距测量。结果表明,在几乎每种情况下,扩展卡尔曼滤波器均优于其他算法,但受UWB系统低测量速率的影响。

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