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Geometric Approach in Simultaneous Context Inference, Localization and Mapping using mm-Wave

机译:毫米波同时上下文推理,定位和映射的几何方法

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This paper introduces a combination between Angle-of-Arrival (AoA) and Time of Arrival (ToA) for localization and mapping in an indoor environment with single static receiver and N access points (APs) with millimeter wave (MMW) propagation characteristics. Using Received Signal Strength (RSS), the paper also proposes an approach for obstacle localization, mapping and classification. The latter is done by firstly estimating the positions of virtual anchor nodes (VANs), known as mirrors of the real anchor with respect to obstacle. Then, the obstacle position and dimensions are found via the estimation of the reflector points on the obstacle. Using Snell's law and the relation between RSS and reflection coefficient, different obstacles can be classified as per their material composition. Simulation results have shown the accuracy of the proposed approach in context inference and mapping. The work here will open the door for multiple applications in robotics, health, radar-like systems, and Internet of Things (IoT).
机译:本文介绍了到达角(AoA)和到达时间(ToA)之间的结合,用于在具有单个静态接收器和N个具有毫米波(MMW)传播特性的接入点(AP)的室内环境中进行定位和映射。本文还使用接收信号强度(RSS)提出了一种障碍物定位,映射和分类方法。后者是通过首先估算虚拟锚点(VAN)的位置来完成的,这些锚点称为真实锚点相对于障碍物的镜像。然后,通过估计障碍物上的反射器点来找到障碍物的位置和尺寸。利用斯涅尔定律以及RSS和反射系数之间的关系,可以根据障碍物的材料成分对不同障碍物进行分类。仿真结果表明了该方法在上下文推理和映射中的准确性。此处的工作将为机器人技术,健康,类雷达系统和物联网(IoT)中的多种应用打开大门。

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