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Simulation Tool for the Analysis of Cooperative Localization Algorithms for Wireless Sensor Networks

机译:无线传感器网络协同定位算法分析的仿真工具

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摘要

Within the context of the Internet of Things (IoT) and the Location of Things (LoT) service, this paper presents an interactive tool to quantitatively analyze the performance of cooperative localization techniques for wireless sensor networks (WSNs). In these types of algorithms, nodes help each other determine their location based on some signal metrics such as time of arrival (TOA), received signal strength (RSS), or a fusion of them. The developed tool is intended to provide researchers and designers a fast way to measure the performance of localization algorithms considering specific network topologies. Using TOA or RSS models, the Crámer-Rao lower bound (CRLB) has been implemented within the tool. This lower bound can be used as a benchmark for testing a particular algorithm for specific channel characteristics and WSN topology, which allows determination if the necessary accuracy for a specific application is possible. Furthermore, the tool allows us to consider independent characteristics for each node in the WSN. This feature allows the avoidance of the typical “disk graph model,” which is usually applied to test cooperative localization algorithms. The tool allows us to run Monte-Carlo simulations and generate statistical reports. A set of basic illustrative examples are described comparing the performance of different localization algorithms and showing the capabilities of the presented tool.
机译:在物联网(IoT)和物联网(LoT)服务的背景下,本文提出了一种交互式工具,用于定量分析无线传感器网络(WSN)协作定位技术的性能。在这些类型的算法中,节点根据一些信号指标(例如到达时间(TOA),接收信号强度(RSS)或它们的融合)互相帮助确定其位置。开发的工具旨在为研究人员和设计人员提供一种考虑特定网络拓扑的快速测量定位算法性能的方法。使用TOA或RSS模型,该工具已实现了Crámer-Rao下界(CRLB)。此下限可以用作基准测试,以测试针对特定信道特性和WSN拓扑的特定算法,从而可以确定特定应用的必要精度是否可能。此外,该工具允许我们考虑WSN中每个节点的独立特征。此功能可以避免通常用于测试协作定位算法的典型“磁盘图模型”。该工具使我们可以运行蒙特卡洛模拟并生成统计报告。描述了一组基本说明性示例,它们比较了不同定位算法的性能并显示了所提供工具的功能。

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