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A Practical Evaluation of ML Algorithms for a Tag-Based BLE Indoor Positioning System

机译:用于基于标签的BLE室内定位系统M1算法的实际评估

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In this paper, we evaluate the performance of machine learning (ML) algorithms employed in a commercial Bluetooth Low Energy (BLE) Indoor Positioning (IP) solution relying on practical measurements in a commercial office space setting.? The BLE IP system utilizing tags presents an ideal economic approach for large facilities with a limited number of tracking elements (gateways). ?In this investigation, data collection campaigns were conducted in an indoor facility fitted with BLE gateways to aggregate Received Signal Strength Indicator (RSSI) fingerprints .? Performance of a collection of well-known ML algorithms in terms of accuracy of positioning of the desired objects, in addition to training complexity and online tracking speed were evaluated. ?ML algorithms of increased accuracy and efficiency were identified and tabulated in both of the offline and online phases.? It is also envisaged that as part of this practical study, the results will serve to identify proper economical topologies and configuration in real-life installations for tag-based BLE IP systems.
机译:在本文中,我们评估了商业蓝牙低能量(BLE)室内定位(IP)解决方案中采用的机器学习(ML)算法的性能依赖于商业办公空间设置中的实际测量。?利用标签的BLE IP系统为具有有限数量的跟踪元件(网关)提供了理想的经济方法。 ?在这次调查中,数据收集活动是在一个装有BLE网关的室内设施中进行,以聚合接收的信号强度指示器(RSSI)指纹。在评估训练复杂性和在线跟踪速度之外,在所需对象的定位的准确性方面的性能众所周知的ML算法的性能。 ?在离线和在线阶段的识别和制表提高准确度和效率的ML算法。?还设想,作为本实际研究的一部分,结果将用于识别基于标签的BLE IP系统的现实寿命安装中适当的经济拓扑和配置。

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