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An iBeacon Indoor Positioning System Based on Multi-Sensor Fusion

机译:基于多传感器融合的iBeacon室内定位系统

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The development of IoT and smart phone allows us to provide better guide service at public area. In this study, an indoor positioning system for guide service is proposed. For the positioning module, Particle Swarm Optimization - Growing Neural Gas (PSO-GNG) is proposed as the iBeacon positioning algorithm. Also, the idea of multi-sensor fusion is introduced. With the reliability of iBeacon positioning and Kinect positioning, this system combines the results according to data fusion with weight. Experimental results show that the proposed method can make the guide robot recognize an specific moving target from 5 people in the area with 89% accuracy.
机译:物联网和智能手机的发展使我们能够在公共场所提供更好的指导服务。在这项研究中,提出了一种用于引导服务的室内定位系统。对于定位模块,提出了粒子群优化-神经气体增长算法(PSO-GNG)作为iBeacon定位算法。此外,介绍了多传感器融合的思想。凭借iBeacon定位和Kinect定位的可靠性,该系统根据数据融合和权重将结果结合在一起。实验结果表明,该方法可以使导向机器人从该区域的5个人中识别出特定的运动目标,准确率达到89%。

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