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WiFi fingerprint indoor positioning system using probability distribution comparison

机译:基于概率分布比较的WiFi指纹室内定位系统

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Positioning services are increasingly used for applications such as navigation, advertising and social media. While outdoor navigation based on GPS and/or cellular systems works well, indoor navigation is a much tougher challenge. This paper presents a new indoor positioning method based on Wi-Fi fingerprints, i.e. RSSI measurements from multiple Wi-Fi access points. During an offline phase, fingerprints are collected at known positions in the building. This database of locations and the associated fingerprints are called the radio map. In the online mode, the current Wi-Fi fingerprint probability distributions are compared with those of the radio map. The user location is estimated by calculating a weighted average of the three offline positions that best match the online measurements. Experiments show that our technique is superior to other proposed methods and reaches a median error of 2.4m.
机译:定位服务越来越多地用于导航,广告和社交媒体等应用。尽管基于GPS和/或蜂窝系统的户外导航效果很好,但室内导航却面临着更大的挑战。本文介绍了一种基于Wi-Fi指纹的室内定位新方法,即来自多个Wi-Fi接入点的RSSI测量。在离线阶段,指纹会收集在建筑物中的已知位置。该位置数据库和关联的指纹称为无线电地图。在在线模式下,将当前的Wi-Fi指纹概率分布与无线电地图的概率分布进行比较。通过计算与在线测量最匹配的三个离线位置的加权平均值来估计用户位置。实验表明,我们的技术优于其他提出的方法,平均误差为2.4m。

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