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ZIL: An Energy-Efficient Indoor Localization System Using ZigBee Radio to Detect WiFi Fingerprints

机译:ZIL:使用ZigBee无线电检测WiFi指纹的节能室内定位系统

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摘要

In existing WiFi-based localization methods, smart mobile devices consume quite a lot of power as WiFi interfaces need to be used for frequent AP scanning during the localization process. In this work, we design an energy-efficient indoor localization system called ZigBee assisted indoor localization (ZIL) based on WiFi fingerprints via ZigBee interference signatures. ZIL uses ZigBee interfaces to collect mixed WiFi signals, which include non-periodic WiFi data and periodic beacon signals. However, WiFi APs cannot be identified from these WiFi signals by ZigBee interfaces directly. To address this issue, we propose a method for detecting WiFi APs to form WiFi fingerprints from the signals collected by ZigBee interfaces. We propose a novel fingerprint matching algorithm to align a pair of fingerprints effectively. To improve the localization accuracy, we design the K-nearest neighbor (KNN) method with three different weighted distances and find that the KNN algorithm with the Manhattan distance performs best. Experiments show that ZIL can achieve the localization accuracy of 87%, which is competitive compared to state-of-the-art WiFi fingerprint-based approaches, and save energy by 68% on average compared to the approach based on WiFi interface.
机译:在现有的基于WiFi的定位方法中,由于在定位过程中需要使用WiFi接口进行频繁的AP扫描,因此智能移动设备会消耗大量电能。在这项工作中,我们基于经由ZigBee干扰签名的WiFi指纹,设计了一种称为ZigBee辅助室内定位(ZIL)的节能室内定位系统。 ZIL使用ZigBee接口收集混合的WiFi信号,其中包括非周期性的WiFi数据和周期性的信标信号。但是,ZigBee接口无法直接从这些WiFi信号中识别WiFi AP。为了解决这个问题,我们提出了一种从ZigBee接口收集的信号中检测WiFi AP形成WiFi指纹的方法。我们提出了一种新颖的指纹匹配算法,可以有效地对齐一对指纹。为了提高定位精度,我们设计了三种不同加权距离的K近邻法,发现曼哈顿距离的KNN算法效果最好。实验表明,ZIL可以实现87%的定位精度,这与基于最新WiFi指纹的方法相比具有竞争力,并且与基于WiFi接口的方法相比,平均节能68%。

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