基于Wi-Fi RFID的室内定位系统的Wi-Fi信号强度数据库构建

A. Narzullaev, M. Selamat
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引用次数: 6

摘要

如今,基于指纹的Wi-Fi定位系统成功地为移动用户提供了位置信息。指纹识别的主要思想是在进行位置估计之前先建立目标区域的信号强度数据库。这个过程称为校准。室内定位系统的精度在很大程度上取决于标定(采样)强度。这个过程需要大量的时间和精力,并且使得大规模部署室内定位系统变得不容易。如果目标站点发生重大变化,新建的数据库可能不再有效。本文提出了一种构建指纹数据库的新方法。我们提出了一种结合信号采样和路径损失预测算法的混合校准方法。该方法需要在目标地点安装多个Wi-Fi RFID标签,而不是手动采样信号。这种标签的优点是它可以被远距离的商业Wi-Fi接入点直接读取。安装在目标区域的几个RFID标签将持续监测信号强度水平,并将扫描数据发送到服务器。每当检测到信号级别发生重大变化时,服务器将启动数据库重建过程。与现有的校准程序相比,我们的方法只需要从RFID标签中收集很少的信号样本,并且使用路径损失预测算法恢复数据库的其余部分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wi-Fi signal strengths database construction for indoor positioning systems using Wi-Fi RFID
Nowadays, fingerprinting based Wi-Fi positioning systems successfully provide location information to mobile users. Main idea behind fingerprinting is to build signal strength database of target area prior to location estimation. This process is called calibration. Indoor positioning system accuracy highly depends on calibration (sampling) intensity. This procedure requires huge amount of time and effort, and makes large-scale deployments of indoor positioning systems non-trivial. Newly constructed database may no longer be valid if there are any major changes in the target site. In this research we present a new approach of constructing fingerprint database. We propose a hybrid calibration procedure that combines signal sampling process with path-loss prediction algorithm. Instead of manual signal sampling, proposed method requires several Wi-Fi RFID tags to be installed in a target site. Advantage of such tag is that it can be read directly by commercial Wi-Fi access points from long distance. Several RFID tags mounted in target area will monitor the signal strength levels continuously and send scan data to the server. Whenever there are significant changes in signal levels detected, server will initiate database reconstruction procedure. Compared to existing calibration procedure our method requires only few signal samples from RFID tags to be collected and rest of the database is recovered using path-loss prediction algorithm.
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