Cluster filtered KNN: A WLAN-based indoor positioning scheme

Jun Ma, Xuansong Li, Xianping Tao, Jian Lu
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引用次数: 117

Abstract

Location Based Service (LBS) is one kind of ubiquitous applications whose functions are based on the locations of clients. The core of LBS is an effective positioning system. As wireless LAN (WLAN) costs less and is easy to access, using WLAN for indoor positioning has been widely studied recently. K nearest neighbors (KNN) is one of the basic deterministic fingerprint based algorithms and widely used for WLAN-based indoor positioning. However, KNN takes all the nearest K neighbors for calculating the estimated result, which could be improved if some selective work could be done to those neighbors beforehand. In this paper we propose a new scheme called "cluster filtered KNN" (CFK). CFK utilizes clustering technique to partition those neighbors into different clusters and chooses one cluster as the delegate. In the end, the final estimate can be calculated only based on the elements of the delegate. With experiments, we found that CFK does outperform KNN.
聚类滤波KNN:一种基于wlan的室内定位方案
基于位置的服务(LBS)是一种普遍存在的应用程序,其功能是基于客户的位置。LBS的核心是一个有效的定位系统。由于无线局域网(WLAN)成本低、接入方便,利用无线局域网进行室内定位得到了广泛的研究。K近邻(KNN)是一种基本的确定性指纹定位算法,广泛应用于基于无线局域网的室内定位。然而,KNN取最近的K个邻居来计算估计结果,如果事先对这些邻居做一些选择性的工作,可以改善KNN的估计结果。本文提出了一种新的聚类滤波KNN (CFK)方案。CFK利用聚类技术将这些邻居划分为不同的簇,并选择一个簇作为委托。最后,最终的估计只能根据委托的元素来计算。通过实验,我们发现CFK确实优于KNN。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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