Multivariate analysis for probabilistic WLAN location determination systems

M. Youssef, M. Abdallah
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引用次数: 55

Abstract

WLAN location determination systems are gaining increasing attention due to the value they add to wireless networks. In this paper, we present a multivariate analysis technique for enhancing the performance of WLAN location determination systems by taking the correlation between samples from the same access point into account. We show that the autocorrelation between consecutive samples from the same access point can be as high as 0.9. Giving a sequence of correlated signal strength samples from an access point, the technique estimates the user location based on the calculated probability of this sequence from the multivariate distribution. We use a linear autoregressive model to derive the multivariate distribution function for the correlated samples. Using analytical analysis, we show that the proposed technique provides better location accuracy over previous techniques especially for the highly correlated samples in a typical WLAN environment. Implementation of the technique in the Horus WLAN location determination system shows that the average system accuracy is increased by more than 64%. This significant enhancement in the accuracy of WLAN location determination systems helps increase the set of context-aware applications implemented on top of these systems.
概率无线局域网定位系统的多变量分析
无线局域网定位系统因其对无线网络的价值而受到越来越多的关注。在本文中,我们提出了一种多变量分析技术,通过考虑来自同一接入点的样本之间的相关性来提高WLAN位置确定系统的性能。我们表明,来自同一接入点的连续样本之间的自相关可以高达0.9。给出来自接入点的一系列相关信号强度样本,该技术基于从多变量分布中计算出的该序列的概率来估计用户位置。我们使用线性自回归模型推导出相关样本的多元分布函数。通过分析分析,我们证明了所提出的技术比以前的技术提供了更好的定位精度,特别是对于典型WLAN环境中高度相关的样本。该技术在Horus无线局域网定位系统中的实现表明,系统平均精度提高了64%以上。WLAN位置确定系统准确性的显著提高有助于增加在这些系统之上实现的上下文感知应用程序集。
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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