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Passive WiFi Fingerprinting Method

机译:被动式WiFi指纹识别方法

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摘要

WiFi fingerprinting methods are widely used in indoor positioning field, but it requires time and efforts to collect fingerprints. Crowdsourcing techniques have been actively studied to reduce the collection cost, but it still needs user's explicit involvement such as installing and operating an application. In this paper, we propose a network fingerprinting method without the explicit involvement. it collects unlabeled fingerprints including received signal strength(RSS) of probe request message(PRqM) by multiple APs. After collecting the fingerprints, we perform singular vector decomposition(SVD), latent semantic analysis(LSA) and location optimization to construct radio map. The proposed method achieved 2.93m accuracy of radio map and 3.72m accuracy of positioning.
机译:WiFi指纹识别方法在室内定位领域中被广泛使用,但是它需要时间和精力来收集指纹。为了降低收集成本,已经积极研究了众包技术,但是众包技术仍然需要用户的明确参与,例如安装和操作应用程序。在本文中,我们提出了一种无需明确参与的网络指纹识别方法。它收集包括多个AP的探测请求消息(PRqM)的接收信号强度(RSS)在内的未标记指纹。收集指纹后,我们执行奇异矢量分解(SVD),潜在语义分析(LSA)和位置优化来构造无线电地图。该方法实现了无线电地图的2.93m精度和3.72m的定位精度。

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