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Fusing fixed and hint landmarks on crowd paths for automatically constructing Wi-Fi fingerprint database

机译:在人群路径上融合固定和提示性地标,以自动构建Wi-Fi指纹数据库

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摘要

In typical Wi-Fi based indoor positioning systems employing fingerprint model, plentiful fingerprints need to be trained by trained experts or technician, which extends labor costs and restricts their promotion. In this paper, a novel approach based on crowd paths to solve this problem is presented, which collects and constructs automatically fingerprints database for anonymous buildings through common crowd customers. However, the accuracy degradation problem may be introduced as crowd customers are not professional trained and equipped. Therefore, we define two concepts: fixed landmark and hint landmark, to rectify the fingerprint database in the practical system, in which common corridor crossing points serve as fixed landmark and cross point among different crowd paths serve as hint landmark. Machine-learning techniques are utilized for short range approximation around fixed landmarks and fuzzy logic decision technology is applied for searching hint landmarks in crowd traces space. Besides, the particle filter algorithm is also introduced to smooth the sample points in crowd paths. We implemented the approach on off-the-shelf smartphones and evaluate the performance. Experimental results indicate that the approach can availably construct Wi-Fi fingerprint database without reduce the localization accuracy.
机译:在采用指纹模型的典型的基于Wi-Fi的室内定位系统中,需要由训练有素的专家或技术人员来训练大量的指纹,这会增加人工成本并限制其推广。本文提出了一种基于人群路径的新颖方法来解决该问题,该方法可以通过普通人群客户自动收集并构建匿名建筑物的指纹数据库。但是,由于人群客户没有经过专业培训和配备,可能会导致准确性下降问题。因此,我们定义了固定地标和提示地标这两个概念,以校正实际系统中的指纹数据库,其中公共走廊交叉点充当固定地标,而不同人群路径之间的交叉点充当提示地标。机器学习技术用于固定地标周围的短距离逼近,模糊逻辑决策技术用于在人群轨迹空间中搜索提示地标。此外,还引入了粒子滤波算法来平滑人群路径中的采样点。我们在现成的智能手机上实施了该方法,并评估了性能。实验结果表明,该方法可以有效地构建Wi-Fi指纹数据库,而不会降低定位精度。

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