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A New Three-Dimensional Indoor Positioning Mechanism Based on Wireless LAN

机译:基于无线局域网的新型三维室内定位机制

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The researches on two-dimensional indoor positioning based on wireless LAN and the location fingerprint methods have become mature, but in the actual indoor positioning situation, users are also concerned about the height where they stand. Due to the expansion of the range of three-dimensional indoor positioning, more features must be needed to describe the location fingerprint. Directly using a machine learning algorithm will result in the reduced ability of classification. To solve this problem, in this paper, a “divide and conquer” strategy is adopted; that is, first through k-medoids algorithm the three-dimensional location space is clustered into a number of service areas, and then a multicategory SVM with less features is created for each service area for further positioning. Our experiment shows that the error distance resolution of the approach with k-medoids algorithm and multicategory SVM is higher than that of the approach only with SVM, and the former can effectively decrease the “crazy prediction.”
机译:基于无线局域网的二维室内定位和位置指纹方法的研究已经成熟,但在实际的室内定位情况下,用户还需要关注其站立的高度。由于三维室内定位范围的扩大,必须使用更多功能来描述位置指纹。直接使用机器学习算法将导致分类能力降低。为了解决这个问题,本文采用“分而治之”的策略。也就是说,首先通过k-medoids算法将三维位置空间聚集到多个服务区域中,然后为每个服务区域创建具有较少特征的多类别SVM以进行进一步定位。我们的实验表明,使用k-medoids算法和多类别SVM的方法的错误距离分辨率高于仅使用SVM的方法,并且前者可以有效地减少“疯狂的预测”。

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