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Detection of Outliers in GPS Measurements by Using Functional-Data Analysis

机译:使用功能数据分析检测GPS测量中的异常值

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The identification of outliers in global positioning system (GPS) observations—to compare equipment, positioning methods, or working conditions—has traditionally been performed using univariate or multivariate statistics. However, these methods have certain drawbacks when processing data collected by GPS receivers. Such data can be more suitably handled as observations at discrete points of a smooth stochastic process and, consequently, other statistical approaches to the analysis of functional data may prove more suitable. We analyzed the applicability of the concept of functional depth to the identification of outliers in GPS observations. The proposed method was applied to 12 series of GPS receiver data collected in an open space and in similar signal reception conditions. The results obtained adapted better to the expected results, given the signal-reception conditions, than those obtained by the classical statistical approaches used by other writers to compare GPS observations.
机译:传统上,使用单变量或多变量统计数据来确定全球定位系统(GPS)观测值中的异常值,以比较设备,定位方法或工作条件。但是,这些方法在处理GPS接收器收集的数据时具有某些缺点。这样的数据可以更适合作为平滑随机过程的离散点处的观察来处理,因此,用于功能数据分析的其他统计方法可能更适合。我们分析了功能深度概念在GPS观测值中识别异常值的适用性。将该方法应用于在开放空间和相似信号接收条件下收集的12系列GPS接收器数据。在给定信号接收条件的情况下,所获得的结果比其他作者用来比较GPS观测值的经典统计方法所获得的结果更适合预期的结果。

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