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Goodness-of-fit Test for Directional Data

机译:方向数据拟合优度检验

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In this paper, we study the problem of testing the hypothesis on whether the density f of a random variable on a sphere belongs to a given parametric class of densities. We propose two test statistics based on the L~2 and L~1 distances between a non-parametric density estimator adapted to circular data and a smoothed version of the specified density. The asymptotic distribution of the L~2 test statistic is provided under the null hypothesis and contiguous alternatives. We also consider a bootstrap method to approximate the distribution of both test statistics. Through a simulation study, we explore the moderate sample performance of the proposed tests under the null hypothesis and under different alternatives. Finally, the procedure is illustrated by analysing a real data set based on wind direction measurements.
机译:在本文中,我们研究检验关于球体上随机变量的密度f是否属于给定的参数类别的假设的问题。我们基于适合于圆形数据的非参数密度估计器与指定密度的平滑版本之间的L〜2和L〜1距离,提出了两个检验统计量。 L〜2检验统计量的渐近分布在原假设和连续替代条件下提供。我们还考虑一种引导方法来近似估计两个测试统计量的分布。通过模拟研究,我们探索了在原假设和不同替代方案下拟议测试的中等样本性能。最后,通过基于风向测量值分析实际数据集来说明该过程。

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