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首页> 外文期刊>Test: An Official Journal of the Spanish Society of Statistics and Operations Research >Nonparametric estimation of mean and dispersion functions in extended generalized linear models
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Nonparametric estimation of mean and dispersion functions in extended generalized linear models

机译:扩展广义线性模型中均值和色散函数的非参数估计

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We study joint nonparametric estimators of the mean and the dispersion functions in extended double exponential family models. The starting point is the exponential family and the generalized linear models setting. The extended models allow for both overdispersion and underdispersion, or even a combination of both. We simultaneously estimate the dispersion function and the mean function by using P-splines with a difference type of penalty to avoid overfitting. Special attention is given to the smoothing parameter selection as well as to implementation issues. The performance of the method is investigated via simulations. A comparison with other available methods is made. We provide applications to several sets of data, including continuous data, counts and proportions.
机译:我们研究了扩展双指数族模型中均值和色散函数的联合非参数估计量。起点是指数族和广义线性模型设置。扩展模型允许过度分散和分散不足,甚至可以同时使用两者。我们通过使用惩罚类型不同的P样条同时估计色散函数和均值函数,以避免过度拟合。特别注意平滑参数的选择以及实现问题。通过仿真研究了该方法的性能。与其他可用方法进行了比较。我们为多组数据提供应用程序,包括连续数据,计数和比例。

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