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Flexible Mean and Dispersion Function Estimation in Extended Generalized Additive Models

机译:扩展广义可加模型的柔性均值和色散函数估计

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摘要

Real data may expose a larger (or smaller) variability than assumed in an exponential family modeling, the basis of Generalized linear models and additive models. To analyze such data, smooth estimation of the mean and the dispersion function has been introduced in extended generalized additive models using P-splines techniques. This methodology is further explored here by allowing for the modeling of some of the covariates parametrically and some nonparametrically. The main contribution in this article is a simulation study investigating the finite-sample performance of the P-spline estimation technique in these extended models, inCIuding comparisons with a standard generalized additive modeling approach, as well as with a hierarchical modeling approach.
机译:实际数据可能会暴露出比指数族建模(通用线性模型和加性模型的基础)中所假设的更大(或更小的)可变性。为了分析此类数据,已在使用P样条技术的扩展广义加性模型中引入了均值和色散函数的平滑估计。通过允许对一些协变量进行参数化和一些非参数化建模,可在此进一步探索该方法。本文的主要贡献是仿真研究,研究了在这些扩展模型中P样条估计技术的有限样本性能,包括与标准广义加性建模方法以及分层建模方法的比较。

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