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首页> 外文期刊>Metrika: International Journal for Theoretical and Applied Statistics >Spline-based quasi-likelihood estimation of mixed Poisson regression with single-index models
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Spline-based quasi-likelihood estimation of mixed Poisson regression with single-index models

机译:基于样条的准似然估计单索引模型的混合泊松回归

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摘要

We consider spline-based quasi-likelihood estimation for mixed Poisson regression with single-index models. The unknown smooth function is approximated by B-splines, and a modified Fisher scoring algorithm is employed to compute the estimates. The spline estimate of the nonparametric component is shown to achieve the optimal rate of convergence, and the asymptotic normality of the regression parameter estimates is still valid even if the variance function is misspecified. The semiparametric efficiency of the model can be established if the variance function is correctly specified. The variance of the regression parameter estimates can be consistently estimated by a simple procedure based on the least-squares estimation. The proposed method is evaluated via an extensive Monte Carlo study, and the methodology is illustrated on an air pollution study.
机译:我们考虑了与单索引模型的混合泊松回归的样条状的准似然估计。 通过B样条近似未知的平滑函数,采用修改的Fisher评分算法来计算估计。 显示非参数组分的样条估计值达到最佳收敛速率,并且即使错过了差异函数,回归参数估计的渐近常态仍然有效。 如果正确指定了方差函数,则可以建立模型的半占效率。 可以通过基于最小二乘估计的简单过程一致地估计回归参数估计的方差。 通过广泛的蒙特卡罗研究评估所提出的方法,并在空气污染研究中说明了方法。

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