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Local Linear Density Estimation For Filtered Survival Data,with Bias Correction

机译:带有偏差校正的滤波后生存数据的局部线性密度估计

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A class of local linear kernel density estimators based on weighted least-squares kernel estimation is considered within the framework of Aalen's multiplicative intensity model. This model includes the filtered data model that, in turn, allows for truncation and/or censoring in addition to accommodating unusual patterns of exposure as well as occurrence. It is shown that the local linear estimators corresponding to all different weightings have the same pointwise asymptotic properties. However, the weighting previously used in the literature in the i.i.d. case is seen to be far from optimal when it comes to exposure robustness, and a simple alternative weighting is to be preferred. Indeed, this weighting has, effectively, to be well chosen in a 'pilot' estimator of the survival function as well as in the main estimator itself. We also investigate multiplicative and additive bias-correction methods within our framework. The multiplicative bias-correction method proves to be the best in a simulation study comparing the performance of the considered estimators. An example concerning old-age mortality demonstrates the importance of the improvements provided.
机译:在Aalen乘法强度模型的框架内,考虑了基于加权最小二乘核估计的一类局部线性核密度估计器。该模型包括过滤后的数据模型,该模型继而又可以适应截断和/或审查的方式,以适应异常的曝光和发生方式。结果表明,对应于所有不同权重的局部线性估计量具有相同的逐点渐近性质。但是,先前在i.d.在曝光鲁棒性方面,这种情况远非最佳,因此首选简单的替代权重。实际上,必须在生存功能的“先导”估计量以及主要估计量本身中有效选择权重。我们还将在我们的框架内研究乘法和加法偏差校正方法。在比较考虑的估计量性能的模拟研究中,乘法偏差校正方法被证明是最好的。一个有关老年死亡率的例子证明了所提供的改善的重要性。

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