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On the Semiparametric Efficiency of the Scott-Wild Estimator under Choice-Based and Two-Phase Sampling

机译:基于选择和两阶段采样的Scott-Wild估计器的半参数效率

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Using a projection approach, we obtain an asymptotic information bound for estimates of parameters in general regression models under choice-based and two-phase outcome-dependent sampling. The asymptotic variances of the semiparametric estimates of Scott and Wild (1997, 2001) are compared to these bounds and the estimates are found to be fully efficient.
机译:使用投影方法,我们获得了基于选择和两阶段结果依赖抽样下一般回归模型中参数估计的渐近信息。将Scott和Wild(1997,2001)的半参数估计的渐近方差与这些界限进行比较,发现这些估计是完全有效的。

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