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Optimal PPS Sampling with Vanishing Auxiliary Variables - with Applications in Microscopy

机译:辅助变量消失的最佳PPS采样-在显微镜中的应用

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摘要

Recently, non-uniform sampling has been suggested in microscopy to increase efficiency. More precisely, proportional to size (PPS) sampling has been introduced, where the probability of sampling a unit in the population is proportional to the value of an auxiliary variable. In the microscopy application, the sampling units are fields of view, and the auxiliary variables are easily observed approximations to the variables of interest. Unfortunately, often some auxiliary variables vanish, that is, are zero-valued. Consequently, part of the population is inaccessible in PPS sampling. We propose a modification of the design based on a stratification idea, for which an optimal solution can be found, using a model-assisted approach. The new optimal design also applies to the case where 'vanish' refers to missing auxiliary variables and has independent interest in sampling theory. We verify robustness of the new approach by numerical results, and we use real data to illustrate the applicability.
机译:最近,有人建议在显微镜下进行非均匀采样以提高效率。更准确地说,已引入了按比例抽样(PPS)的抽样方法,其中抽样总体中的一个单位的概率与辅助变量的值成比例。在显微镜应用中,采样单位是视场,辅助变量很容易观察到与目标变量近似。不幸的是,一些辅助变量通常消失,即为零值。因此,部分人口无法进行PPS采样。我们基于分层思想提出了对设计的修改,使用模型辅助方法可以找到最佳解决方案。新的最佳设计还适用于“消失”是指缺少辅助变量并且对采样理论具有独立兴趣的情况。我们通过数值结果验证了该新方法的鲁棒性,并使用实际数据来说明其适用性。

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