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Microeconometric models and anonymized micro data

机译:微观计量模型和匿名微观数据

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The paper first provides a short review of the moat common microeconometric models including logit, probit, discrete choice, duration models, models for count data and Tobit-type models. In the second part we consider the situation that the micro data have undergone some anonymization procedure which has become an important issue since otherwise confidentiality would not be guaranteed. We shortly describe the most important approaches for data protection which also can be seen as creating errors of measurement by purpose. We also consider the possibility of correcting the estimation procedure while taking into account the anonymization procedure. We illustrate this for the case of binary data which axe anonymized by 'post-randomization' and which are used in a probit model. We show the effect of 'naive' estimation, i. e. when disregarding the anonymization procedure. We also show that a 'corrected' estimate is available which is satisfactory in statistical terms. This is also true if parameters of the anonymization procedure have to be estimated, too.
机译:本文首先简要介绍了护城河常见的微观计量模型,包括对数模型,概率模型,离散选择模型,工期模型,计数数据模型和Tobit型模型。在第二部分中,我们考虑了微数据已经过一些匿名化程序的情况,这已成为一个重要问题,因为否则将无法保证机密性。我们简短地介绍了最重要的数据保护方法,这些方法也可以视为故意造成测量误差。我们还考虑了考虑匿名程序的同时纠正估计程序的可能性。我们针对二进制数据的情况对此进行说明,该二进制数据被“后随机化”匿名化,并在概率模型中使用。我们展示了“天真”估计的影响,即。 e。当忽略匿名程序时。我们还表明,在统计上令人满意的“校正”估计是可用的。如果也必须估计匿名过程的参数,则也是如此。

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