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Model-based approach for household clustering with mixed scale variables

机译:基于模型的家庭聚类方法与混合尺度变量

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摘要

The Ministry of Social Development in Mexico is in charge of creating and assigning social programmes targeting specific needs in the population for the improvement of the quality of life. To better target the social programmes, the Ministry is aimed to find clusters of households with the same needs based on demographic characteristics as well as poverty conditions of the household. Available data consists of continuous, ordinal, and nominal variables, all of which come from a non-i.i.d complex design survey sample. We propose a Bayesian nonparametric mixture model that jointly models a set of latent variables, as in an underlying variable response approach, associated to the observed mixed scale data and accommodates for the different sampling probabilities. The performance of the model is assessed via simulated data. A full analysis of socio-economic conditions in households in the Mexican State of Mexico is presented.
机译:墨西哥的社会发展部负责创建和分配针对人口中特定需求的社会计划,以提高生命的质量。 为了更好地瞄准社会计划,该部旨在为基于人口特征以及家庭的贫困条件找到具有相同需求的家庭集群。 可用数据包括连续,序数和标称变量,所有这些都来自非I.I.D复杂的设计调查样本。 我们提出了一种贝叶斯非参数混合模型,共同模拟一组潜在的变量,如潜在的可变响应方法,与观察到的混合尺度数据相关联,并适用于不同的采样概率。 通过模拟数据评估模型的性能。 提出了对墨西哥墨西哥州的家庭的社会经济条件完全分析。

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