Share density‐based clustering of income data

Francesca Condino
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Abstract

The Lorenz curve is a fundamental tool for analyzing income and wealth distribution and inequality. Indeed, the Lorenz curve and its derivative, the so‐called share density, provide valuable information regarding inequality. There is a widely recognized connection between the Lorenz curve and elements from information theory field. Starting from this evidence, the aim of this work is to compare the income inequality of different subgroups, by using a proper dissimilarity measure, borrowed from information theory, between parametric share densities. This measure is then considered for clustering purposes. To this end, a dynamic clustering algorithm is considered to group unconventional data, such as density functions. Finally, an application, regarding data from Survey on Households Income and Wealth (SHIW) by Bank of Italy, is shown.
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基于份额密度的收入数据聚类
洛伦兹曲线是分析收入、财富分配和不平等的基本工具。事实上,洛伦兹曲线及其导数,即所谓的份额密度,提供了关于不平等的有价值的信息。洛伦兹曲线与信息论领域的元素有着广泛的联系。从这一证据出发,本工作的目的是通过使用适当的不相似性度量,借用信息论,在参数份额密度之间比较不同子群体的收入不平等。然后将此度量用于聚类目的。为此,考虑采用动态聚类算法对密度函数等非常规数据进行分组。最后,展示了意大利银行家庭收入和财富调查(SHIW)数据的应用。
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