1983-2018年美国两阶层收入分配的物理学启发分析

D. Ludwig, V. Yakovenko
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引用次数: 15

摘要

本文第一部分简要介绍了基于统计物理学和动力学理论的经济不平等研究方法。这些包括玻尔兹曼动力学方程、时间反转对称性、遍历性假设、熵最大化和福克-普朗克方程。讨论了指数型玻尔兹曼-吉布斯分布和帕累托幂律的起源与可加性和可乘性随机过程的关系。本文的第二部分使用两类分解分析了1983-2018年期间美国的收入分配数据。我们提供的压倒性证据表明,下层阶级(占人口的90%以上)由指数分布描述,而上层阶级(2018年约占人口的4%)由幂次定律描述。我们表明,在这段时间内,不平等的显著增长是由于上层阶级收入份额的急剧增加,而下层阶级内部的相对不平等保持不变。我们推测,上层阶级人口和收入份额的扩大可能是由于过去40年来经济的数字化和非局部性的增加。本文是“社会和经济的动态交换模型”主题的一部分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Physics-inspired analysis of the two-class income distribution in the USA in 1983–2018
The first part of this paper is a brief survey of the approaches to economic inequality based on ideas from statistical physics and kinetic theory. These include the Boltzmann kinetic equation, the time-reversal symmetry, the ergodicity hypothesis, entropy maximization and the Fokker–Planck equation. The origins of the exponential Boltzmann–Gibbs distribution and the Pareto power law are discussed in relation to additive and multiplicative stochastic processes. The second part of the paper analyses income distribution data in the USA for the time period 1983–2018 using a two-class decomposition. We present overwhelming evidence that the lower class (more than 90% of the population) is described by the exponential distribution, whereas the upper class (about 4% of the population in 2018) by the power law. We show that the significant growth of inequality during this time period is due to the sharp increase in the upper-class income share, whereas relative inequality within the lower class remains constant. We speculate that the expansion of the upper-class population and income shares may be due to increasing digitization and non-locality of the economy in the last 40 years. This article is part of the theme issue ‘Kinetic exchange models of societies and economies’.
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