The relationship between unemployment and immigration with linear and nonlinear causality tests: Evidence from the United States

A. Aslan, Buket Altinoz
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引用次数: 2

Abstract

This paper investigates the relationship between the immigrant population and the unemployment rate in the United States for period from 1980 to 2013. For this purpose, firstly, coefficient of long and short run is estimated by using Autoregressive Distributed Lag (ARDL) method and then, linear and nonlinear causality test are applied. Findings/Originality: According to ARDL test results; there is a positive effect of immigration to the United States on the unemployment rate to in the long run. In other words, while there is no statistically significant relationship between two variables in the short run, an increase in the immigrant population increases the unemployment rate by 0.14 percent in the long run. The bootstrapped Toda-Yamamoto linear causality test results imply that there is no causal relationship between immigration and unemployment. Also, there is no nonlinear relationship between immigration population and unemployment rate in the United States.
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失业与移民之间的线性和非线性因果关系检验:来自美国的证据
本文研究了1980 - 2013年美国移民人口与失业率的关系。为此,首先采用自回归分布滞后(ARDL)方法估计长期和短期系数,然后采用线性和非线性因果关系检验。发现/独创性:根据ARDL检测结果;从长远来看,美国的移民对失业率有积极的影响。换句话说,虽然短期内两个变量之间没有统计学上的显著关系,但从长期来看,移民人口的增加会使失业率增加0.14%。自举Toda-Yamamoto线性因果检验结果表明,移民与失业之间不存在因果关系。此外,美国移民人口与失业率之间也不存在非线性关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
自引率
20.00%
发文量
21
审稿时长
12 weeks
期刊最新文献
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