Detecting and Quantifying Structural Breaks in Climate

IF 1.1 Q3 ECONOMICS
Neil R. Ericsson, Mohammed H. I. Dore, Hassan A. Butt
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引用次数: 1

Abstract

Structural breaks have attracted considerable attention recently, especially in light of the financial crisis, Great Recession, the COVID-19 pandemic, and war. While structural breaks pose significant econometric challenges, machine learning provides an incisive tool for detecting and quantifying breaks. The current paper presents a unified framework for analyzing breaks; and it implements that framework to test for and quantify changes in precipitation in Mauritania over 1919–1997. These tests detect a decline of one third in mean rainfall, starting around 1970. Because water is a scarce resource in Mauritania, this decline—with adverse consequences on food production—has potential economic and policy consequences.
探测和量化气候中的结构性断裂
结构性突破最近引起了相当大的关注,特别是在金融危机、大衰退、新冠肺炎大流行和战争的背景下。虽然结构性断裂带来了重大的计量挑战,但机器学习为检测和量化断裂提供了一个精辟的工具。本文提出了一个统一的断裂分析框架;它实施了这一框架,以测试和量化1919年至1997年毛里塔尼亚降水量的变化。这些测试发现,从1970年左右开始,平均降雨量下降了三分之一。由于水在毛里塔尼亚是一种稀缺资源,这种下降对粮食生产产生了不利影响,可能会产生经济和政策后果。
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
Econometrics
Econometrics Economics, Econometrics and Finance-Economics and Econometrics
CiteScore
2.40
自引率
20.00%
发文量
30
审稿时长
11 weeks
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