COVID-19对印度各区趋同的影响

IF 0.8 Q4 DEVELOPMENT STUDIES
M. Chakrabarty, Subhankar Mukherjee
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引用次数: 1

摘要

目的本文的目的是估计新冠肺炎大流行对印度各地区趋同/分化模式的影响。具体而言,本文调查了不同地区群体之间的影响是否是异质的(基于收入分配)。这种差异性影响可能导致长期增长路径的异质性,导致国内各地区的发展不平衡。对趋同的研究可以确定跨区域发展的可能轨迹。对这一现象的调查是本研究的主要目的。设计/方法论/方法本文采用面板回归法进行估计。本文使用高频夜间光强数据作为总输出的代理。研究结果作者观察到,由于新冠疫情,收敛速度显著下降。在整个地区群中,与疫情前相比,ß-收敛率的下降幅度从较贫穷地区的约33%到最富裕地区的接近零不等。这些发现表明,疫情可能会导致国内不同地区之间的差距扩大。原创性/价值本文以以下方式对文学做出贡献。首先,据作者所知,这是第一篇研究新冠肺炎对收敛率影响的论文。详细研究不同区域之间可能存在的趋同差异至关重要,因为趋同程度的更大下降,特别是在较贫穷区域之间,可能需要政策关注,以实现长期公平发展。作者根据夜光强度的分布将这些地区划分为四个分位数组来进行这项练习。其次,虽然之前使用夜间光线数据进行的收敛研究使用了横断面方法,但本研究可能是首次尝试对这些数据使用面板回归方法。该方法的应用可用于解决地区层面的遗漏变量偏差。最后,使用夜光强度分布的不同分位数进行的异质性分析可能有助于设计有针对性的政策,以缓解因冲击而造成的地区差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Impact of COVID-19 on convergence in Indian districts
Purpose The purpose of this paper is to estimate the impact of the COVID-19 pandemic on the patterns of convergence/divergence among the districts in India. Specifically, this paper investigates if the impact is heterogeneous among different cohorts of districts (based on income distribution). The differential impact may lead to heterogeneous long-run growth paths, resulting in unbalanced development across regions within the country. A study of convergence can ascertain the possible trajectory of such development across regions. Investigation of this phenomenon is the primary aim of this study. Design/methodology/approach This paper uses the panel regression method for estimation. This paper uses high-frequency nighttime light intensity data as a proxy for aggregate output. Findings The authors observe a significant reduction in the convergence rate as a result of the pandemic. Across the cluster of districts, the drop in ß-convergence rate, compared to the pre-pandemic period, varied from approximately 33% for the poorer districts to close to zero for the richest group of districts. These findings suggest that the pandemic may lead to a wider disparity among different regions within the country. Originality/value This paper contributes to the literature in the following ways. First, to the best of the authors’ knowledge, this is the first paper to investigate the impact of COVID-19 on the convergence rate. A detailed look into the possible disparity in convergence among various regions is critical because a larger drop in convergence, especially among the poorer regions, may call for policy attention to attain long-term equitable development. The authors perform this exercise by dividing the districts into four quantile groups based on the distribution of night-light intensity. Second, while previous studies on convergence using nighttime light data have used a cross-sectional approach, this study is possibly the first attempt to use the panel regression method on this data. The application of this method can be useful in tackling district-level omitted variables bias. Finally, the heterogeneity analysis using different quantiles of the distribution of night-light intensity may help in designing targeted policies to mitigate the disparity across districts due to the shock.
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CiteScore
2.80
自引率
0.00%
发文量
7
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