The impact of artificial intelligence on labor markets in developing countries: a new method with an illustration for Lao PDR and urban Viet Nam.

IF 1.3 4区 经济学 Q3 ECONOMICS Journal of Evolutionary Economics Pub Date : 2023-02-17 DOI:10.1007/s00191-023-00809-7
Francesco Carbonero, Jeremy Davies, Ekkehard Ernst, Frank M Fossen, Daniel Samaan, Alina Sorgner
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Abstract

AI is transforming labor markets around the world. Existing research has focused on advanced economies but has neglected developing economies. Different impacts of AI on labor markets in different countries arise not only from heterogeneous occupational structures, but also from the fact that occupations vary across countries in their composition of tasks. We propose a new methodology to translate existing measures of AI impacts that were developed for the US to countries at various levels of economic development. Our method assesses semantic similarities between textual descriptions of work activities in the US and workers' skills elicited in surveys for other countries. We implement the approach using the measure of suitability of work activities for machine learning provided by Brynjolfsson et al. (Am Econ Assoc Pap Proc 108:43-47, 2018) for the US and the World Bank's STEP survey for Lao PDR and Viet Nam. Our approach allows characterizing the extent to which workers and occupations in a given country are subject to destructive digitalization, which puts workers at risk of being displaced, in contrast to transformative digitalization, which tends to benefit workers. We find that workers in urban Viet Nam, in comparison to Lao PDR, are more concentrated in occupations affected by AI, which requires them to adapt or puts them at risk of being partially displaced. Our method based on semantic textual similarities using SBERT is advantageous compared to approaches transferring AI impact scores across countries using crosswalks of occupational codes.

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人工智能对发展中国家劳动力市场的影响:一种以老挝人民民主共和国和越南城市为例证的新方法。
人工智能正在改变世界各地的劳动力市场。现有研究侧重于发达经济体,但忽视了发展中经济体。人工智能对不同国家劳动力市场的不同影响不仅源于职业结构的异质性,还源于各国职业在任务构成上的差异。我们提出了一种新的方法,将现有的针对美国的人工智能影响测量方法转换到处于不同经济发展水平的国家。我们的方法是评估美国工作活动的文字描述与其他国家调查中获得的工人技能之间的语义相似性。我们使用 Brynjolfsson 等人(Am Econ Assoc Pap Proc 108:43-47, 2018)为美国提供的机器学习工作活动适用性衡量标准,以及世界银行为老挝人民民主共和国和越南提供的 STEP 调查来实施该方法。我们的方法可以描述特定国家的工人和职业在多大程度上受到破坏性数字化的影响,破坏性数字化使工人面临流离失所的风险,而变革性数字化则往往使工人受益。我们发现,与老挝人民民主共和国相比,越南城市中的工人更集中于受人工智能影响的职业,这就要求他们必须适应或面临部分被淘汰的风险。我们基于 SBERT 的语义文本相似性的方法与使用职业代码交叉图在各国间转移人工智能影响分数的方法相比更具优势。
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来源期刊
CiteScore
3.60
自引率
5.60%
发文量
39
期刊介绍: The journal aims to provide an international forum for a new approach to economics. Following the tradition of Joseph A. Schumpeter, it is designed to focus on original research with an evolutionary conception of the economy. The journal will publish articles with a strong emphasis on dynamics, changing structures (including technologies, institutions, beliefs and behaviours) and disequilibrium processes with an evolutionary perspective (innovation, selection, imitation, etc.). It favours interdisciplinary analysis and is devoted to theoretical, methodological and applied work. Research areas include: industrial dynamics; multi-sectoral and cross-country studies of productivity; innovations and new technologies; dynamic competition and structural change in a national and international context; causes and effects of technological, political and social changes; cyclic processes in economic evolution; the role of governments in a dynamic world; modelling complex dynamic economic systems; application of concepts, such as self-organization, bifurcation, and chaos theory to economics; evolutionary games. Officially cited as: J Evol Econ
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