在金融服务中采用人工智能:政策框架

IF 2.9 Q2 MANAGEMENT
B. Kumari, Jaspreet Kaur, S. Swami
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引用次数: 1

摘要

金融服务机构在全球范围内保持弹性的一个关键的当代政策问题要求通过采用和适应人工智能(AI)技术来重新思考和革新。本研究的目的是通过系统方法探索驱动因素,提出金融部门采用人工智能的政策框架。设计/方法/方法基于文献综述和与工业界和学术界专家的讨论,最终列出了9个促成因素,并将其用于问卷调查,以确定促成因素的等级。进一步,在专家的帮助下,本研究建立了解释结构模型(ISM)。在专家的帮助下开发的ISM有向图,将预期盈利能力、非接触式解决方案、信用风险管理和软件供应商支持等促成因素作为依赖因素,位居ISM的首位。另一方面,数据可用性、技术基础设施和资金等因素是最主要的驱动因素,这些因素在ISM指数中垫底。研究局限性/启示本研究为实践管理人员和政府机构在金融生态系统中采用人工智能进行数字化转型提供了启示和政策建议。原创性/价值本文使用系统方法来开发采用人工智能技术的使能因素的ISM。在研究结果的基础上,该研究提出了一个政策框架,以加速金融生态系统与人工智能技术的运作。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Adoption of artificial intelligence in financial services: a policy framework
Purpose A crucial contemporary policy question for financial service organizations of being resilient across the globe calls for rethinking and renovating by adopting and adapting to the technologies of artificial intelligence (AI). The purpose of this study is to propose a policy framework for adoption of AI in the finance sector by exploring the driving factors through systems approach. Design/methodology/approach Based on literature review and discussions with experts from both industry and academia, nine enablers were shortlisted, which were used in the questionnaire survey to determine ranks of enablers. Further, the study developed the interpretive structural model (ISM) with the help of experts. Findings The ISM digraph developed with the help of the experts, resulted in the enablers like anticipated profitability, contactless solutions, credit risk management and software vendor support as dependent factors and stood at the top of the ISM. On the other hand, factors like availability of the data, technical infrastructure and funds are the most driving factors, which lie on the bottom of the ISM. Research limitations/implications The study provides implications and policy recommendations for the practicing managers and government agencies approaching the digital transformation towards the adoption of AI in the finance ecosystem. Originality/value The paper uses the systems approach for the development of the ISM of the enabling factors for the adoption of AI technology. On the basis of the results, the study proposes a policy framework to accelerate the functioning of the finance ecosystem with AI technology.
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来源期刊
CiteScore
5.90
自引率
8.70%
发文量
57
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