Do managers trust AI? An exploratory research based on social comparison theory

IF 4.1 3区 管理学 Q2 BUSINESS Management Decision Pub Date : 2024-07-19 DOI:10.1108/md-10-2023-1971
Cristian Rizzo, Giacomo Bagna, David Tuček
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Abstract

Purpose

The purpose of this study is to investigate managers’ decision-making processes when evaluating suggestions provided by human collaborators or artificial intelligence (AI) systems. We employed the framework of Social Comparison Theory (SCT) in the business context to examine the influence of varying social comparison orientation levels on managers’ willingness to accept advice in their organization.

Design/methodology/approach

A survey was conducted on a sample of 192 US managers, in which we carried out an experiment manipulating the source type (human vs AI) and assessing the potential moderating role of social comparison orientation. Results were analyzed using a moderation model by Hayes (2013).

Findings

Despite the growing consideration gained by AI systems, results showed a discernible preference for human-generated advice over those originating from Artificial Intelligence (AI) sources. Moreover, the moderation analysis indicated how low levels of social comparison orientation may lead managers to be more willing to accept advice from AI.

Research limitations/implications

This study contributes to the current understanding of the interplay between social comparison orientation and managerial decision-making. Based on the results of this preliminary study that used a scenario-based experiment, future research could try to expand these findings by examining managerial behavior in a natural context using field experiments, or multiple case studies.

Originality/value

This is among the first studies that examine AI adoption in the organizational context, showing how AI may be used by managers to evade comparison among peers or other experts, thereby illuminating the role of individual factors in affecting managers’ decision-making.

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管理者信任人工智能吗?基于社会比较理论的探索性研究
本研究旨在调查管理人员在评估人类合作者或人工智能(AI)系统提供的建议时的决策过程。我们在商业背景下采用了社会比较理论(Social Comparison Theory,SCT)的框架,研究了不同社会比较取向水平对管理者在其组织中接受建议的意愿的影响。我们对 192 名美国管理者进行了抽样调查,在调查中,我们进行了一项实验,操纵了来源类型(人类与人工智能),并评估了社会比较取向的潜在调节作用。研究结果尽管人工智能系统获得了越来越多的考虑,但结果显示,与人工智能(AI)来源相比,人们明显更倾向于人类生成的建议。此外,调节分析表明,低水平的社会比较取向可能会导致管理者更愿意接受来自人工智能的建议。研究局限/意义本研究有助于加深当前对社会比较取向与管理决策之间相互作用的理解。基于这项使用情景实验的初步研究结果,未来的研究可以尝试使用现场实验或多个案例研究来考察自然环境下的管理行为,从而扩展这些研究结果。
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来源期刊
CiteScore
8.20
自引率
8.70%
发文量
126
期刊介绍: ■In-depth studies of major issues ■Operations management ■Financial management ■Motivation ■Entrepreneurship ■Problem solving and proactivity ■Serious management argument ■Strategy and policy issues ■Tactics for turning around company crises Management Decision, considered by many to be the best publication in its field, consistently offers thoughtful and provocative insights into current management practice. As such, its high calibre contributions from leading management philosophers and practitioners make it an invaluable resource in the aggressive and demanding trading climate of the Twenty-First Century.
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