科学研究中的算法管理

IF 7.5 1区 管理学 Q1 MANAGEMENT Research Policy Pub Date : 2024-03-15 DOI:10.1016/j.respol.2024.104985
Maximilian Koehler, Henry Sauermann
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引用次数: 0

摘要

人工智能(AI)可以执行核心研究任务,如提出研究问题、处理数据和解决问题。我们将焦点从作为 "工作者 "的人工智能转移到人工智能是否、如何以及何时也能 "管理 "执行此类任务的人类工作者。以人群科学为背景,我们发现了算法管理(AM)在之前的组织文献中强调的五个关键功能中的实例:任务分工和任务分配、指导、协调、激励和支持学习。这些应用得益于人工智能的即时、全面和互动能力,并反映了一些更普遍的基本功能,如匹配、聚类和预测。定量比较显示,与未使用人工智能的项目相比,使用人工智能的项目规模更大,更有可能与平台相关联,这表明可能存在重要的意外因素。最后,我们概述了科学研究中算法管理的未来研究议程。
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Algorithmic management in scientific research

Artificial intelligence (AI) can perform core research tasks such as generating research questions, processing data, and solving problems. We shift the focus from AI as a “worker” to ask whether, how, and when AI can also “manage” human workers who perform such tasks. Focusing on the context of crowd science, we find examples of algorithmic management (AM) in five key functions highlighted in prior organizational literature: task division and task allocation, direction, coordination, motivation, and supporting learning. These applications benefit from the instantaneous, comprehensive, and interactive capabilities of AI, and reflect several more general underlying functions such as matching, clustering, and forecasting. Quantitative comparisons show that projects using AM are larger and more likely to be associated with platforms than projects not using AM, pointing to potentially important contingency factors. We conclude by outlining an agenda for future research on algorithmic management in scientific research.

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来源期刊
Research Policy
Research Policy MANAGEMENT-
CiteScore
12.80
自引率
6.90%
发文量
182
期刊介绍: Research Policy (RP) articles explore the interaction between innovation, technology, or research, and economic, social, political, and organizational processes, both empirically and theoretically. All RP papers are expected to provide insights with implications for policy or management. Research Policy (RP) is a multidisciplinary journal focused on analyzing, understanding, and effectively addressing the challenges posed by innovation, technology, R&D, and science. This includes activities related to knowledge creation, diffusion, acquisition, and exploitation in the form of new or improved products, processes, or services, across economic, policy, management, organizational, and environmental dimensions.
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