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- W4386080765 abstract "The integration of artificial intelligence (AI) into human resource management (HRM) strategies has become increasingly common due to technological advancements. This has spurred a new field of research focused on evaluating the impact of AI adoption on business and individual outcomes, as well as how to evaluate AI-enabled HRM practices. However, there is limited cross-disciplinary research in this area, causing a fragmented body of knowledge. To address this issue, social network analysis has been recognized as a tool for analyzing and researching large-scale social phenomena in HRM. The study of scientific co-authorship networks is one application of social network analysis that can help identify the main components and trends in this field. Using social network analysis indicators, the current study examined the AI&HRM co-authorship network, which consists of 43,789 members and 81,891 scientific collaborations. The study analyzed articles related to AI&HRM published between 2000 and 2023 extracted from the WOS citation database. Through centrality measures, the most important members of the AI&HRM co-authorship network were identified using the TOPSIS method, which identified twenty prominent researchers in this field. The study also examined the keywords AI&HRM and the scientific cooperation network of nations, universities, and communities. Overall, this study highlights the importance of cross-disciplinary research and social network analysis in understanding the implications of AI adoption in HRM." @default.
- W4386080765 created "2023-08-23" @default.
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- W4386080765 date "2023-08-18" @default.
- W4386080765 modified "2023-09-27" @default.
- W4386080765 title "Unveiling the Collaborative Patterns of Artificial Intelligence Applications in Human Resource Management: A Social Network Analysis Approach" @default.
- W4386080765 doi "https://doi.org/10.48550/arxiv.2308.09798" @default.
- W4386080765 hasPublicationYear "2023" @default.
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