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June 16, 2023International Journal of Information Management Data Insights102 citationsOpen Access

Exploring artificial intelligence and big data scholarship in information systems: A citation, bibliographic coupling, and co-word analysis

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RDRahul DwivediSNSridhar NerurVBVenuGopal Balijepally

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Abstract

This research explores extant research on artificial intelligence (AI) and big data published in the premier Information Systems (IS) journals over a period of 26 years (1997–2022), and it uses the techniques of citation analysis, bibliographic coupling, and co-word analysis. Citation analysis results reveal IS as the most cited reference discipline, followed by general business, organization science, and marketing. Two major topical clusters have been identified — problem domain-specific AI (e.g., predictive analytics, machine learning algorithms, and text mining) and organizational-specific AI (e.g., big data capabilities, firm performance, agility, and strategy). Co-word analysis revealed a gradual shift of scholarly interest from problem-domain-specific AI toward organizational-specific AI. Using the citation data, the most influential (cited) authors, (cited) articles, journals, institutions, and countries are identified. Gaps in extant research and future research paths are discussed.

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Cite This Study

Dwivedi et al. (2023) studied this question.

synapsesocial.com/papers/6a1aecbce916fa6dd3b9252bhttps://doi.org/10.1016/j.jjimei.2023.100185
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