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March 5, 2026Journal of World Business2 citationsOpen Access

Advancing international business research through artificial intelligence and machine learning applications

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AGAjai GaurEPEvelyn Lin PengCPChinmay Pattnaik

Key Points

  • The aim is to explore how AI and ML methods can be integrated to advance international business research.
  • Review of AI and ML techniques including supervised and unsupervised learning.
  • Examination of generative AI and multimodal approaches.
  • Analysis of how these methods can enrich core international business constructs.
  • AI and ML reveal patterns that drive theoretical and empirical advances in international business.
  • Integration presents opportunities and methodological challenges for scholars.
  • AI and ML are positioned as transformative forces in the future of international business research.

Abstract

Artificial intelligence (AI) and machine learning (ML) are transforming international business (IB) research by enabling the analysis of large-scale, multimodal data and uncovering patterns that drive theoretical and empirical advances. Yet, the methodological breadth and technical complexity of AI and ML pose significant challenges for many IB scholars. This paper offers a structured roadmap for integrating AI- and ML-based techniques into IB research. We review key methods, including supervised, unsupervised, generative AI, and multimoal approaches, and illustrate how they can enrich core IB constructs such as foreignness, legitimacy, internationalization strategy, corporate governance, distance, and deglobalization. In doing so, we highlight both opportunities and methodological challenges associated with integrating ML into IB research. By linking methodological innovation with conceptual advancement, this paper positions AI and ML not merely as analytical toolkits but as transformative forces reshaping the future of IB research.

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Cite This Study

Gaur et al. (2026) studied this question.

synapsesocial.com/papers/69a91d21d6127c7a504bff20https://doi.org/10.1016/j.jwb.2026.101725
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