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April 26, 2026Computation1 citationsOpen Access

AI-Enabled Governance: Board Gender Diversity and Corporate Tax Avoidance

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MMMarwan MansourMZMo’taz Al ZobiAMAhmad Marei

Key Points

  • This study investigates how artificial intelligence capability affects the influence of board gender diversity on corporate tax avoidance.
  • Analyzed a balanced panel of 1586 non-financial firms from developing economies (2009–2023)
  • Employed firm fixed effects models and dynamic two-step System GMM to address unobserved heterogeneity and endogeneity
  • Conducted robustness tests including alternative measures and selection-bias corrections
  • Board gender diversity positively correlates with effective tax rates, indicating reduced corporate tax avoidance
  • AI capability significantly strengthens the governance role of gender-diverse boards in promoting tax compliance
  • Robustness tests confirm the stability of findings across various specifications and methodologies

Abstract

Corporate tax avoidance has become a major governance and fiscal sustainability concern, particularly in developing economies where corporate tax revenues constitute a critical source of public financing. While prior research suggests that board gender diversity (BGD) enhances ethical oversight and monitoring, its effectiveness in constraining aggressive tax planning may depend on firms’ informational and technological environments. This study examines whether artificial intelligence (AI) capability strengthens the governance role of BGD in reducing corporate tax avoidance. Using a balanced panel of 1586 non-financial firms from developing economies over the period 2009–2023, the analysis employs firm FE models and dynamic two-step System GMM estimations to address unobserved heterogeneity, endogeneity, and the persistence of corporate tax behavior. The results indicate that BGD is positively associated with effective tax rates, implying lower levels of corporate tax avoidance. Furthermore, AI capability—measured using a lagged specification—significantly strengthens this relationship, suggesting that firms with higher AI adoption exhibit a stronger governance effect of gender-diverse boards on tax compliance. Additional robustness tests—including alternative tax avoidance measures, alternative BGD specifications, heterogeneity analysis, and selection-bias corrections using Heckman, propensity score matching (PSM), and instrumental variable (2SLS) approaches—confirm the stability of the findings. Overall, the results highlight the complementary role of technological capability and board diversity in strengthening corporate governance (CG) and fiscal discipline in developing economies.

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Cite This Study

Mansour et al. (2026) studied this question.

synapsesocial.com/papers/69edacbd4a46254e215b47a0https://doi.org/10.3390/computation14050097
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