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October 12, 2025Sustainability11 citationsOpen Access

Artificial Intelligence for Infrastructure Resilience: Transportation Systems as a Strategic Case for Policy and Practice

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OAOlusola Olajide AjayiAKAnish KurienKDKarim Djouani

Key Points

  • AI applications significantly enhance infrastructure resilience in transportation systems, addressing risks from various threats.
  • The review synthesized findings from 58 studies, highlighting key areas like predictive maintenance, monitoring, and optimization.
  • Challenges identified include affordability, data scarcity, and limited real-world validation, especially in Sub-Saharan Africa.
  • The findings propose a targeted research agenda to advance AI deployment in resource-constrained settings and enhance scalability.

Abstract

Transportation networks are critical lifelines in national infrastructure but are increasingly exposed to risks arising from climate variability, cyber threats, aging assets, and limited resources. This paper presents a scoping review of 58 peer-reviewed studies published between 2015 and 2025 that examine the role of Artificial Intelligence (AI) in strengthening infrastructure resilience, with transportation systems adopted as the strategic case. The review classifies applications along five dimensions: technological approach, infrastructure sector, transportation linkage, resilience/security aspect, and key research gaps. Findings show that AI, machine learning (ML), and the Internet of Things (IoT) dominate current applications, particularly in predictive maintenance, intelligent monitoring, early-warning systems, and optimization. These applications extend beyond transport to energy, water, and agri-food systems that indirectly sustain transport resilience. Persistent challenges include affordability, data scarcity, infrastructural limitations, and limited real-world validation, especially in Sub-Saharan African contexts. The paper synthesizes cross-sector pathways through which AI enhances transport resilience and outlines practical implications for policymakers and practitioners. A targeted research agenda is also proposed to address methodological gaps, enhance deployment in resource-constrained settings, and promote hybrid and explainable AI for trust and scalability.

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Cite This Study

Ajayi et al. (2025) studied this question.

synapsesocial.com/papers/68ebc91af2c3e4d8d926e3d7https://doi.org/10.3390/su17208992
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