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M. Khan

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Open access Aug 2026

Computer Aided Cognitive BIM Framework for Intelligent Decision Support in Civil Engineering Infrastructure Using Hybrid Artificial Intelligence

The integration of Building Information Modelling (BIM) with artificial intelligence (AI) represents a transformative paradigm in civil engineering infrastructure management. This paper proposes a novel Computer Aided Cognitive BIM (CAC-BIM) framework that leverages hybrid artificial intelligence techniques to provide intelligent decision support for civil engineering infrastructure projects. The framework integrates deep learning, fuzzy logic, knowledge-based systems, and multi-agent architectures within a cognitive computing environment to enhance decision-making processes across the infrastructure lifecycle. The proposed methodology employs a mixed-methods research design combining computational modelling, case study validation, and expert evaluation. Results demonstrate that the CAC-BIM framework achieves a 34.7% improvement in decision accuracy, 28.3% reduction in project delays, and 22.1% cost optimization compared to conventional BIM-assisted approaches. The framework's hybrid AI architecture demonstrates superior performance in handling uncertainty, multi-criteria optimization, and real-time adaptive reasoning in complex infrastructure scenarios. This research contributes to the advancement of intelligent construction management and provides a scalable computational framework for next-generation civil engineering decision support systems.

Waleed Arshad, Hafiza Sarah Iqbal, M. Khan et al. · 0 citations
Review Open access Aug 2026

A SYSTEMATIC REVIEW OF ARTIFICIAL INTELLIGENCE APPLICATIONS IN STRUCTURAL HEALTH MONITORING OF CIVIL INFRASTRUCTURE

This systematic review synthesizes recent advances in AI applications for SHM across civil infrastructure including bridges, buildings, tunnels, and dams and identifies interdisciplinary opportunities including federated learning for decentralized monitoring, explainable AI for stakeholder trust, and autonomous inspection systems.

M. Khan, Muhammad Shoaib Ashraf, Muhammad Jahanzeb et al. · 0 citations

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