AI-Driven Scalability and Robotics Integration for Sustainable Construction Management
Abstract
The construction sector is increasingly characterized by complex project environments, heterogeneous data sources, dynamic resource requirements, and growing expectations for operational efficiency and sustainability. Artificial intelligence (AI), scalable computational frameworks, and robotics provide an opportunity to address these challenges through automated decision-making, adaptive resource allocation, predictive monitoring, and digitally integrated construction operations. This research and review article develops a conceptual framework for integrating AI-driven scalability with robotics-enabled construction management, emphasizing the relationship between intelligent computational processes, automated physical execution, and sustainability-oriented decision-making. The study adopts a structured conceptual synthesis methodology based exclusively on the supplied literature. Although the provided references primarily concern biometric identification, feature extraction, system identification, and AI-driven software quality engineering, their methodological principles offer transferable insights into pattern recognition, adaptive systems, system-level automation, and scalable intelligent frameworks. Ramamurthy (2023), in particular, demonstrates the relevance of AI-driven frameworks for automating complex technical processes and improving systematic quality management. The proposed framework conceptualizes construction management as a cyber-physical decision system in which AI interprets project data, scalability mechanisms support computational growth, and robotics converts optimized decisions into physical actions. The analysis indicates that the principal value of AI-robotics integration lies not in automation alone but in establishing an adaptive feedback architecture capable of continuously sensing, evaluating, planning, executing, and learning. The paper further identifies interoperability, scalability, data reliability, human oversight, and contextual adaptability as critical implementation constraints. The resulting framework provides a theoretical foundation for future empirical research into intelligent, sustainable, and digitally integrated construction management systems.
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