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Article

Triple-Layer Genetic Algorithm (3LGA) for Project Scheduling and Material Ordering Problem with Limited Storage Space

by
Suphawut Malaikrisanachalee
1,
Narongrit Wongwai
2,* and
Pongpan Promchun
3
1
Department of Civil Engineering, Faculty of Engineering, Kasetsart University, Lat Yao, Chatuchak, Bangkok 10900, Thailand
2
Department of Civil Engineering, Faculty of Engineering at Sriracha, Kasetsart University Sriracha Campus, Thung Sukhla, Sriracha, Bangkok 20230, Thailand
3
Infrastructure Engineering and Management, Department of Civil Engineering, Faculty of Engineering, Kasetsart University, Bangkok 10900, Thailand
*
Author to whom correspondence should be addressed.
Buildings 2025, 15(7), 1040; https://doi.org/10.3390/buildings15071040
Submission received: 26 January 2025 / Revised: 14 March 2025 / Accepted: 21 March 2025 / Published: 24 March 2025
(This article belongs to the Section Construction Management, and Computers & Digitization)

Abstract

Efficient project management in the construction industry depends on optimizing project scheduling and material ordering, two interdependent processes that significantly impact both costs and durations. Traditional approaches often address these processes separately, neglecting the trade-offs between scheduling costs and material procurement costs. Furthermore, existing studies frequently overlook real-world constraints, such as limited storage space at construction sites. To bridge these gaps, this paper investigates the project scheduling and material ordering problem with limited storage space (PSMOP-LSS) and introduces an integrated model that simultaneously optimizes storage space allocation, activity scheduling, and material ordering. A novel ordering strategy with time period (OSTP) is employed to enhance material procurement under storage constraints. To solve this NP-hard problem, a triple-layer genetic algorithm (3LGA) is proposed, comprising three layers: space allocation, project scheduling, and material ordering. Computational experiments conducted on a case study demonstrate the effectiveness of the 3LGA, achieving significant reductions in project costs and durations compared to conventional ordering strategies. The results highlight trade-offs between cost and duration, offering actionable insights for project managers. This research provides a robust decision-making framework for balancing inventory costs, ordering costs, and project durations in space-constrained environments. Managerial implications include optimizing ordering strategies based on storage capacity and cost parameters.
Keywords: space allocation; project scheduling; material ordering; storage space; genetic algorithm space allocation; project scheduling; material ordering; storage space; genetic algorithm

Share and Cite

MDPI and ACS Style

Malaikrisanachalee, S.; Wongwai, N.; Promchun, P. Triple-Layer Genetic Algorithm (3LGA) for Project Scheduling and Material Ordering Problem with Limited Storage Space. Buildings 2025, 15, 1040. https://doi.org/10.3390/buildings15071040

AMA Style

Malaikrisanachalee S, Wongwai N, Promchun P. Triple-Layer Genetic Algorithm (3LGA) for Project Scheduling and Material Ordering Problem with Limited Storage Space. Buildings. 2025; 15(7):1040. https://doi.org/10.3390/buildings15071040

Chicago/Turabian Style

Malaikrisanachalee, Suphawut, Narongrit Wongwai, and Pongpan Promchun. 2025. "Triple-Layer Genetic Algorithm (3LGA) for Project Scheduling and Material Ordering Problem with Limited Storage Space" Buildings 15, no. 7: 1040. https://doi.org/10.3390/buildings15071040

APA Style

Malaikrisanachalee, S., Wongwai, N., & Promchun, P. (2025). Triple-Layer Genetic Algorithm (3LGA) for Project Scheduling and Material Ordering Problem with Limited Storage Space. Buildings, 15(7), 1040. https://doi.org/10.3390/buildings15071040

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