2019
DOI: 10.7764/rdlc.18.3.554
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Time-cost optimization model proposal for construction projects with genetic algorithm and fuzzy logic approach

Abstract: Considering the construction industry holds ten percent on average in the gross national product over the world, the importance of efficient use of resources emerges. To alleviate the possibility of the risk factors and various uncertainties' negative impact on the project, the usage of the scheduling tools should be supported for planning as well as risk management. In today's construction perspective, the quality is not a primary objective; construction projects have to be completed within the cost and durat… Show more

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Cited by 9 publications
(8 citation statements)
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“…A model of a compromise between expenses and time by means of a genetic algorithm and the theory of fuzzy sets in the conditions of uncertainty was developed and presented in [11]. Fuzzy sets are used there to model uncertainties, and a genetic algorithm is used to obtain the minimum project cost and duration.…”
Section: Literature Review and Problem Statementmentioning
confidence: 99%
“…A model of a compromise between expenses and time by means of a genetic algorithm and the theory of fuzzy sets in the conditions of uncertainty was developed and presented in [11]. Fuzzy sets are used there to model uncertainties, and a genetic algorithm is used to obtain the minimum project cost and duration.…”
Section: Literature Review and Problem Statementmentioning
confidence: 99%
“…The relations among improved equipment effectiveness (E EI ), number of quantities (N) completed, optimal labour productivity (L P * ), and FD are presented in the following Eqs. ( 5) to (8).…”
Section: Model Formulationmentioning
confidence: 99%
“…The most crucial aspect of the optimization profession is figuring out how to meet deadlines on time and within budget. Numerous approaches are often used to investigate the optimization problem in terms of time and cost, including the fuzzy-based simulation annealing technique [5], critical path method, linear programming [6], non-dominated genetic algorithm [7], fuzzy logic with genetic algorithm [8], and learning curve methods [9]. Likewise, mathematical programming might be the most appropriate option.…”
Section: Introductionmentioning
confidence: 99%
“…Es una desventaja en la medida que no se propongan metodologías alternas de gestión de proyectos que encaminen a mejorar su productividad (Issa, 2013). Por tanto, es preciso: contar con herramientas gerenciales que permitan planear y utilizar los recursos de manera eficiente (Drucker, 1999); desarrollar estrategias para obtener los resultados esperados y aumentar la productividad (Acar y Akcay, 2019).…”
Section: Introductionunclassified