Enhancing Contractor Selection through Fuzzy TOPSIS and Fuzzy SAW Techniques

Author:

Tafazzoli Mohammadsoroush1ORCID,Hazrati Ayoub2,Shrestha Kishor3,Kisi Krishna4

Affiliation:

1. Department of Civil Engineering & Construction, College of Engineering and Computing, Georgia Southern University, Statesboro, GA 30458, USA

2. Durham School of Architectural Engineering & Construction, College of Engineering, University of Nebraska, Lincoln, NE 68588, USA

3. School of Design and Construction, Voiland College of Engineering and Architecture, Washington State University, Pullman, WA 99163, USA

4. Department of Engineering Technology, College of Science & Engineering, Texas State University, San Marcos, TX 78666, USA

Abstract

Contractors play an integral role in construction projects, and their qualifications directly impact various aspects of a project’s success. The unbiased selection of contractors is a challenge in the construction industry worldwide, particularly in public projects where impartiality in the final selection is essential. Numerous factors must be considered when evaluating contractors, making the selection process challenging for the human brain. This paper introduces and compares two methods for assessing contractor prequalification by applying the fuzzy theory. The idea is to facilitate using human judgments in a mathematical system for decision-making with regard to selecting contractors. The method is based on identifying a fuzzy weight for the selection criteria using the Buckley method. Fuzzy TOPSIS and Fuzzy SAW methods are then used for the qualification ranking of the contractors. The proposed models are assessed using a case study. A sensitivity analysis was also conducted to compare the two models. The introduced method is expected to improve the quality of the qualification-based selection of contractors and prevent possible losses from hiring unsuitable contractors.

Publisher

MDPI AG

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