A Hybrid TOPSIS-Structure Entropy Weight Group Subcontractor Selection Model for Large Construction Companies

Author:

Gao Ce12,Elzarka Hazem3,Yan Hongyan4,Chakraborty Debaditya5,Zhou Chunmei4

Affiliation:

1. School of Civil Engineering, Guangzhou University, Guangzhou 510000, China

2. School of Civil Engineering and Architecture, Guangzhou City Construction College, Guangzhou 510000, China

3. College of Engineering and Applied Science, University of Cincinnati, Cincinnati, OH 45221, USA

4. School of Construction Management, Hunan University of Finance and Economics, Changsha 410205, China

5. Department of Construction Science, College of Architecture, University of Texas at San Antonio, San Antonio, TX 78249, USA

Abstract

The selection of suitable subcontractors for large construction companies is crucially important for the overall success of their projects. As the construction industry advances, a growing number of criteria need to be considered in the subcontractor selection process than simply considering the biding prices. This paper proposed a hybrid multi-criteria structure entropy weight (SEW)—TOPSIS group decision-making model that considers 10 criteria. The proposed model was able to handle large amount of subcontractors’ performance data that were collected in different types. Additionally, the model can integrate experts’ judgments while accounting for their varying level of expertise and correcting for their biases. This paper also provided a case study to demonstrate the proposed model’s effectiveness and efficiency, as well as its applicability of large construction companies. While this study was applied to construction subcontractors’ selection, the proposed methodology can also be easily extended to various decision-making scenarios with similar requirements.

Funder

Social Sciences Fund of Hunan Province

Publisher

MDPI AG

Subject

Building and Construction,Civil and Structural Engineering,Architecture

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