The Control of Civil Engineering Projects Based on Deep Learning and Building Information Modeling

The Control of Civil Engineering Projects Based on Deep Learning and Building Information Modeling

Fang Wang, Liangqiong Chen
Copyright: © 2023 |Pages: 14
DOI: 10.4018/IRMJ.329250
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Abstract

The aim of this study is to enhance the quality of civil engineering project management and optimize project control in order to ensure adequate construction resources and facilitate seamless project progression. By integrating building information modeling (BIM) technology with deep learning techniques, optimal control was examined at various stages of civil engineering project management. A simulation test was performed on a selected gymnasium engineering project, focusing on cost and resource control aspects. The findings revealed that, as the project advanced, the planned cost exceeded the actual cost by nearly 100,000 yuan in the final stage. The combination of BIM technology and deep learning model prediction substantially reduced the cost and material budgets of the engineering project. Data analysis showed that the average positioning error of the convolutional neural network algorithm for the project model was below 2%.
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Literature Review

Tsai et al. (2014) investigated a new methodology for critical success factors (CSFs) that can be used to further develop research for more effective evaluation of buildings. Jung et al. constructed a BIM application framework for evaluating the value of BIM applications, assessed the level of practical application of BIM technology in three levels and six dimensions, and illustrated the driving reasons for increasing the value of using BIM technology.

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