持续性
可持续发展
施工管理
控制(管理)
依赖关系(UML)
工程类
生产力
建筑工程
风险分析(工程)
计算机科学
系统工程
业务
土木工程
人工智能
宏观经济学
法学
经济
政治学
生物
生态学
作者
Mohd. Ahmed,Saeed Alqadhi,Javed Mallick,Nabil Ben Kahla,Hoàng Anh Lê,Chander Kumar Singh,Hoang Thi Hang
出处
期刊:Sustainability
[MDPI AG]
日期:2022-11-09
卷期号:14 (22): 14738-14738
被引量:39
摘要
Artificial Neural Networks (ANNs), the most popular and widely used Artificial Intelligence (AI) technology due to their proven accuracy and efficiency in control, estimation, optimization, decision making, forecasting, and many other applications, can be employed to achieve faster sustainable development of construction industry. The study presents state-of-the-art applications of ANNs to promote sustainability in the construction industry under three aspects of sustainable development, namely, environmental, economic, and social. The environmental aspect surveys ANNs’ applications in sustainable construction materials, energy management, material testing and control, infrastructure analysis and design, sustainable construction management, infrastructure functional performance, and sustainable maintenance management. The economic aspect covers financial management and construction productivity through ANN applications. The social aspect reviews society and human values and health and safety issues in the construction industry. The study demonstrates the wide range of interdisciplinary applications of ANN methods to support the sustainable development of the construction industry. It can be concluded that a holistic research approach with comprehensive input data from various phases of construction and segments of the construction industry is needed for the sustainable development of the construction industry. Further research is certainly needed to reduce the dependency of ANN applications on the input dataset. Research is also needed to apply ANNs in construction management, life cycle assessment of construction projects, and social aspects in relation to sustainability concerns of the construction industry.
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