Adaptive selection slime mould algorithm in time–cost–quality–environmental impact trade-off optimization

IF 1.1 4区 工程技术 Q3 ENGINEERING, CIVIL Canadian Journal of Civil Engineering Pub Date : 2023-06-14 DOI:10.1139/cjce-2022-0485
Pham Vu Hong Son, Luu Ngoc Quynh Khoi
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Abstract

Artificial intelligence technology is now regarded as one of the most significant innovations, aiding humans in finding solutions to a wide range of problems. Because to inventions with such cutting-edge and exceptional features, this field is receiving a lot of attention from all around the world. In this study, the hybrid model adaptive selection slime mould algorithm (ASSMA) is applied to address the project’s multi-objective time, cost, quality, and environment trade-off problem. ASSMA is contrasted with previous algorithms such as multiple-objective swarm algorithm, the opposition-based multi-objective development algorithm, and the slime mould algorithm to emphasize the outcomes of the proposed model. Using performance parameters that evaluate model quality, it is anticipated that this study will greatly outperform and expand upon previous models.
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时间-成本-质量-环境影响权衡优化中的自适应选择黏菌算法
人工智能技术现在被认为是最重要的创新之一,它帮助人类找到解决各种问题的方法。由于这些具有前沿和独特特征的发明,这一领域受到了全世界的广泛关注。在本研究中,应用混合模型自适应选择黏菌算法(ASSMA)来解决项目的多目标时间、成本、质量和环境权衡问题。通过与多目标群算法、基于对立的多目标开发算法、黏菌算法等算法进行对比,强调了所提模型的结果。使用评估模型质量的性能参数,预计本研究将大大优于和扩展以前的模型。
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来源期刊
Canadian Journal of Civil Engineering
Canadian Journal of Civil Engineering 工程技术-工程:土木
CiteScore
3.00
自引率
7.10%
发文量
105
审稿时长
14 months
期刊介绍: The Canadian Journal of Civil Engineering is the official journal of the Canadian Society for Civil Engineering. It contains articles on environmental engineering, hydrotechnical engineering, structural engineering, construction engineering, engineering mechanics, engineering materials, and history of civil engineering. Contributors include recognized researchers and practitioners in industry, government, and academia. New developments in engineering design and construction are also featured.
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