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首页> 外文期刊>Journal of Construction Engineering and Management >Conceptual Cost-Prediction Model for Public Road Planning via Rough Set Theory and Case-Based Reasoning
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Conceptual Cost-Prediction Model for Public Road Planning via Rough Set Theory and Case-Based Reasoning

机译:基于粗糙集理论和案例推理的公共道路规划概念成本预测模型

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摘要

Long-term transportation policies require government officials to predict the cost of public road construction during the conceptual planning phase. However, early cost prediction is often inaccurate because public officials are not familiar with cost engineering practices, and moreover, have limited time and insufficient information for estimating the possible range of the cost distribution. This study develops a conceptual cost prediction model by combining rough set theory, case-based reasoning, and genetic algorithms to better predict costs in the conceptual planning phase. Rough set theory and qualitative in-depth interviews are integrated to select the proper input attributes for the cost prediction model. Case-based reasoning is then applied to predict road construction costs by considering users' difficulties in the conceptual policy planning phase. A genetic algorithm is also used to assist the rough set model and case-based reasoning model to obtain optimal solutions. The result of the analysis shows that the proposed conceptual cost prediction model is reliable and robust compared to the existing cost prediction model.
机译:长期运输政策要求政府官员在概念规划阶段预测公共道路建设的成本。但是,早期的成本预测通常是不准确的,因为公职人员不熟悉成本工程实践,而且时间有限且信息不足,无法估计成本分布的可能范围。这项研究通过结合粗糙集理论,基于案例的推理和遗传算法来开发概念成本预测模型,以在概念规划阶段更好地预测成本。粗糙集理论和定性深入访谈相结合,为成本预测模型选择适当的输入属性。然后,基于案例的推理可通过在概念性政策计划阶段考虑用户的困难来预测道路建设成本。遗传算法还用于辅助粗糙集模型和基于案例的推理模型以获得最佳解决方案。分析结果表明,与现有的成本预测模型相比,本文提出的概念成本预测模型可靠,健壮。

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