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Construction Cost Estimation Using a Case-Based Reasoning Hybrid Genetic Algorithm Based on Local Search Method

机译:基于本地搜索方法的基于案例推理混合遗传算法的施工成本估算

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摘要

Estimates of project costs in the early stages of a construction project have a significant impact on the operator’s decision-making in essential matters, such as the site’s decision or the construction period. However, it is not easy to carry out the initial stage with confidence, because information such as design books and specifications is not available. In previous studies, case-based reasoning (CBR) is used to estimate initial construction costs, and genetic algorithms are used to calculate the weight of the retrieve phase in CBR’s process. However, it is difficult to draw a better solution than the current one, because existing genetic algorithms use random numbers. To overcome these limitations, we reflect correlation numbers in the genetic algorithms by using the method of local search. Then, we determine the weights using a hybrid genetic algorithm that combines local search and genetic algorithms. A case-based reasoning model was developed using a hybrid genetic algorithm. Then, the model was verified with construction cost data that were not used for the development of the model. As a result, it was found that the hybrid genetic algorithm and case-based reasoning applied with the local search performed better than the existing solution. The detail mean error value was found to be 3.52%, 6.15%, and 0.33% higher for each case than the previous one.
机译:建设项目早期阶段的项目成本估计对运营商在必要事项的决策中产生了重大影响,例如该网站的决定或施工期。但是,不易充满信心地执行初始阶段,因为设计书籍和规格等信息不可用。在先前的研究中,基于案例的推理(CBR)用于估计初始施工成本,并且使用遗传算法来计算CBR过程中检索相位的重量。但是,由于现有的遗传算法使用随机数,因此难以绘制更好的解决方案。为了克服这些限制,我们使用本地搜索方法反映遗传算法中的相关数。然后,我们使用结合本地搜索和遗传算法的混合遗传算法来确定权重。使用混合遗传算法开发了基于案例的推理模型。然后,使用不用于模型的开发的施工成本数据来验证该模型。结果,发现利用本地搜索的混合遗传算法和基于案例的推理优于现有解决方案。每个案例的发现细节意味着误差值为3.52%,6.15%,比前一个比例更高为0.33%。

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