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Development of a data mining-based analysis framework for multi-attribute construction project information

机译:基于数据挖掘的多属性建设项目信息分析框架的开发

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Data mining techniques extract repeated and useful patterns from a large data set that in turn are utilized to predict the outcome of future events. The main purpose of the research presented in this paper is to investigate data mining strategies and develop an efficient framework for multi-attribute project information analysis to predict the performance of construction projects. The research team first reviewed existing data mining algorithms, applied them to systematically analyze a large project data set collected by the survey, and finally proposed a data-mining-based decision support framework for project performance prediction. To evaluate the potential of the framework, a case study was conducted using data collected from 139 capital projects and analyzed the relationship between use of information technology and project cost performance. The study results showed that the proposed framework has potential to promote fast, easy to use, interpretable, and accurate project data analysis.
机译:数据挖掘技术从大型数据集中提取重复且有用的模式,这些模式又被用来预测未来事件的结果。本文提出的研究的主要目的是研究数据挖掘策略,并为多属性项目信息分析开发一个有效的框架,以预测建筑项目的绩效。研究团队首先回顾了现有的数据挖掘算法,然后将其应用到对调查收集的大型项目数据集进行系统分析,最后提出了一个基于数据挖掘的项目绩效预测决策支持框架。为了评估该框架的潜力,使用了从139个基本项目中收​​集的数据进行了案例研究,并分析了信息技术的使用与项目成本绩效之间的关系。研究结果表明,提出的框架具有促进快速,易于使用,可解释且准确的项目数据分析的潜力。

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