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A comparative assessment of bagging ensemble models for modeling concrete slump flow

机译:套袋集成模型对混凝土坍落流建模的比较评估

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摘要

In the last decade, several modeling approaches have been proposed and applied to estimate the high-performance concrete (HPC) slump flow. While HPC is a highly complex material, modeling its behavior is a very difficult issue. Thus, the selection and application of proper modeling methods remain therefore a crucial task. Like many other applications, HPC slump flow prediction suffers from noise which negatively affects the prediction accuracy and increases the variance. In the recent years, ensemble learning methods have introduced to optimize the prediction accuracy and reduce the prediction error. This study investigates the potential usage of bagging (Bag), which is among the most popular ensemble learning methods, in building ensemble models. Four well-known artificial intelligence models (i.e., classification and regression trees CART, support vector machines SVM, multilayer perceptron MLP and radial basis function neural networks RBF) are deployed as base learner. As a result of this study, bagging ensemble models (i.e., Bag-SVM, Bag-RT, Bag-MLP and Bag-RBF) are found superior to their base learners (i.e., SVM, CART, MLP and RBF) and bagging could noticeable optimize prediction accuracy and reduce the prediction error of proposed predictive models.
机译:在过去的十年中,已经提出了几种建模方法并将其应用于估算高性能混凝土(HPC)坍落度。尽管HPC是非常复杂的材料,但是对其行为进行建模是一个非常困难的问题。因此,正确建模方法的选择和应用仍然是至关重要的任务。与许多其他应用程序一样,HPC坍落度流量预测会遭受噪声的影响,这会对预测精度产生负面影响,并增加方差。近年来,集成学习方法已被引入以优化预测精度并减少预测误差。这项研究调查了在构建集成模型中最流行的集成学习方法之一的装袋(Bag)的潜在用途。四个著名的人工智能模型(即分类和回归树CART,支持向量机SVM,多层感知器MLP和径向基函数神经网络RBF)被部署为基础学习器。这项研究的结果是,发现装袋集成模型(即Bag-SVM,Bag-RT,Bag-MLP和Bag-RBF)优于其基础学习者(即SVM,CART,MLP和RBF),并且装袋可以显着地优化了预测准确性,并减少了所提出的预测模型的预测误差。

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