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Sediment transport modeling in non-deposition with clean bed condition

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dc.contributor.author Gul, E
dc.contributor.author Safari, MJS
dc.contributor.author Haghighi, AT
dc.contributor.author Mehr, AD
dc.date.accessioned 2022-10-05T13:14:32Z
dc.date.available 2022-10-05T13:14:32Z
dc.date.issued 2021
dc.identifier.uri http://hdl.handle.net/11616/62468
dc.description.abstract To reduce the problem of sedimentation in open channels, calculating flow velocity is critical. Undesirable operating costs arise due to sedimentation problems. To overcome these problems, the development of machine learning based models may provide reliable results. Recently, numerous studies have been conducted to model sediment transport in non-deposition condition however, the main deficiency of the existing studies is utilization of a limited range of data in model development. To tackle this drawback, six data sets with wide ranges of pipe size, volumetric sediment concentration, channel bed slope, sediment size and flow depth are used for the model development in this study. Moreover, two tree-based algorithms, namely M5 rule tree (M5RT) and M5 regression tree (M5RGT) are implemented, and results are compared to the traditional regression equations available in the literature. The results show that machine learning approaches outperform traditional regression models. The tree-based algorithms, M5RT and M5RGT, provided satisfactory results in contrast to their regression-based alternatives with RMSE = 1.1 84 and RMSE = 1.071, respectively. In order to recommend a practical solution, the tree structure algorithms are supplied to compute sediment transport in an open channel flow.
dc.description.abstract C1 [Gul, Enes] Inonu Univ, Dept Civil Engn, Malatya, Turkey.
dc.description.abstract [Safari, Mir Jafar Sadegh] Yasar Univ, Dept Civil Engn, Izmir, Turkey.
dc.description.abstract [Haghighi, Ali Torabi; Mehr, Ali Danandeh] Univ Oulu, Water Energy & Environm Engn Res Unit, Oulu, Finland.
dc.description.abstract [Mehr, Ali Danandeh] Antalya Bilim Univ, Dept Civil Engn, Antalya, Turkey.
dc.source PLOS ONE
dc.title Sediment transport modeling in non-deposition with clean bed condition
dc.title using different tree-based algorithms


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