2021
DOI: 10.1109/access.2021.3049223
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Interpolation Accuracy of Hybrid Soft Computing Techniques in Estimating Discharge Capacity of Triangular Labyrinth Weir

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Cited by 17 publications
(2 citation statements)
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References 33 publications
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“…The results show the accuracy of the presented LXGB approach in estimating the C d of PCLW1 and PCLW2 models of PCLW. Mahmoud et al 37 concluded that the ANFIS-PSO and MLP-FA (multi-layer perceptron and firefly optimization algorithm) methods are the most accurate in estimating the C d of triangular labyrinth weirs, respectively. In a similar study, Majediasl and Fuladipanah 38 concluded that the SVM model produces the most exact results in predicting the C d of labyrinth weir with RMSE = 0.0118.…”
Section: Resultsmentioning
confidence: 99%
“…The results show the accuracy of the presented LXGB approach in estimating the C d of PCLW1 and PCLW2 models of PCLW. Mahmoud et al 37 concluded that the ANFIS-PSO and MLP-FA (multi-layer perceptron and firefly optimization algorithm) methods are the most accurate in estimating the C d of triangular labyrinth weirs, respectively. In a similar study, Majediasl and Fuladipanah 38 concluded that the SVM model produces the most exact results in predicting the C d of labyrinth weir with RMSE = 0.0118.…”
Section: Resultsmentioning
confidence: 99%
“…The outcomes indicated that the proposed methods demonstrated higher performance in the training and testing stages. In another work, Mahmoud et al (2021b) estimated the flowrate of a sharp-crest triangular labyrinth weir as a function of its side leg angle α and total head ratio (H/P) through several soft computing techniques. They concluded that the competence of soft computing techniques in the testing stage cannot guarantee their accuracy in the interpolation task.…”
Section: Introductionmentioning
confidence: 99%