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Erschienen in: Neural Computing and Applications 3-4/2003

01.12.2003 | Original Article

A neural network-based approach for calculating dissolved oxygen profiles in reservoirs

verfasst von: Selcuk Soyupak, Feza Karaer, Hasan Gürbüz, Ersin Kivrak, Engin Sentürk, Ali Yazici

Erschienen in: Neural Computing and Applications | Ausgabe 3-4/2003

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Abstract

A Neural Network (NN) modelling approach has been shown to be successful in calculating pseudo steady state time and space dependent Dissolved Oxygen (DO) concentrations in three separate reservoirs with different characteristics using limited number of input variables. The Levenberg–Marquardt algorithm was adopted during training. Pre-processing before training and post processing after simulation steps were the treatments applied to raw data and predictions respectively. Generalisation was improved and over-fitting problems were eliminated: Early stopping method was applied for improving generalisation. The correlation coefficients between neural network estimates and field measurements were as high as 0.98 for two of the reservoirs with experiments that involve double layer neural network structure with 30 neurons within each hidden layer. A simple one layer neural network structure with 11 neurons has yielded comparable and satisfactorily high correlation coefficients for complete data set, and training, validation and test sets of the third reservoir.

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Metadaten
Titel
A neural network-based approach for calculating dissolved oxygen profiles in reservoirs
verfasst von
Selcuk Soyupak
Feza Karaer
Hasan Gürbüz
Ersin Kivrak
Engin Sentürk
Ali Yazici
Publikationsdatum
01.12.2003
Verlag
Springer-Verlag
Erschienen in
Neural Computing and Applications / Ausgabe 3-4/2003
Print ISSN: 0941-0643
Elektronische ISSN: 1433-3058
DOI
https://doi.org/10.1007/s00521-003-0378-8

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