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Dive into the research topics where Mahmut Firat is active.

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Featured researches published by Mahmut Firat.


Mathematics and Computers in Simulation | 2007

River flow estimation using adaptive neuro fuzzy inference system

Mahmut Firat; Mahmud Güngör

Accurate estimation of River flow changes is a quite important problem for a wise and sustainable use. Such a problem is crucial to the works and decisions related to the water resources and management. In this study, an adaptive network-based fuzzy inference system (ANFIS) approach was used to construct a River flow forecasting system. In particular, the applicability of ANFIS as an estimation model for River flow was investigated. To illustrate the applicability and capability of the ANFIS, the River Great Menderes, located the west of Turkey and the most important water resource of Great Menderes Catchments, was chosen as a case study area. The advantage of this method is that it uses the input-output data sets. Totally 5844 daily data sets collected in 1985-2000 years were used to estimate the River flow. The models having various input structures were constructed and the best structure was investigated. In addition four various training/testing data sets were constructed by cross validation methods and the best data set was investigated. The performance of the ANFIS models in training and testing sets were compared with the observations and also evaluated. The results indicated that the ANFIS can be applied successfully and provide high accuracy and reliability for River flow estimation.


Advances in Engineering Software | 2009

Generalized Regression Neural Networks and Feed Forward Neural Networks for prediction of scour depth around bridge piers

Mahmut Firat; Mahmud Güngör

In this study, Generalized Regression Neural Networks (GRNN) and Feed Forward Neural Networks (FFNN) approaches are used to predict the scour depth around circular bridge piers. Hundred and sixty five data collected from various experimental studies, are used to predict equilibrium scour depth. The model consisting of the combination of dimensional data involving the input variables is constructed. The performance of the models in training and testing sets are compared with observations. Then, the model is also tested by Multiple Linear Regression (MLR) and empirical formula. The results of all approaches are compared in order to get more reliable comparison. The results indicated that GRNN can be applied successfully for prediction of scour depth around circular bridge piers.


Journal of Statistical Computation and Simulation | 2009

Generalized regression neural networks for municipal water consumption prediction

Mehmet Ali Yurdusev; Mahmut Firat; Mustafa Erkan Turan

This statement of retraction refers to the iFirst version of the paper that has since been removed from this site. A PDF version of the retracted article can be viewed in the Supplementary Content section of this article


Hydrological Processes | 2008

Hydrological time-series modelling using an adaptive neuro-fuzzy inference system

Mahmut Firat; Mahmud Güngör


Stochastic Environmental Research and Risk Assessment | 2009

Adaptive Neuro-Fuzzy Inference System for drought forecasting

Ülker Güner Bacanlı; Mahmut Firat; Fatih Dikbas


Water Resources Management | 2009

Evaluation of Artificial Neural Network Techniques for Municipal Water Consumption Modeling

Mahmut Firat; Mehmet Ali Yurdusev; Mustafa Erkan Turan


Journal of Hydrology | 2009

Comparative analysis of fuzzy inference systems for water consumption time series prediction.

Mahmut Firat; Mustafa Erkan Turan; Mehmet Ali Yurdusev


Journal of Hydrology | 2009

Adaptive neuro fuzzy inference system approach for municipal water consumption modeling: An application to Izmir, Turkey

Mehmet Ali Yurdusev; Mahmut Firat


Stochastic Environmental Research and Risk Assessment | 2010

Monthly total sediment forecasting using adaptive neuro fuzzy inference system

Mahmut Firat; Mahmud Güngör


Water and Environment Journal | 2009

Monthly river flow forecasting by an adaptive neuro‐fuzzy inference system

Mahmut Firat; M. Erkan Turan

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