Rainfall Runoff Modelling Using Generalized Neural Network and Radial Basis Network

Cilt: 2 Sayı: 4 24 Aralık 2014
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Rainfall Runoff Modelling Using Generalized Neural Network and Radial Basis Network

Abstract

Rainfall runoff study has a wide scope in water resource management. To provide a reliable prediction model is of paramount importance. Runoff prediction is carried out using generalized regression neural network and radial basis neural network. Daily Rainfall runoff model was developed for Nethravathi river basin located at the west coast of Karnataka, India. The comparative study showed Radial basis neural network performed better than generalized neural network during its evaluation by performance indicators

Keywords

Kaynakça

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  3. L. E. Besaw, D. M. Rizzo, P. R. Bierman, and W. R. Hackett, “Advances in ungauged streamflow prediction using artificial neural networks,” Journal of Hydrology, vol.386, pp.27–37, February 2010.
  4. C. Dawson, and R. Wilby, “An Artificial Neural Network Approach to Rainfall – Runoff Modelling,” Hydrological Sciences Journal, vol. 43, pp.47-66, Febraury1998.
  5. Hikmet karem cigizoglu, “Application of Generalized Regression Neural Networks to Intermittent Flow Forecasting and Estimation,” Journal of hydrologic engineering, vol.10, pp.336-341, August 2005.
  6. Hilmi Kerem Cigizoglu, and Murat Alp, “Rainfall-Runoff Modelling Using Three Neural Network Methods,” International Conference on Artificial Intelligence and Soft Computing, 3070, pp166-171. 2004
  7. A. W. Minns, and M.J. Hall, “Artificial neural networks as rainfall runoff models,” Hydrological Sciences Journal, vol.41, pp.399-417, June 1996.
  8. D. K. Pratihar, Soft Computing, 2nd Ed., New Delhi: Narosa Publishing House Pvt. Ltd. 2008.

Ayrıntılar

Birincil Dil

İngilizce

Konular

-

Bölüm

-

Yayımlanma Tarihi

24 Aralık 2014

Gönderilme Tarihi

19 Temmuz 2014

Kabul Tarihi

-

Yayımlandığı Sayı

Yıl 2014 Cilt: 2 Sayı: 4

Kaynak Göster

APA
Gowda, C. C., & S. G., M. (2014). Rainfall Runoff Modelling Using Generalized Neural Network and Radial Basis Network. International Journal of Intelligent Systems and Applications in Engineering, 2(4), 76-79. https://doi.org/10.18201/ijisae.82758
AMA
1.Gowda CC, S. G. M. Rainfall Runoff Modelling Using Generalized Neural Network and Radial Basis Network. International Journal of Intelligent Systems and Applications in Engineering. 2014;2(4):76-79. doi:10.18201/ijisae.82758
Chicago
Gowda, C Chandre, ve Mayya S. G. 2014. “Rainfall Runoff Modelling Using Generalized Neural Network and Radial Basis Network”. International Journal of Intelligent Systems and Applications in Engineering 2 (4): 76-79. https://doi.org/10.18201/ijisae.82758.
EndNote
Gowda CC, S. G. M (01 Aralık 2014) Rainfall Runoff Modelling Using Generalized Neural Network and Radial Basis Network. International Journal of Intelligent Systems and Applications in Engineering 2 4 76–79.
IEEE
[1]C. C. Gowda ve M. S. G., “Rainfall Runoff Modelling Using Generalized Neural Network and Radial Basis Network”, International Journal of Intelligent Systems and Applications in Engineering, c. 2, sy 4, ss. 76–79, Ara. 2014, doi: 10.18201/ijisae.82758.
ISNAD
Gowda, C Chandre - S. G., Mayya. “Rainfall Runoff Modelling Using Generalized Neural Network and Radial Basis Network”. International Journal of Intelligent Systems and Applications in Engineering 2/4 (01 Aralık 2014): 76-79. https://doi.org/10.18201/ijisae.82758.
JAMA
1.Gowda CC, S. G. M. Rainfall Runoff Modelling Using Generalized Neural Network and Radial Basis Network. International Journal of Intelligent Systems and Applications in Engineering. 2014;2:76–79.
MLA
Gowda, C Chandre, ve Mayya S. G. “Rainfall Runoff Modelling Using Generalized Neural Network and Radial Basis Network”. International Journal of Intelligent Systems and Applications in Engineering, c. 2, sy 4, Aralık 2014, ss. 76-79, doi:10.18201/ijisae.82758.
Vancouver
1.C Chandre Gowda, Mayya S. G. Rainfall Runoff Modelling Using Generalized Neural Network and Radial Basis Network. International Journal of Intelligent Systems and Applications in Engineering. 01 Aralık 2014;2(4):76-9. doi:10.18201/ijisae.82758

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