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Research Journal of Applied Sciences

ISSN: Online 1993-6079
ISSN: Print 1815-932x
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Prey-Predator Algorithm as a New Optimization Technique Using in Radial Basis Function Neural Networks

Nawaf Hamadneh Surafel Luleseged Tilahun, Saratha Sathasivam and Ong Hong Choon
Page: 383-387 | Received 21 Sep 2022, Published online: 21 Sep 2022

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Abstract

Prey-Predator algorithm is a new metaheuristic algorithm developed for optimization problems. It is inspired by the interaction between a predator and preys of animals in the ecosystem. In this study, researchers have used the Prey-Predator algorithm to train the radial basis function neural networks. The most important in the training is finding the parameters including the centers, the widths and the output weights. Researchers have compared the performance of the new algorithm with the genetic algorithm on a logic programming data, iris flowers data set and new thyroid data set. The sum square error function was used to evaluate the performance of the algorithms. From the computational results, researchers found that Prey-Predator algorithm is better in improving the performance of radial basis function neural.


How to cite this article:

Nawaf Hamadneh Surafel Luleseged Tilahun, Saratha Sathasivam and Ong Hong Choon . Prey-Predator Algorithm as a New Optimization Technique Using in Radial Basis Function Neural Networks.
DOI: https://doi.org/10.36478/rjasci.2013.383.387
URL: https://www.makhillpublications.co/view-article/1815-932x/rjasci.2013.383.387