Title of article :
A Novel Scheme for Spectrum Prediction in Cognitive Radio Networks
Author/Authors :
askari, mehdi behbahan khatam al anbia university of technology - electrical engineering department, Behbahan, Iran , dastanian, rezvan behbahan khatam al anbia university of technology - electrical engineering department, Behbahan, Iran
From page :
17
To page :
24
Abstract :
An efficient spectrum prediction model is presented to improve the spectrum utilization in cognitive radio network. In this model, a novel improved version of Teaching-Learning-Based-Optimization algorithm, also referred to iTLBO algorithm, is proposed to train a feedforward artificial neural network (ANN). The performance of the proposed iTLBO-ANN model is compared with some hybrid prediction models, including the genetic algorithm with ANN (GA-ANN), the firefly algorithm with ANN (FF-ANN), and the conventional TLBO algorithm with ANN (TLBO- ANN). Performance evaluation via a real-word spectrum dataset (GSM-900) confirms that iTLBO-ANN outperforms other spectrum prediction schemes in terms of prediction error and prediction efficiency.
Keywords :
Cognitive radio , Spectrum prediction , Artificial neural network , TLBO , Evolutionary algorithms
Journal title :
journal of electrical and electronic systems research
Journal title :
journal of electrical and electronic systems research
Record number :
2705101
Link To Document :
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