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Genetic Algorithm-Based RBF Neural Network Load Forecasting Model
29
Citations
2
References
2007
Year
Mutation ProbabilityEngineeringData ScienceNeural NetworkEnergy ForecastingComputer EngineeringGenetic AlgorithmSystems EngineeringForecastingRadial Basis FunctionEnergy PredictionIntelligent Forecasting
To overcome the limitation of the traditional load forecasting method, a new load forecasting system basing on radial basis Gaussian kernel function (RBF) neural network is proposed in this paper. Genetic algorithm adopting the real coding, crossover probability and mutation probability was applied to optimize the parameters of the neural network, and a faster convergence rate was reached. Theoretical analysis and simulations prove that this load forecasting model is more practical and has more precision than the traditional one.
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