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Title: The Impact of Learning rate on Backpropagation Algorithm in Matlab
Authors: Abdul Ghafoor Shaikh, Wajid Ali Shaikh
Journal: Pakistan Journal of Engineering, Technology, and Sciences (PJETS)
Publisher: Institute of Business Management, Karachi
Country: Pakistan
Year: 2023
Volume: 11
Issue: 2
Language: en
DOI: 10.22555/pjets.v11i2.1014
Keywords: Artificial Neural NetworkSigmoidBackpropagation AlgorithmHidden Layer
Artificial Neural Networks (ANNs) are highly interconnected. Backpropagation is a common method for training artificial neural networks to minimize the objective function. This study describes the implementation of the backpropagation algorithm. The different errors generated at the output are fed back to the input, and the weights of the neurons are updated by different supervised learning rates, which is a generalization of the delta rule. A sigmoid function was used as the activation function. The design was simulated using MATLAB R2018a. The maximum accuracy was achieved 0.9988 with four hidden layers
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