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An accurate rainfall forecasting is a challenging problem for agriculture dependent countries like India for analyzing the crop productivity, use of water resources and pre-planning of water resources. This book provides issues involved in prediction of daily, monthly, and yearly rainfall data using neural network. We incorporate various models such as ARIMA, Feed Forward Neural Network (FFNN), Radial Basis Function Neural Network (RBFNN), and Time Delay Neural Network (TDNN) techniques for rainfall prediction. All the models implemented using MATLAB software. The purpose of the book is to…mehr

Produktbeschreibung
An accurate rainfall forecasting is a challenging problem for agriculture dependent countries like India for analyzing the crop productivity, use of water resources and pre-planning of water resources. This book provides issues involved in prediction of daily, monthly, and yearly rainfall data using neural network. We incorporate various models such as ARIMA, Feed Forward Neural Network (FFNN), Radial Basis Function Neural Network (RBFNN), and Time Delay Neural Network (TDNN) techniques for rainfall prediction. All the models implemented using MATLAB software. The purpose of the book is to uses Genetic Algorithm (GA) for optimizing biases and weights of neural network. The results of ARIMA model are compared with the results obtained using three neural network models.
Autorenporträt
A Sra. Mohini Darji recebeu os seus diplomas de B.E. e M.Tech em 2013 e 2015, respetivamente, da Universidade Tecnológica de Gujarat (GTU) e da Universidade Dharmsinh Desai (DDU). Atualmente, trabalha como Professora Assistente no Departamento de Ciência e Engenharia Informática do Instituto Devang Patel de Tecnologia Avançada e Investigação, CHARUSAT, e prossegue o seu doutoramento.