Python-and-MATLAB-RNN-LSTM-Model-for-Prediction-and-Forecast

RNN and LSTM models are programmed in Python and MATLAB for temperature forecasting. Data preprocessing, model training and evaluation.
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Actualizado 29 jul 2024

Intelligent Control Systems by Asst. Prof. Dr. Claudia F. Yaşar

This repository contains the curriculum materials used for the Intelligent Control Systems course YTU Department of Control and Automation Engineering.

Python-and-MATLAB-RNN-LSTM-Model-for-Prediction-and-Forecasting-Temperature

This work implements RNN and LSTM models using Python and MATLAB for temperature forecasting, covering setup, data preprocessing, model training, and evaluation with metrics like MAE and RMSE. It employs time series analysis and statistical assessment techniques, providing visualizations to demonstrate model accuracy and practical application.

Acknowledgements

I would like to express my gratitude to the students of the Intelligent Control Systems course of the YTÜ Control and Automation Engineering department, Class 2022 and 2023, whose dedication and hard work made this project possible. I am also deeply thankful to our Control Tech LAB team, Doctors Marco Rossi, and Melda Ulusoy for their invaluable contributions.

Citar como

Claudia Fernanda Yasar (2024). Python-and-MATLAB-RNN-LSTM-Model-for-Prediction-and-Forecast (https://github.com/ClaudiaYasar/Python-and-MATLAB-RNN-LSTM-Model-for-Prediction-and-Forecasting-Temperature), GitHub. Recuperado .

Compatibilidad con la versión de MATLAB
Se creó con R2022b
Compatible con cualquier versión
Compatibilidad con las plataformas
Windows macOS Linux

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