Master'sOpen Access

Modelling and forecasting iron ore prices

2024
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Advisor: Prof. Dr. İbrahim Özkan

Abstract (EN)

In this study, the factors affecting iron ore prices are analyzed, and price forecasting models are developed using iron ore as a univariate time series. For forecasting, ETS, ARIMA, XGBoosting, and a hybrid model combining these approaches are utilized. All models are constructed and implemented within the R environment, and their outputs are derived through R. At the end of the study, the models are compared, and their predictive performances are critically evaluated. The XGBoosting model has delivered stronger results compared to the other models. Keywords: Iron ore, Price forecasting, Forecasting models, ETS, ARIMA, XGBoosting

Author

Umutcan Yalçın

How to Cite

Umutcan Yalçın (Master Thesis). Modelling and forecasting iron ore prices, 2024, Çankaya University.

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