Short-term Railway Passenger Demand Forecasting
Tsung-Hsien Tsai
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Short-term Railway Passenger Demand Forecasting

Artificial Neural Networks Approaches

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Forecasting passenger arrival is crucial for daily operations. In revenue management, predicting the number of passengers at departure offers essential information for seat allocation, overbooking, and pricing decisions. In recent years, Artificial Neural Networks have been successfully applied on solving time series forecasting problems. In this study, we show how to design ANN models to predict short-term railway passenger demand by using input information as effective as possible. The concept of divide-and-conquer is utilized in designing new structures in this study; three novel networks t...