This paper studies the short-term prediction methods of sectional passenger flow, and selects BP neural network combined with the characteristics of sectional passenger flow itself. With a case study, we design three different schemes. We use Matlab to realize the prediction of the sectional passenger flow of the Beijing subway Line 2 and make comparative analysis. The empirical research shows that combining data characteristics of sectional passenger flow with the BP neural network have good prediction accuracy.
CITATION STYLE
Li, Q., Qin, Y., Wang, Z., Zhao, Z., Zhan, M., Liu, Y., & Li, Z. (2013). The Research of Urban Rail Transit Sectional Passenger Flow Prediction Method. Journal of Intelligent Learning Systems and Applications, 05(04), 227–231. https://doi.org/10.4236/jilsa.2013.54026
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