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Article type: Research Article
Authors: ShirMohammadi, Mohammad Mehdia | Esmaeilpour, Mansourb; *
Affiliations: [a] Computer Engineering Department, Arak Branch, Islamic Azad University, Arak, Iran | [b] ComputerEngineering Department, Hamedan Branch, Islamic Azad University, Hamedan, Iran
Correspondence: [*] Corresponding author. Mansour Esmaeilpour, Computer Engineering Department, Hamedan Branch, Islamic Azad University, Hamedan, Iran. E-mail: esmaeilpour@iauh.ac.ir.
Abstract: Traffic control prediction is one of the important issues of smart cities in that, by studying traffic parameters, there can be provided more peace and comfort in appropriate traffic routes. Combination of new and different technologies and scientific technical models for this complex prediction has always been paid attention to by researchers. In this paper, by presenting and improving one of the new methods of data collection with traffic congestion index, the appropriate models for predicting traffic control have been compared. Rapid and inexpensive collection of information and, the dynamics and momentary changes of traffic flows showed that the use of wavelet neural network was more accurate than other models of traffic control prediction. The application of combined Wavelet Neural Network with Complete Ensemble Empirical Mode Decompositionin traffic control prediction in this paper as CEEMD & WNN showed that the prediction accuracy increased compared to ARIMA, WNN, HYBRID ARIMA & WNN, TN methods and this new method has reasonable performance against the evaluation criteria to predict traffic control.
Keywords: Wavelet neural network, artificial neural network, prediction, traffic control, complete ensemble empirical mode decomposition
DOI: 10.3233/JIFS-213557
Journal: Journal of Intelligent & Fuzzy Systems, vol. 43, no. 4, pp. 4587-4599, 2022
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