Wavelet-Based Denoising for Traffic Volume Time Series Forecasting with Self-Organizing Neural Networks

被引:108
作者
Boto-Giralda, Daniel [1 ]
Diaz-Pernas, Francisco J. [1 ]
Gonzalez-Ortega, David [1 ]
Diez-Higuera, Jose F. [1 ]
Anton-Rodriguez, Miriam [1 ]
Martinez-Zarzuela, Mario [1 ]
Torre-Diez, Isabel [1 ]
机构
[1] Univ Valladolid, Dept Teoria Senal & Comunicac & Ingn Telemat, E-47011 Valladolid, Spain
关键词
INCIDENT-DETECTION; GENETIC ALGORITHM; COST OPTIMIZATION; FLOW PREDICTION; FUZZY ART; MODEL; URBAN; SYSTEM; TRANSFORM; NORMALITY;
D O I
10.1111/j.1467-8667.2010.00668.x
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
In their goal to effectively manage the use of existing infrastructures, intelligent transportation systems require precise forecasting of near-term traffic volumes to feed real-time analytical models and traffic surveillance tools that alert of network links reaching their capacity. This article proposes a new methodological approach for short-term predictions of time series of volume data at isolated cross sections. The originality in the computational modeling stems from the fit of threshold values used in the stationary wavelet-based denoising process applied on the time series, and from the determination of patterns that characterize the evolution of its samples over a fixed prediction horizon. A self-organizing fuzzy neural network is optimized in its configuration parameters for learning and recognition of these patterns. Four real-world data sets from three interstate roads are considered for evaluating the performance of the proposed model. A quantitative comparison made with the results obtained by four other relevant prediction models shows a favorable outcome.
引用
收藏
页码:530 / 545
页数:16
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