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    •   صفحهٔ اصلی
    • نشریات انگلیسی
    • International Journal of Engineering
    • Volume 29, Issue 11
    • مشاهده مورد
    •   صفحهٔ اصلی
    • نشریات انگلیسی
    • International Journal of Engineering
    • Volume 29, Issue 11
    • مشاهده مورد
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    Traffic Signal Prediction Using Elman Neural Network and Particle Swarm Optimization

    (ندگان)پدیدآور
    Ghasemi, JamalRasekhi, Jalil
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    نوع مدرک
    Text
    زبان مدرک
    English
    نمایش کامل رکورد
    چکیده
    Prediction of traffic is very crucial for its management. Because of human involvement in the generation of this phenomenon, traffic signal is normally accompanied by noise and high levels of non-stationarity. Therefore, traffic signal prediction as one of the important subjects of study has attracted researchers’ interests. In this study, a combinatorial approach is proposed for traffic signal prediction, based on Neural Networks and Particle Swarm Optimization algorithm. Elman Neural Network is chosen from amongst many types of Neural Networks due to its feedbacked structure. To this purpose, Particle Swarm optimization algorithm is utilized for adequate training of the Neural Network, instead of common gradient descent based methods. In this work, wavelet transform is employed as a part of the preprocessing stage, for the elimination of transient phenomena as well as for more efficient training of the Neural Network. Simulations are carried out to verify performance of the proposed method, and the results demonstrate good performance in comparison to other methods.
    کلید واژگان
    Traffic Signal
    Neural Networks
    Particle Swarm Algorithm
    wavelet transform

    شماره نشریه
    11
    تاریخ نشر
    2016-11-01
    1395-08-11
    ناشر
    Materials and Energy Research Center
    سازمان پدید آورنده
    Engineering and Technology, University of Mazandaran
    Faculty of Electrical and Computer Engineering, Babol University of Technology

    شاپا
    1025-2495
    1735-9244
    URI
    http://www.ije.ir/article_72826.html
    https://iranjournals.nlai.ir/handle/123456789/337674

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