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Supervised Weighting-Online Learning Algorithm for Short-Term Traffic Flow Prediction

Published: 01 December 2013 Publication History
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  • Abstract

    Prediction of short-term traffic flow has become one of the major research fields in intelligent transportation systems. Accurately estimated traffic flow forecasts are important for operating effective and proactive traffic management systems in the context of dynamic traffic assignment. For predicting short-term traffic flows, recent traffic information is clearly a more significant indicator of the near-future traffic flow. In other words, the relative significance depending on the time difference between traffic flow data should be considered. Although there have been several research works for short-term traffic flow predictions, they are offline methods. This paper presents a novel prediction model, called online learning weighted support-vector regression (OLWSVR), for short-term traffic flow predictions. The OLWSVR model is compared with several well-known prediction models, including artificial neural network models, locally weighted regression, conventional support-vector regression, and online learning support-vector regression. The results show that the performance of the proposed model is superior to that of existing models.

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    • (2024)Messages are Never Propagated Alone: Collaborative Hypergraph Neural Network for Time-Series ForecastingIEEE Transactions on Pattern Analysis and Machine Intelligence10.1109/TPAMI.2023.333138946:4(2333-2347)Online publication date: 1-Apr-2024
    • (2024)Multistep traffic speed prediction from multiple time-scale spatiotemporal features using graph attention networkApplied Intelligence10.1007/s10489-024-05503-054:15-16(7479-7492)Online publication date: 1-Aug-2024
    • (2023)ST-CopulaGNN : A Multi-View Spatio-Temporal Graph Neural Network for Traffic ForecastingProceedings of the 35th International Conference on Scientific and Statistical Database Management10.1145/3603719.3603740(1-12)Online publication date: 10-Jul-2023
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    cover image IEEE Transactions on Intelligent Transportation Systems
    IEEE Transactions on Intelligent Transportation Systems  Volume 14, Issue 4
    December 2013
    452 pages

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    IEEE Press

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    Published: 01 December 2013

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    • (2024)Messages are Never Propagated Alone: Collaborative Hypergraph Neural Network for Time-Series ForecastingIEEE Transactions on Pattern Analysis and Machine Intelligence10.1109/TPAMI.2023.333138946:4(2333-2347)Online publication date: 1-Apr-2024
    • (2024)Multistep traffic speed prediction from multiple time-scale spatiotemporal features using graph attention networkApplied Intelligence10.1007/s10489-024-05503-054:15-16(7479-7492)Online publication date: 1-Aug-2024
    • (2023)ST-CopulaGNN : A Multi-View Spatio-Temporal Graph Neural Network for Traffic ForecastingProceedings of the 35th International Conference on Scientific and Statistical Database Management10.1145/3603719.3603740(1-12)Online publication date: 10-Jul-2023
    • (2023)Because Every Sensor Is Unique, so Is Every Pair: Handling Dynamicity in Traffic ForecastingProceedings of the 8th ACM/IEEE Conference on Internet of Things Design and Implementation10.1145/3576842.3582362(93-104)Online publication date: 9-May-2023
    • (2023)Pishgu: Universal Path Prediction Network Architecture for Real-time Cyber-physical Edge SystemsProceedings of the ACM/IEEE 14th International Conference on Cyber-Physical Systems (with CPS-IoT Week 2023)10.1145/3576841.3585933(88-97)Online publication date: 9-May-2023
    • (2023)Spatiotemporal Urban Inference and Prediction in Sparse Mobile CrowdSensing: A Graph Neural Network ApproachIEEE Transactions on Mobile Computing10.1109/TMC.2022.319570622:11(6784-6799)Online publication date: 1-Nov-2023
    • (2023)PFNet: Large-Scale Traffic Forecasting With Progressive Spatio-Temporal FusionIEEE Transactions on Intelligent Transportation Systems10.1109/TITS.2023.329669724:12(14580-14597)Online publication date: 1-Dec-2023
    • (2023)Short-term urban rail transit passenger flow forecasting based on fusion model methods using univariate time seriesApplied Soft Computing10.1016/j.asoc.2023.110740147:COnline publication date: 1-Nov-2023
    • (2023)A correlation information-based spatiotemporal network for traffic flow forecastingNeural Computing and Applications10.1007/s00521-023-08831-335:28(21181-21199)Online publication date: 3-Aug-2023
    • (2023)TrafficSCINet: An Adaptive Spatial-Temporal Graph Convolutional Network for Traffic Flow ForecastingAdvanced Intelligent Computing Technology and Applications10.1007/978-981-99-4755-3_54(628-639)Online publication date: 10-Aug-2023
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