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05-11-2024 | Electrical and Electronics, Vision and Sensors, Other Fields of Automotive Engineering

Online Vehicle Velocity Prediction Based on an Adaptive GRNN with Various Input Signals

Authors: Dongwei Yao, Junhao Shen, Jue Hou, Ziyan Zhang, Feng Wu

Published in: International Journal of Automotive Technology

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Abstract

The article discusses the challenges and importance of vehicle velocity prediction (VVP) for hybrid electric vehicles (HEVs) using an adaptive-structure general regression neural network (GRNN). It explores the impact of different input signals and the structure determination method (SDM) on prediction accuracy. The study introduces an online VVP strategy based on GRNN, which is optimized using the Akaike information criterion (AIC) to adaptively adjust the GRNN structure. The proposed strategy is validated through extensive road-test data, demonstrating significant improvements in prediction accuracy and computational efficiency compared to existing methods. The article concludes by highlighting the feasibility and effectiveness of the proposed online VVP strategy for various driving conditions on urban roads.

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Metadata
Title
Online Vehicle Velocity Prediction Based on an Adaptive GRNN with Various Input Signals
Authors
Dongwei Yao
Junhao Shen
Jue Hou
Ziyan Zhang
Feng Wu
Publication date
05-11-2024
Publisher
The Korean Society of Automotive Engineers
Published in
International Journal of Automotive Technology
Print ISSN: 1229-9138
Electronic ISSN: 1976-3832
DOI
https://doi.org/10.1007/s12239-024-00172-x