Abstract
In this paper, we present an adaptive and predictive control framework which improves the lateral stability and the tracking performance of an autonomous vehicle operating in various road conditions. We particularly focus on the modeling errors caused by simplifications while deriving a steering model employed in predictive controller. Such simplifications could degrade the control performance. In order to enhance the prediction accuracy, we propose to use a data-driven model of the steering system where the parameters are identified online by a recursive least squares algorithm. The proposed model is simple (no mathematical derivation) and does not depend on tire forces which is usually approximated by linear models. We first validate the system identification algorithm by applying a test signal sequence to the steering actuator of our test vehicle. Then, the performance of the proposed control framework is evaluated in simulations where we compare the results of two predictive control frameworks in a automated lane change scenario with different road conditions. The simulation results show the effectiveness of the proposed method in handling the modeling mismatch and the control performance is improved under various road conditions.
| Original language | English |
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| Title of host publication | 2017 IEEE International Conference on Vehicular Electronics and Safety, ICVES 2017 |
| Publisher | Institute of Electrical and Electronics Engineers Inc. |
| Pages | 13-18 |
| Number of pages | 6 |
| ISBN (Electronic) | 9781509056774 |
| DOIs | |
| Publication status | Published - 25 Jul 2017 |
| Event | 2017 IEEE International Conference on Vehicular Electronics and Safety, ICVES 2017 - Vienna, Austria Duration: 27 Jun 2017 → 28 Jun 2017 |
Publication series
| Name | 2017 IEEE International Conference on Vehicular Electronics and Safety, ICVES 2017 |
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Conference
| Conference | 2017 IEEE International Conference on Vehicular Electronics and Safety, ICVES 2017 |
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| Country/Territory | Austria |
| City | Vienna |
| Period | 27/06/17 → 28/06/17 |
Bibliographical note
Publisher Copyright:© 2017 IEEE.
Funding
*This work is supported by Hyundai Motor Company. 1Ziya Ercan and Metin Gokasan are with the Department of Control and Automation Engineering, Istanbul Technical University, Istanbul, Turkey {ercanz,gokasan}@itu.edu.tr 2 Francesco Borrelli is with the Department of Mechanical Engineering, University of California Berkeley, Berkeley, CA 94720, USA [email protected]
| Funders |
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| Hyundai Motor America |
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