Keywords: tire-force estimation, measurement information system, vehicle dynamics, physical constraints, low-rank correction, online correction, operational shift
UDC 681.51:629.3
DOI: 10.26102/2310-6018/2026.60.9.019
The paper considers online correction of vehicle tire-force estimates in a measurement information system under changes in tire parameters and road adhesion conditions. Direct measurement of longitudinal and lateral forces under operating conditions is difficult; therefore, the initial estimate is formed using a physical baseline model and an offline-trained residual Transformer model. The study focuses not on constructing a complete estimation scheme from scratch, but on low-rank correction of the output layer of a frozen estimation model. The proposed method keeps the parameters of the main model unchanged and updates only the correction block. The main scheme does not use tire-force pseudo-labels; the weighted least-squares pseudo-label variant is considered only as a related methodological technique. The objective function includes lateral-dynamics consistency, yaw-moment consistency, a friction-ellipse constraint and anchor regularization. To select informative intervals, an update-triggering mechanism based on output-estimate jumps and dynamic excitation is used. The computational experiment was performed for five operational-shift scenarios, with ten independent runs performed for each scenario. The trigger rate ranges from 1.88 to 2.27 %, and the update-window coverage ranges from 11.2 to 14.4 %. True tire-force values were not used in the update-release decision and were employed only for subsequent offline evaluation; across the examined scenarios, the reduction in root-mean-square error ranged from zero to 6.23 %. The results show that the effectiveness of online correction depends on the type of operational shift and on the update settings.
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Keywords: tire-force estimation, measurement information system, vehicle dynamics, physical constraints, low-rank correction, online correction, operational shift
For citation: Hou T., Kulik A.A., Zhou S. Method of low-rank online correction of vehicle tire-force estimation in an information-measuring system based on physical constraints. Modeling, Optimization and Information Technology. 2026;14(9). URL: https://moitvivt.ru/ru/journal/article?id=2488 DOI: 10.26102/2310-6018/2026.60.9.019 (In Russ).
© Hou T., Kulik A.A., Zhou S. Статья опубликована на условиях лицензии Creative Commons Attribution-NonCommercial 4.0 International (CC BY-NS 4.0)Received 19.06.2026
Revised 21.09.2026
Accepted 28.09.2026
Published 30.09.2026