Artigo
A soft sensor for estimating tire cornering properties for intelligent tires
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IEEE Xplore
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Abstract
Intelligent tire systems are promising solutions for
achieving precise vehicle state estimations, localization, and
motion control in the context of autonomous driving. Tire cornering properties, namely, lateral force, aligning moment, and
pneumatic trail, are crucial factors that should be accurately
estimated for vehicle dynamics control purposes. In this work,
a soft sensor for estimating tire cornering properties based on
intelligent tire and machine learning is developed. The intelligent
tire system is based on a triaxial accelerometer mounted on the
inner liner of the tire tread, which provides acceleration measurements from the x, y, and z directions. Partial least squares
and variable importance in the projection scores (PLS-VIP) are
used in the feature extraction of the acceleration signals over
the contact patch. A Gaussian process regression (GPR) model
is trained to predict the cornering properties with confidence
intervals under different input conditions. Based on the variances in the GPR predictions and minimum mean-square error
criterion, a data fusion method for pneumatic trail estimation
is proposed. It is demonstrated that the developed GPR models
for cornering properties and the data fusion method for pneumatic trail estimation have satisfactory accuracy and reliability.
The experimental results show that the soft sensor proposed in
this work is a strong candidate for further applications in the
development of vehicle state estimation and control algorithms
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XU, N. et al. A soft sensor for estimating tire cornering properties for intelligent tires. IEEE Transactions on Systems, Man, and Cybernetics: Systems, [S.l.], 2023.
