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Data-Driven Model Predictive Control for Skid-Steering Unmanned Ground Vehicles

Lorenzo Gentilini, Dario Mengoli, Símone Rossi, Lorenzo Marconi

发表年份
2022
引用次数
2

摘要

Skid steering vehicles rely on tracks slipping to perform turning maneuvers. In this context, the estimation of the right amount of slip turns out to be significant to correctly perform precise movements. In a typical agricultural scenario, with rough terrain and narrow navigating spaces, a reliable slip estimation is crucial to perform safe motions. In this work, we propose a novel Gaussian Process approach to slip estimation in a tracked wheel robots by showing experimental results obtained from our prototype robotic platform.

关键词

SlippingTerrainSlip (aerodynamics)Skid (aerodynamics)Unmanned ground vehicleComputer scienceRobotMobile robotModel predictive controlVehicle dynamics

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