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Sliding Mode Control Techniques and Artificial Potential Field for Dynamic Collision Avoidance in Rendezvous Maneuvers.

, , , and . IEEE Control. Syst. Lett., 4 (2): 313-318 (2020)

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Minimax Optimization of Fatigue Loads in a Wind Farm and its Realization Via Sliding Mode Controller of Wind Turbines., , , and . CCTA, page 430-435. IEEE, (2018)Sliding Mode Control Techniques and Artificial Potential Field for Dynamic Collision Avoidance in Rendezvous Maneuvers., , , and . CoRR, (2019)Design and Validation of an $L_1$ Adaptive Controller for Mini-UAV Autopilot., , , and . J. Intell. Robotic Syst., 69 (1-4): 109-118 (2013)Trajectory Planning for UAVs Based on Interfered Fluid Dynamical System and Bézier Curves., , and . IEEE Robotics Autom. Lett., 7 (4): 9620-9626 (2022)A general sampling-based SMPC approach to spacecraft proximity operations., , , , and . CDC, page 4521-4526. IEEE, (2017)An Offline-Sampling SMPC Framework with Application to Automated Space Maneuvers., , , , , , , and . CoRR, (2018)A Tube-based Robust MPC for a Fixed-wing UAV: an Application for Precision Farming., and . CoRR, (2018)Sliding Mode Control Techniques and Artificial Potential Field for Dynamic Collision Avoidance in Rendezvous Maneuvers., , , and . IEEE Control. Syst. Lett., 4 (2): 313-318 (2020)Tube-Based Robust MPC Processor-in-the-Loop Validation for Fixed-Wing UAVs., and . J. Intell. Robotic Syst., 100 (1): 239-258 (2020)An Offline-Sampling SMPC Framework With Application to Autonomous Space Maneuvers., , , , , , , and . IEEE Trans. Control. Syst. Technol., 28 (2): 388-402 (2020)