Publication | Closed Access
Hybrid Systems in Robotics
38
Citations
27
References
2011
Year
Artificial IntelligenceRobotic SystemsEngineeringRobot PlanningField RoboticsIntelligent RoboticsIntelligent SystemsLearning ControlRobotic ControlTrajectory PlanningNetwork RoboticsIndustrial RoboticsSystems EngineeringKinematicsRobot LearningCapture BasinsHealth SciencesPath PlanningRobot Motion PlanningMachine-learning MethodsAutonomous NavigationRobot ControlMotion PlanningAutomationMechanical SystemsHybrid SystemsPlanningRobotics
Robotics has provided the motivation and inspiration for many innovations in planning and control. From nonholonomic motion planning [1] to probabilistic road maps [2], from capture basins [3] to preimages [4] of obstacles to avoid, and from geometric nonlinear control [5], [6] to machine-learning methods in robotic control [7], there is a wide range of planning and control algorithms and methodologies that can be traced back to a perceived need or anticipated benefit in autonomous or semiautonomous systems.
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