2015 · 18 citations · 18 references
Mimo SystemEngineeringAerial RoboticsQuadrotor VehicleAerospace EngineeringMechatronicsMechanical SystemsSystems EngineeringFlying RobotQuad RotorRobot LearningDeep LearningRoboticsQuad Rotor VehicleRecurrent Neural NetworkAir Vehicle SystemFlight Control
In this paper, the Modular Deep Recurrent Neural Network (MODERNN) framework is studied for learning a Multi-Input-Multi-Output (MIMO) model of a quad rotor. Comparing a Single-Input-Single-Output (SISO) system, a MIMO system is much harder to model because of the intercoupling of the system variables as well as the multi-dimensionality of the input and output spaces. In this paper it is shown that the MODERNN framework is capable of modelling complex MIMO dynamical mappings, such as a simulated MIMO model (4-by-4) of a quad rotor vehicle in the presence of noise and ground effect.
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