Sanders et al., 1998 - Google Patents
Hierarchical control of small autonomous helicoptersSanders et al., 1998
View PDF- Document ID
- 11175242305075535805
- Author
- Sanders C
- DeBitetto P
- Feron E
- Vuong H
- Leveson N
- Publication year
- Publication venue
- Proceedings of the 37th IEEE conference on decision and control (Cat. No. 98CH36171)
External Links
Snippet
Autonomous air vehicles have numerous applications, all of which require the vehicle to have stable and accurate control of its motion. In the paper, a hierarchical control system for small autonomous helicopters is described. The control system consists of four components …
- 230000010006 flight 0 abstract description 50
Classifications
-
- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05D—SYSTEMS FOR CONTROLLING OR REGULATING NON-ELECTRIC VARIABLES
- G05D1/00—Control of position, course or altitude of land, water, air, or space vehicles, e.g. automatic pilot
- G05D1/04—Control of altitude or depth
- G05D1/06—Rate of change of altitude or depth
- G05D1/0607—Rate of change of altitude or depth specially adapted for aircraft
-
- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05D—SYSTEMS FOR CONTROLLING OR REGULATING NON-ELECTRIC VARIABLES
- G05D1/00—Control of position, course or altitude of land, water, air, or space vehicles, e.g. automatic pilot
- G05D1/0011—Control of position, course or altitude of land, water, air, or space vehicles, e.g. automatic pilot associated with a remote control arrangement
- G05D1/0044—Control of position, course or altitude of land, water, air, or space vehicles, e.g. automatic pilot associated with a remote control arrangement by providing the operator with a computer generated representation of the environment of the vehicle, e.g. virtual reality, maps
-
- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05D—SYSTEMS FOR CONTROLLING OR REGULATING NON-ELECTRIC VARIABLES
- G05D1/00—Control of position, course or altitude of land, water, air, or space vehicles, e.g. automatic pilot
- G05D1/10—Simultaneous control of position or course in three dimensions
- G05D1/101—Simultaneous control of position or course in three dimensions specially adapted for aircraft
-
- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05D—SYSTEMS FOR CONTROLLING OR REGULATING NON-ELECTRIC VARIABLES
- G05D1/00—Control of position, course or altitude of land, water, air, or space vehicles, e.g. automatic pilot
- G05D1/08—Control of attitude, i.e. control of roll, pitch, or yaw
- G05D1/0808—Control of attitude, i.e. control of roll, pitch, or yaw specially adapted for aircraft
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B64—AIRCRAFT; AVIATION; COSMONAUTICS
- B64C—AEROPLANES; HELICOPTERS
- B64C2201/00—Unmanned aerial vehicles; Equipment therefor
- B64C2201/10—Unmanned aerial vehicles; Equipment therefor characterised by the lift producing means
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B64—AIRCRAFT; AVIATION; COSMONAUTICS
- B64C—AEROPLANES; HELICOPTERS
- B64C39/00—Aircraft not otherwise provided for
- B64C39/02—Aircraft not otherwise provided for characterised by special use
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B64—AIRCRAFT; AVIATION; COSMONAUTICS
- B64C—AEROPLANES; HELICOPTERS
- B64C19/00—Aircraft control not otherwise provided for
Similar Documents
Publication | Publication Date | Title |
---|---|---|
Sanders et al. | Hierarchical control of small autonomous helicopters | |
Scaramuzza et al. | Vision-controlled micro flying robots: from system design to autonomous navigation and mapping in GPS-denied environments | |
Kendoul et al. | Guidance and nonlinear control system for autonomous flight of minirotorcraft unmanned aerial vehicles | |
Brisset et al. | The paparazzi solution | |
How et al. | Real-time indoor autonomous vehicle test environment | |
Valenti et al. | Indoor multi-vehicle flight testbed for fault detection, isolation, and recovery | |
Gavrilets et al. | Aggressive maneuvering of small autonomous helicopters: A human-centered approach | |
Johnson et al. | The Georgia Tech unmanned aerial research vehicle: GTMax | |
Pestana et al. | A general purpose configurable controller for indoors and outdoors gps-denied navigation for multirotor unmanned aerial vehicles | |
De Paiva et al. | Project AURORA: Infrastructure and flight control experiments for a robotic airship | |
Johnson et al. | Modeling and simulation for small autonomous helicopter development | |
Kendoul et al. | Embedded autopilot for accurate waypoint navigation and trajectory tracking: Application to miniature rotorcraft uavs | |
Lin et al. | Development of an unmanned coaxial rotorcraft for the DARPA UAVForge challenge | |
Flores et al. | A nonlinear path-following strategy for a fixed-wing MAV | |
Antenucci et al. | A ROS based automatic control implementation for precision landing on slow moving platforms using a cooperative fleet of rotary-wing UAVs | |
Cunningham et al. | Practical application of a subscale transport aircraft for flight research in control upset and failure conditions | |
Cetin et al. | Fuzzy logic based approach to design of autonomous landing system for unmanned aerial vehicles | |
Morscheck | A modular experimental flight management and 4D trajectory generation system for unmanned multicopter, urban air mobility vehicles and other VTOL vehicles | |
Dobrokhodov et al. | Flight validation of metrics driven L1 adaptive control | |
Hatta et al. | Robot Operating System (ROS) in Quadcopter Flying Robot Using Telemetry System | |
Feron et al. | FA15 zyxwvutsrqp | |
Grzonka et al. | Autonomous indoor navigation using a small-size quadrotor | |
Rushdi et al. | Development of a small-scale autonomous UAV for research and development | |
Kaminer et al. | Rapid Flight Test Prototyping System and the Fleet of UAV's and MAVs at the Naval Postgraduate School | |
Mettler et al. | A first investigation into the teleoperation of a miniature rotorcraft |