DocumentCode :
2677822
Title :
The decision making algorithm based on inverse-design method and its application in the UAV autonomous flight control system design
Author :
Xue, Chai ; Ganglin, Wang ; Zhe, Wu
Author_Institution :
Sch. of Aeronaut. Sci. & Eng., Beihang Univ., Beijing, China
Volume :
1
fYear :
2010
fDate :
27-29 March 2010
Firstpage :
169
Lastpage :
173
Abstract :
For Unmanned Air Vehicles (UAV) to flight autonomously, the decision making system must be developed to replace the remote control by the pilot. To shorten the learning time and increase the real-time response, the inverse-design (ID) method is presented to calculate the control input decision inversely by using the desired output and the predictor-corrector algorithm which uses the proportional-integral predicted initial value to compute the control inputs. In the mission description process, the quasi-uniform B-spline is used to generate the desired output by a succession of control points. The genetic algorithm (GA) is also implemented to compare the computing time and the development complexity with the ID method. Simulation shows the ID method based on the predictor-corrector algorithm can be validly and efficiency used in the autonomous flight control system decision making of the UAV, and the ID method is preponderant in online computing, development and computing time reducing than the GA. The analysis and ID method presented in this paper will produce a direct benefit in relation to the decision making method and the design of the UAV autonomous flight control system.
Keywords :
PI control; aerospace control; aerospace robotics; control system synthesis; decision making; genetic algorithms; mobile robots; remotely operated vehicles; splines (mathematics); ID method; UAV autonomous flight control; control system design; decision making algorithm; development complexity; genetic algorithm; inverse-design method; predictor-corrector algorithm; proportional-integral predicted initial value; quasiuniform B-spline; unmanned air vehicles; Aerospace control; Algorithm design and analysis; Control systems; Decision making; Genetic algorithms; Pi control; Prediction algorithms; Proportional control; Spline; Unmanned aerial vehicles; autonomous flight; decision making algorithm; generic algorithm; inverse-design method; predictor-corrector algorithm; real-time; unmanned air vehicle (UAV);
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Advanced Computer Control (ICACC), 2010 2nd International Conference on
Conference_Location :
Shenyang
Print_ISBN :
978-1-4244-5845-5
Type :
conf
DOI :
10.1109/ICACC.2010.5487041
Filename :
5487041
Link To Document :
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