Fault Diagnosis on Satellite Attitude Control with Dynamic Neural Network
2004
With increasing demands on higher performance, more safety and reliability of dynamic systems, especially on safety-critical systems, fault diagnosis became a research interests in recent years. In this paper, a systematic approach to design fault diagnosis and accommodation with compound approach such as applying improved robust observer to fault diagnosis on linearized system aided by dynamic neural network, which is trained to bridge the gap between simulated system and real system on nonlinear attributes and modeling errors. Using an instance of fault diagnosis on attitude control system of satellite attitude, advantages of new scheme are tested to be effective.
Keywords:
- Observer (quantum physics)
- Errors-in-variables models
- Artificial neural network
- Linear system
- Attitude control
- Nonlinear system
- Control theory
- Satellite
- Computer science
- Artificial intelligence
- Control engineering
- Machine learning
- Dynamical system
- Accommodation
- satellite attitude control
- attitude control system
- dynamic neural network
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- Source
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