2014
DOI: 10.1016/j.jfranklin.2014.05.006
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Adaptive output feedback neural network control of uncertain non-affine systems with unknown control direction

Abstract: This paper deals with the problem of adaptive output feedback neural network controller design for a SISO non-affine nonlinear system. Since in practice all system states are not available in output measurement, an observer is designed to estimate these states. In comparison with the existing approaches, the current method does not require any information about the sign of control gain. In order to handle the unknown sign of the control direction, the Nussbaum-type function is utilized. In order to approximate… Show more

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Cited by 93 publications
(32 citation statements)
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“…In (44), u a is a feedback of estimated states, u R and u d are the controllers to compensate NN approximation error and external disturbances, respectively. The adaptation law for updating (44) is proposed aṡ…”
Section: Observer-based Stabilizer Designmentioning
confidence: 99%
See 1 more Smart Citation
“…In (44), u a is a feedback of estimated states, u R and u d are the controllers to compensate NN approximation error and external disturbances, respectively. The adaptation law for updating (44) is proposed aṡ…”
Section: Observer-based Stabilizer Designmentioning
confidence: 99%
“…NN and fuzzy logic as universal approximator can be used as an alternative approach to approximate unknown uncertainties [37]- [41]. Furthermore, radial basis functions NN (RBFNN) is often used in practical applications due to simple structure and nice approximation properties [40], [42]- [44]. In addition, among various model-based fuzzy control approaches, in particular, the method based on Takagi-Sugeno (T-S) model is well-matched to the continuous and discrete model-based nonlinear control [45]- [49].…”
mentioning
confidence: 99%
“…12,13 If the prior knowledge about the sign of control direction is not known or it changes with time, many approaches could be applied to handle this problem such as using Nussbaum gain techniques 11,14 and utilizing a hysteresis-type function in adaptive fuzzy control. 12,13 If the prior knowledge about the sign of control direction is not known or it changes with time, many approaches could be applied to handle this problem such as using Nussbaum gain techniques 11,14 and utilizing a hysteresis-type function in adaptive fuzzy control.…”
Section: Introductionmentioning
confidence: 99%
“…In the context of the new era, we need to inherit and innovate. In his important speech on 1 July, General Secretary Xi Jinping pointed out that cultural self-confidence is more fundamental, broader and deeper [1] . The sixth Plenary session of the 18 CPC Central Committee stressed that: we must firmly believe in the road, theory, system and culture of socialism with Chinese characteristics, the ideals and struggles of the Chinese people, the values and spiritual world of the Chinese people, and the self-confidence of the Chinese people, always rooted in the fertile soil of Chinese excellent traditional culture.…”
Section: Introductionmentioning
confidence: 99%