ENGLISH

Control of flexible-link manipulators using neural networks

Book information

Publisher
Springer-Verlag London
Year
2001
ISBN
9781852334093, 9781846285721
Language
english
Format
PDF
Filesize
2 MB (2053052 bytes)
Series
Lecture Notes in Control and Information Sciences 261
Edition
1
Pages
150\155
Time added
2020-08-30 06:11:09

Description

Control of Flexible-link Manipulators Using Neural Networks addresses the difficulties that arise in controlling the end-point of a manipulator that has a significant amount of structural flexibility in its links. The non-minimum phase characteristic, coupling effects, nonlinearities, parameter variations and unmodeled dynamics in such a manipulator all contribute to these difficulties. Control strategies that ignore these uncertainties and nonlinearities generally fail to provide satisfactory closed-loop performance. This monograph develops and experimentally evaluates several intelligent (neural network based) control techniques to address the problem of controlling the end-point of flexible-link manipulators in the presence of all the aforementioned difficulties. To highlight the main issues, a very flexible-link manipulator whose hub exhibits a considerable amount of friction is considered for the experimental work. Four different neural network schemes are proposed and implemented on the experimental test-bed. The neural networks are trained and employed as online controllers. Introduction....Pages 1-14 Manipulator model....Pages 15-32 Output redefinition....Pages 33-40 Proposed neural network structures....Pages 41-79 Experimental results....Pages 81-114

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