DocumentCode :
2323057
Title :
Comparison between Neural Network based PI and PID controllers
Author :
Hassan, Mohammed Y. ; Kothapalli, Ganesh
Author_Institution :
Control & Syst. Eng. Dept., Univ. of Technol., Baghdad, Iraq
fYear :
2010
fDate :
27-30 June 2010
Firstpage :
1
Lastpage :
6
Abstract :
The Pneumatic actuation systems are widely used in industrial automation, such as drilling, sawing, squeezing, gripping, and spraying. Also, they are used in motion control of materials and parts handling, packing machines, machine tools, and in robotics; e.g. two-legged robot. In this paper, a Neural Network based PI controller and Neural Network based PID controller are designed and simulated to increase the position accuracy in a pneumatic servo actuator. In these designs, a well-trained Neural Network provides these controllers with suitable gains depending on feedback representing changes in position error and changes in external load force. These gains should keep the positional response within minimum overshoot, minimum rise time and minimum steady state error. A comparison between Neural Network based PI controller and Neural Network based PID controller was made to find the best controller that can be generated with simple structure according to the number of hidden layers and the number of neurons per layer. It was concluded that the Neural Network based PID controller was trained and generated with simpler structure and minimum Mean Square Error compared with the trained and generated one used with PI controller.
Keywords :
PI control; factory automation; learning (artificial intelligence); least mean squares methods; neural nets; pneumatic actuators; servomechanisms; three-term control; PI controller; PID controller; external load force; industrial automation; minimum mean square error; minimum steady state error; motion control; neural network; pneumatic actuation system; pneumatic servo actuator; position accuracy; position error; Accuracy; Equations; Mathematical model; Pneumatic systems; Service robots; Neural Network; PI; PID; Pneumatics;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Systems Signals and Devices (SSD), 2010 7th International Multi-Conference on
Conference_Location :
Amman
Print_ISBN :
978-1-4244-7532-2
Type :
conf
DOI :
10.1109/SSD.2010.5585598
Filename :
5585598
Link To Document :
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