Online tuning of fuzzy logic controller using Kalman algorithm for conical tank system

Abstract In a non-linear process like conical tank system, controlling the liquid level was carried out by proportional integral derivative (PID) controller. But then it does not provide an accurate result. So in order to obtain accurate and effective response, intelligence is added into the system by using fuzzy logic controller (FLC). FLC which helps in maintaining the liquid level in a conical tank has been developed and applied to various fields. The result acquired using FLC will be more precise when compared to PID controller. But FLC cannot adapt a wide range of working environments and also there is no systematic method to design the membership functions (MFs) for inputs and outputs of a fuzzy system. So an adaptive algorithm called Kalman algorithm which employs fuzzy logic rules is used to adapt the Kalman filter to accommodate changes in the system parameters. The Kalman algorithm which employs fuzzy logic rules adjust the controller parameters automatically during the operation process of a system and controller is used to reduce the error in noisy environments. This technique is applied in a conical tank system. Simulations and results show that this method is effective for using fuzzy controller.

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Main Authors: Tamilselvan,G.M., Aarthy,P.
Format: Digital revista
Language:English
Published: Universidad Nacional Autónoma de México, Instituto de Ciencias Aplicadas y Tecnología 2017
Online Access:http://www.scielo.org.mx/scielo.php?script=sci_arttext&pid=S1665-64232017000500492
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spelling oai:scielo:S1665-642320170005004922018-11-26Online tuning of fuzzy logic controller using Kalman algorithm for conical tank systemTamilselvan,G.M.Aarthy,P. Fuzzy logic controller Proportional integral derivative controller Kalman algorithm Matlab Abstract In a non-linear process like conical tank system, controlling the liquid level was carried out by proportional integral derivative (PID) controller. But then it does not provide an accurate result. So in order to obtain accurate and effective response, intelligence is added into the system by using fuzzy logic controller (FLC). FLC which helps in maintaining the liquid level in a conical tank has been developed and applied to various fields. The result acquired using FLC will be more precise when compared to PID controller. But FLC cannot adapt a wide range of working environments and also there is no systematic method to design the membership functions (MFs) for inputs and outputs of a fuzzy system. So an adaptive algorithm called Kalman algorithm which employs fuzzy logic rules is used to adapt the Kalman filter to accommodate changes in the system parameters. The Kalman algorithm which employs fuzzy logic rules adjust the controller parameters automatically during the operation process of a system and controller is used to reduce the error in noisy environments. This technique is applied in a conical tank system. Simulations and results show that this method is effective for using fuzzy controller.info:eu-repo/semantics/openAccessUniversidad Nacional Autónoma de México, Instituto de Ciencias Aplicadas y TecnologíaJournal of applied research and technology v.15 n.5 20172017-01-01info:eu-repo/semantics/articletext/htmlhttp://www.scielo.org.mx/scielo.php?script=sci_arttext&pid=S1665-64232017000500492en10.1016/j.jart.2017.05.004
institution SCIELO
collection OJS
country México
countrycode MX
component Revista
access En linea
databasecode rev-scielo-mx
tag revista
region America del Norte
libraryname SciELO
language English
format Digital
author Tamilselvan,G.M.
Aarthy,P.
spellingShingle Tamilselvan,G.M.
Aarthy,P.
Online tuning of fuzzy logic controller using Kalman algorithm for conical tank system
author_facet Tamilselvan,G.M.
Aarthy,P.
author_sort Tamilselvan,G.M.
title Online tuning of fuzzy logic controller using Kalman algorithm for conical tank system
title_short Online tuning of fuzzy logic controller using Kalman algorithm for conical tank system
title_full Online tuning of fuzzy logic controller using Kalman algorithm for conical tank system
title_fullStr Online tuning of fuzzy logic controller using Kalman algorithm for conical tank system
title_full_unstemmed Online tuning of fuzzy logic controller using Kalman algorithm for conical tank system
title_sort online tuning of fuzzy logic controller using kalman algorithm for conical tank system
description Abstract In a non-linear process like conical tank system, controlling the liquid level was carried out by proportional integral derivative (PID) controller. But then it does not provide an accurate result. So in order to obtain accurate and effective response, intelligence is added into the system by using fuzzy logic controller (FLC). FLC which helps in maintaining the liquid level in a conical tank has been developed and applied to various fields. The result acquired using FLC will be more precise when compared to PID controller. But FLC cannot adapt a wide range of working environments and also there is no systematic method to design the membership functions (MFs) for inputs and outputs of a fuzzy system. So an adaptive algorithm called Kalman algorithm which employs fuzzy logic rules is used to adapt the Kalman filter to accommodate changes in the system parameters. The Kalman algorithm which employs fuzzy logic rules adjust the controller parameters automatically during the operation process of a system and controller is used to reduce the error in noisy environments. This technique is applied in a conical tank system. Simulations and results show that this method is effective for using fuzzy controller.
publisher Universidad Nacional Autónoma de México, Instituto de Ciencias Aplicadas y Tecnología
publishDate 2017
url http://www.scielo.org.mx/scielo.php?script=sci_arttext&pid=S1665-64232017000500492
work_keys_str_mv AT tamilselvangm onlinetuningoffuzzylogiccontrollerusingkalmanalgorithmforconicaltanksystem
AT aarthyp onlinetuningoffuzzylogiccontrollerusingkalmanalgorithmforconicaltanksystem
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