Estimating kinetic parameters for essential amino acid production in arabidopsis thaliana by using particle swarm optimization

Parameter estimation is one of nine phases in modelling, which is the most challenging task that is used to estimate the parameter values for biological system that is non-linear. There is no general solution for determining the nonlinearity of the dynamic model. Experimental measurement is expensi...

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Main Authors: Siew, Teng Ng, Chuii, Khim Chong, Yee, Wen Choon, Lian, En Chai, Deris, Safaai, Md. Illias, Rosli, Omar, Mohd. Shahir Shamsir, Mohamad, Mohd. Saberi
Format: Article
Language:English
Published: Penerbit UTM Press 2013
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Online Access:http://eprints.utm.my/id/eprint/40409/1/SiewTengNg_2013EstimatingKineticParametersforEssentialAmino.pdf
http://eprints.utm.my/id/eprint/40409/
https://jurnalteknologi.utm.my/index.php/jurnalteknologi/article/view/1737
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spelling my.utm.404092019-03-26T08:08:01Z http://eprints.utm.my/id/eprint/40409/ Estimating kinetic parameters for essential amino acid production in arabidopsis thaliana by using particle swarm optimization Siew, Teng Ng Chuii, Khim Chong Yee, Wen Choon Lian, En Chai Deris, Safaai Md. Illias, Rosli Omar, Mohd. Shahir Shamsir Mohamad, Mohd. Saberi QD Chemistry Parameter estimation is one of nine phases in modelling, which is the most challenging task that is used to estimate the parameter values for biological system that is non-linear. There is no general solution for determining the nonlinearity of the dynamic model. Experimental measurement is expensive, hard and time consuming. Hence, the aim for this research is to implement Particle Swarm Optimization (PSO) intoSBToolbox to solve the mentioned problems. As a result, the optimum kinetic parameters for simulating essential amino acid metabolism in plant model Arabidopsis Thaliana are obtained. There are four performance measurements used, namely computational time, average of error rate, standard deviation and production of graph. As a finding of this research, PSO has the smallest standard deviation and average of error rate. The computational time in parameter estimation is smaller in comparison with others, indicating that PSO is a consistent method to estimate parameter values compared to the performance of Simulated Annealing (SA) and downhill simplex method after the implementation into SBToolbox. Penerbit UTM Press 2013 Article PeerReviewed application/pdf en http://eprints.utm.my/id/eprint/40409/1/SiewTengNg_2013EstimatingKineticParametersforEssentialAmino.pdf Siew, Teng Ng and Chuii, Khim Chong and Yee, Wen Choon and Lian, En Chai and Deris, Safaai and Md. Illias, Rosli and Omar, Mohd. Shahir Shamsir and Mohamad, Mohd. Saberi (2013) Estimating kinetic parameters for essential amino acid production in arabidopsis thaliana by using particle swarm optimization. Jurnal Teknologi, 64 (1). pp. 73-80. ISSN 21803722 https://jurnalteknologi.utm.my/index.php/jurnalteknologi/article/view/1737
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
language English
topic QD Chemistry
spellingShingle QD Chemistry
Siew, Teng Ng
Chuii, Khim Chong
Yee, Wen Choon
Lian, En Chai
Deris, Safaai
Md. Illias, Rosli
Omar, Mohd. Shahir Shamsir
Mohamad, Mohd. Saberi
Estimating kinetic parameters for essential amino acid production in arabidopsis thaliana by using particle swarm optimization
description Parameter estimation is one of nine phases in modelling, which is the most challenging task that is used to estimate the parameter values for biological system that is non-linear. There is no general solution for determining the nonlinearity of the dynamic model. Experimental measurement is expensive, hard and time consuming. Hence, the aim for this research is to implement Particle Swarm Optimization (PSO) intoSBToolbox to solve the mentioned problems. As a result, the optimum kinetic parameters for simulating essential amino acid metabolism in plant model Arabidopsis Thaliana are obtained. There are four performance measurements used, namely computational time, average of error rate, standard deviation and production of graph. As a finding of this research, PSO has the smallest standard deviation and average of error rate. The computational time in parameter estimation is smaller in comparison with others, indicating that PSO is a consistent method to estimate parameter values compared to the performance of Simulated Annealing (SA) and downhill simplex method after the implementation into SBToolbox.
format Article
author Siew, Teng Ng
Chuii, Khim Chong
Yee, Wen Choon
Lian, En Chai
Deris, Safaai
Md. Illias, Rosli
Omar, Mohd. Shahir Shamsir
Mohamad, Mohd. Saberi
author_facet Siew, Teng Ng
Chuii, Khim Chong
Yee, Wen Choon
Lian, En Chai
Deris, Safaai
Md. Illias, Rosli
Omar, Mohd. Shahir Shamsir
Mohamad, Mohd. Saberi
author_sort Siew, Teng Ng
title Estimating kinetic parameters for essential amino acid production in arabidopsis thaliana by using particle swarm optimization
title_short Estimating kinetic parameters for essential amino acid production in arabidopsis thaliana by using particle swarm optimization
title_full Estimating kinetic parameters for essential amino acid production in arabidopsis thaliana by using particle swarm optimization
title_fullStr Estimating kinetic parameters for essential amino acid production in arabidopsis thaliana by using particle swarm optimization
title_full_unstemmed Estimating kinetic parameters for essential amino acid production in arabidopsis thaliana by using particle swarm optimization
title_sort estimating kinetic parameters for essential amino acid production in arabidopsis thaliana by using particle swarm optimization
publisher Penerbit UTM Press
publishDate 2013
url http://eprints.utm.my/id/eprint/40409/1/SiewTengNg_2013EstimatingKineticParametersforEssentialAmino.pdf
http://eprints.utm.my/id/eprint/40409/
https://jurnalteknologi.utm.my/index.php/jurnalteknologi/article/view/1737
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score 13.211869