Global optimization methods for calibration and optimization of the hydrologic tank model's parameters

The tank model, a lumped conceptual hydrological model, is well known due to its simplicity of concept, simplicity in computation while achieving forecasting accuracy comparable with more sophisticated models. However, the calibration of the hydrologic tank model required much time and effort t...

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Main Authors: Kuok, King Kuok, Harun, Sobri, Shamsudin, Siti Maryam
Format: Article
Published: AM Publisher 2010
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Online Access:http://eprints.utm.my/id/eprint/26020/
http://dms.library.utm.my:8080/vital/access/manager/Repository/vital:71078?site_name=Restricted+Repository&query=Global+optimization+methods+for+calibration+and+optimization+of+the+hydrologic+tank+model%27s+parameters&queryType=vitalDismax
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Institution: Universiti Teknologi Malaysia
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spelling my.utm.260202018-11-30T06:23:02Z http://eprints.utm.my/id/eprint/26020/ Global optimization methods for calibration and optimization of the hydrologic tank model's parameters Kuok, King Kuok Harun, Sobri Shamsudin, Siti Maryam QA75 Electronic computers. Computer science The tank model, a lumped conceptual hydrological model, is well known due to its simplicity of concept, simplicity in computation while achieving forecasting accuracy comparable with more sophisticated models. However, the calibration of the hydrologic tank model required much time and effort to obtain better results through trial and error method. With the development of artificial intelligence, three probabilistic Global Optimization methods namely Genetic Algorithm (GA), Shuffle Complex Evolution (SCE) and Particle Swarm Optimization (PSO) were adopted for model calibration. The objective of the study is to find the best type of Global Optimization Methods and the best configuration to calibrate tank model that will produce the best fit between the observed and simulated runoff. The selected study area is Bedup Basin, located at Samarahan Division, Sarawak. Input data used for model calibration is a single storm event. The optimal parameters obtained will then be validated with 11 other single storm events. The performance of the optimization techniques is measured using Coefficient of Correlation (R) and Nash-Sutcliffe coefficient (E 2 ). Results show that all three probabilitic GOMs are able to obtain optimal value for 10 parameters of tank model. However, the best GOMs for hourly runoff simulation is PSO. SCE appeard to be the second best performance GOMs and the least performed is GA technique. AM Publisher 2010-02 Article PeerReviewed Kuok, King Kuok and Harun, Sobri and Shamsudin, Siti Maryam (2010) Global optimization methods for calibration and optimization of the hydrologic tank model's parameters. Canadian Journal of Civil Engineering, 1 (1). pp. 1-14. ISSN 1923-1636 http://dms.library.utm.my:8080/vital/access/manager/Repository/vital:71078?site_name=Restricted+Repository&query=Global+optimization+methods+for+calibration+and+optimization+of+the+hydrologic+tank+model%27s+parameters&queryType=vitalDismax
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/
topic QA75 Electronic computers. Computer science
spellingShingle QA75 Electronic computers. Computer science
Kuok, King Kuok
Harun, Sobri
Shamsudin, Siti Maryam
Global optimization methods for calibration and optimization of the hydrologic tank model's parameters
description The tank model, a lumped conceptual hydrological model, is well known due to its simplicity of concept, simplicity in computation while achieving forecasting accuracy comparable with more sophisticated models. However, the calibration of the hydrologic tank model required much time and effort to obtain better results through trial and error method. With the development of artificial intelligence, three probabilistic Global Optimization methods namely Genetic Algorithm (GA), Shuffle Complex Evolution (SCE) and Particle Swarm Optimization (PSO) were adopted for model calibration. The objective of the study is to find the best type of Global Optimization Methods and the best configuration to calibrate tank model that will produce the best fit between the observed and simulated runoff. The selected study area is Bedup Basin, located at Samarahan Division, Sarawak. Input data used for model calibration is a single storm event. The optimal parameters obtained will then be validated with 11 other single storm events. The performance of the optimization techniques is measured using Coefficient of Correlation (R) and Nash-Sutcliffe coefficient (E 2 ). Results show that all three probabilitic GOMs are able to obtain optimal value for 10 parameters of tank model. However, the best GOMs for hourly runoff simulation is PSO. SCE appeard to be the second best performance GOMs and the least performed is GA technique.
format Article
author Kuok, King Kuok
Harun, Sobri
Shamsudin, Siti Maryam
author_facet Kuok, King Kuok
Harun, Sobri
Shamsudin, Siti Maryam
author_sort Kuok, King Kuok
title Global optimization methods for calibration and optimization of the hydrologic tank model's parameters
title_short Global optimization methods for calibration and optimization of the hydrologic tank model's parameters
title_full Global optimization methods for calibration and optimization of the hydrologic tank model's parameters
title_fullStr Global optimization methods for calibration and optimization of the hydrologic tank model's parameters
title_full_unstemmed Global optimization methods for calibration and optimization of the hydrologic tank model's parameters
title_sort global optimization methods for calibration and optimization of the hydrologic tank model's parameters
publisher AM Publisher
publishDate 2010
url http://eprints.utm.my/id/eprint/26020/
http://dms.library.utm.my:8080/vital/access/manager/Repository/vital:71078?site_name=Restricted+Repository&query=Global+optimization+methods+for+calibration+and+optimization+of+the+hydrologic+tank+model%27s+parameters&queryType=vitalDismax
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