A New Algorithm of Geometric Mean for Solving High-Order Fredholm Integro-differential Equations

© 2016 IEEE. The Fredholm Integro-differential equations (IDEs) of the second kind appear in many scientific applications. Mathematical methods for the solution of the Fredholm IDEs have been developed over the last decade. In this article, we introduce a new variant of Geometric Mean iterative (MGM...

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Main Authors: E. Aruchunan, N. Khajohnsaksumeth, B. Wiwatanapataphee
Other Authors: Curtin University
Format: Conference or Workshop Item
Published: 2018
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Online Access:https://repository.li.mahidol.ac.th/handle/123456789/43440
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spelling th-mahidol.434402019-03-14T15:04:30Z A New Algorithm of Geometric Mean for Solving High-Order Fredholm Integro-differential Equations E. Aruchunan N. Khajohnsaksumeth B. Wiwatanapataphee Curtin University Mahidol University Computer Science © 2016 IEEE. The Fredholm Integro-differential equations (IDEs) of the second kind appear in many scientific applications. Mathematical methods for the solution of the Fredholm IDEs have been developed over the last decade. In this article, we introduce a new variant of Geometric Mean iterative (MGM) method to solve the Fredholm fourth order IDEs of the second kind. As is typical with the IDEs, the problem is first transformed into a dense algebraic system which is derived from finite difference and three-point composite closed Newton-Cotes approximation schemes. For the solution of such system, the MGM method under the standard Geometric Mean iterative method is developed. Based on three criteria of a number of iterations, CPU time and the root mean square error (RMSE) for various mesh sizes, numerical simulation has been carried out to compare the validity and applicability of the proposed method with some existing methods such as the Gauss-Seidel, the Arithmetic Mean and the standard Geometric Mean iterative methods. The proposed method is verified to be stable and has the optimal convergence order to solve this types of IDEs. To demonstrate the fast and smooth convergence of the proposed method, we use two examples of the IDEs. The numerical experiments confirm that the proposed method gives a better performance comparing to other mentioned methods. It is computationally stable, valid and accurate, and its most significant features are simplicity, fast and smooth convergence with desirable accuracy. 2018-12-11T02:37:35Z 2019-03-14T08:04:30Z 2018-12-11T02:37:35Z 2019-03-14T08:04:30Z 2016-10-11 Conference Paper Proceedings - 2016 IEEE 14th International Conference on Dependable, Autonomic and Secure Computing, DASC 2016, 2016 IEEE 14th International Conference on Pervasive Intelligence and Computing, PICom 2016, 2016 IEEE 2nd International Conference on Big Data Intelligence and Computing, DataCom 2016 and 2016 IEEE Cyber Science and Technology Congress, CyberSciTech 2016, DASC-PICom-DataCom-CyberSciTech 2016. (2016), 723-729 10.1109/DASC-PICom-DataCom-CyberSciTec.2016.128 2-s2.0-84995380543 https://repository.li.mahidol.ac.th/handle/123456789/43440 Mahidol University SCOPUS https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=84995380543&origin=inward
institution Mahidol University
building Mahidol University Library
continent Asia
country Thailand
Thailand
content_provider Mahidol University Library
collection Mahidol University Institutional Repository
topic Computer Science
spellingShingle Computer Science
E. Aruchunan
N. Khajohnsaksumeth
B. Wiwatanapataphee
A New Algorithm of Geometric Mean for Solving High-Order Fredholm Integro-differential Equations
description © 2016 IEEE. The Fredholm Integro-differential equations (IDEs) of the second kind appear in many scientific applications. Mathematical methods for the solution of the Fredholm IDEs have been developed over the last decade. In this article, we introduce a new variant of Geometric Mean iterative (MGM) method to solve the Fredholm fourth order IDEs of the second kind. As is typical with the IDEs, the problem is first transformed into a dense algebraic system which is derived from finite difference and three-point composite closed Newton-Cotes approximation schemes. For the solution of such system, the MGM method under the standard Geometric Mean iterative method is developed. Based on three criteria of a number of iterations, CPU time and the root mean square error (RMSE) for various mesh sizes, numerical simulation has been carried out to compare the validity and applicability of the proposed method with some existing methods such as the Gauss-Seidel, the Arithmetic Mean and the standard Geometric Mean iterative methods. The proposed method is verified to be stable and has the optimal convergence order to solve this types of IDEs. To demonstrate the fast and smooth convergence of the proposed method, we use two examples of the IDEs. The numerical experiments confirm that the proposed method gives a better performance comparing to other mentioned methods. It is computationally stable, valid and accurate, and its most significant features are simplicity, fast and smooth convergence with desirable accuracy.
author2 Curtin University
author_facet Curtin University
E. Aruchunan
N. Khajohnsaksumeth
B. Wiwatanapataphee
format Conference or Workshop Item
author E. Aruchunan
N. Khajohnsaksumeth
B. Wiwatanapataphee
author_sort E. Aruchunan
title A New Algorithm of Geometric Mean for Solving High-Order Fredholm Integro-differential Equations
title_short A New Algorithm of Geometric Mean for Solving High-Order Fredholm Integro-differential Equations
title_full A New Algorithm of Geometric Mean for Solving High-Order Fredholm Integro-differential Equations
title_fullStr A New Algorithm of Geometric Mean for Solving High-Order Fredholm Integro-differential Equations
title_full_unstemmed A New Algorithm of Geometric Mean for Solving High-Order Fredholm Integro-differential Equations
title_sort new algorithm of geometric mean for solving high-order fredholm integro-differential equations
publishDate 2018
url https://repository.li.mahidol.ac.th/handle/123456789/43440
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