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New Exact Solution of Generalized Biological Population Model

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Date

2017

Journal Title

Journal ISSN

Volume Title

Publisher

int Scientific Research Publications

Open Access Color

GOLD

Green Open Access

Yes

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Publicly Funded

No
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Abstract

In this study, a mathematical model of the generalized biological population model (GBPM) gets a new exact solution with a conformable derivative operator (CDO). The new exact solution of this model will be obtained by a new approximate analytic technique named three dimensional conformable reduced differential transform method (TCRDTM). By using this technique, it is possible to find new exact solution as well as closed analytical approximate solution of a partial differential equations (PDEs). Three numerical applications of GBPM are given to check the accuracy, effectiveness, and convergence of the TCRDTM. In these applications, obtained new exact solutions in conformable sense are compared with the exact solutions in Caputo sense in literature. The comparisons are illustrated in 3D graphics. The results show that when alpha -> 1, the exact solutions in conformable and Caputo sense converge to each other. In other cases, exact solutions different from each other are obtained. (C) 2017 All rights reserved.

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Keywords

Numerical Solution, Biological Populations Model, Reduced Differential Transform Method, Conformable Derivative, Partial Differential Equations, Numerical solution, biological populations model, partial differential equations, conformable derivative, reduced differential transform method, numerical solution, Numerical approximation of solutions of dynamical problems in solid mechanics, Fractional partial differential equations

Fields of Science

0101 mathematics, 01 natural sciences

Citation

Acan, Omer; Al Qurashi, Maysaa Mohamed; Baleanu, Dumitru (2017). New exact solution of generalized biological population model, Journal Of Nonlinear Sciences And Applications, 10(7), 3916-3929.

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OpenCitations Citation Count
21

Source

The Journal of Nonlinear Sciences and Applications

Volume

10

Issue

7

Start Page

3916

End Page

3929
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