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On the Analysis of an Analytical Approach for Fractional Caudrey-Dodd Equations

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Date

2022

Journal Title

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Volume Title

Publisher

Elsevier

Open Access Color

GOLD

Green Open Access

No

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No
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Top 1%
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Top 10%
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Abstract

The principal aim of this paper is to study the approximate solution of nonlinear Caudrey-Dodd-Gibbon equation of fractional order by employing an analytical method. The Caudrey-Dodd-Gibbon equation arises in plasma physics and laser optics. The Caputo derivative is applied to model the physical problem. By applying an effective semi-analytical technique, we attain the approximate solutions without linearization. The uniqueness and the convergence analysis for the applied method are shown. The graphical representation of solutions of fractional Caudrey-Dodd-Gibbon equation demonstrates the applied technique is very efficient to obtain the solutions of such type of fractional order mathematical models. (c) 2021 THE AUTHORS. Published by Elsevier BV on behalf of Faculty of Engineering, Alexandria University. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/ licenses/by-nc-nd/4.0/).

Description

Keywords

Caputo Fractional Derivative, Fractional Caudrey-Dodd Gibbon Equation, Analytical Method, Caputo fractional derivative, Fractional Caudrey-Dodd Gibbon equation, TA1-2040, Engineering (General). Civil engineering (General), Analytical method

Fields of Science

0103 physical sciences, 0202 electrical engineering, electronic engineering, information engineering, 02 engineering and technology, 01 natural sciences

Citation

Singh, Jagdev; Gupta, Arpita; Baleanu, Dumitru (2022). "On the analysis of an analytical approach for fractional Caudrey-Dodd-Gibbon equations", Alexandria Engineering Journal, Vol. 61, No. 7, pp. 5073-5082.

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Q1

Scopus Q

Q1
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OpenCitations Citation Count
34

Source

Alexandria Engineering Journal

Volume

61

Issue

7

Start Page

5073

End Page

5082
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Citations

CrossRef : 35

Scopus : 36

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Mendeley Readers : 4

SCOPUS™ Citations

38

checked on Feb 25, 2026

Web of Science™ Citations

31

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2

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2.90775205

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