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Exact solutions of the derivative nonlinear Schrödinger equation for a nonlinear transmission line
1Department of Mathematics & Computer Science, Faculty of Science, University of Dschang, P. O. Box 4509, Douala, Republic of Cameroon. ekengne6@yahoo.fr
Abstract:
We consider the derivative nonlinear Schrödinger equation with constant potential as a model for wave propagation on a discrete nonlinear transmission line. This equation can be derived in the small amplitude and long wavelength limit using the standard reductive perturbation method and complex expansion. We construct some exact soliton and elliptic solutions of the mentioned equation by perturbation of its Stokes wave solutions. We find that for some values of the coefficients of the equation and for some parameters of solutions, the graphical representations show some kinds of symmetries such as mirror symmetry and rotational symmetry.
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