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A highly accurate numerical method for solving nonlinear time‐fractional differential difference equation
Author(s) -
Khalid Muhammad,
Khan Fareeha Sami,
Sultana Mariam
Publication year - 2019
Publication title -
mathematical methods in the applied sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.719
H-Index - 65
eISSN - 1099-1476
pISSN - 0170-4214
DOI - 10.1002/mma.5883
Subject(s) - mathematics , discretization , nonlinear system , differential equation , korteweg–de vries equation , taylor series , mathematical analysis , numerical analysis , partial differential equation , series (stratigraphy) , paleontology , physics , quantum mechanics , biology
This work is based on the implementation of an iterative perturbation method to attain the series solutions of nonlinear fractional differential difference equation (NFDΔE). Perturbation‐iteration algorithm (PIA) assigns a perturbation parameter ϵ to all nonlinear terms and converts it into a simple fractional differential difference equation (FDΔE). By simply solving this FDΔE, series solutions can be obtained. To show the efficacy and accuracy of this method, three famous NFDΔE, i.e, fractional Lotka‐Volterra equation, fractional discrete KdV equation and discretized fractional mKdV lattice equation, will be solved numerically via PIA. Also, comparison of numerical results for α =1 will be done with exact solutions, and their absolute error will also be provided. Graphical illustrations for different values of α will be given to establish the certainty of results. Also, to prove the proficiency among other methods, comparison with different numerical methods is given. Advantage of PIA is that nonlinear terms get vanished during the calculations of Taylor series expansion; therefore, less calculation effort can obtain comprehensive accurate solutions.

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