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Using the data from 5° to 12°, we obtained a solution with Mw = 9.1 and a best double couple given by (strike/dip/rake = 201°/10°/92°).
By varying the potential strengths, we obtained a solution for Hellmann potential, Yukawa potential, Coulomb potential and inversely quadratic Yukawa potential.
We obtained a solution with less viscosity when supplying nanoparticles of both clay and silica in very low rates of polymer concentration that justifies low concentration of polymer.
Finally, in the last step of the procedure, we obtained a solution which nearly reaches a pseudo dead core solution with. Figure 20 Problem (3. 18): The numerical solution, the error estimate, and the residual for.
By solving the latter equation we obtained a solution that provided the time dynamics of the central moments of the probability distribution Pk(t).
Moreover, we observed a fast convergence in this example; we obtained a solution distribution almost similar to that of the final population even at the tenth GA iteration (data not shown).
Similar(54)
We obtain a solution of the quasilinear equation in,, on.
Hence, we obtain a solution of the auxiliary problem (4.3) which is equivalent to the problem.
More precisely, we obtain a solution of (4.48) satisfying which implies and.
We obtain a solution to this problem as the limit of approximate finite dimensional processes.
At each step of the algorithm, we obtain a solution (y^{k}) by solving a convex subproblem.
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Since I tried Ludwig back in 2017, I have been constantly using it in both editing and translation. Ever since, I suggest it to my translators at ProSciEditing.

Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com