Three-step Collocation Method for Solution of Third Derivative Initial Value Problem

Authors

DOI:

https://doi.org/10.62054/ijdm/0101.03

Keywords:

Initial value problems, Interpolation and collocation procedure, Three step, Third order

Abstract

In this research paper, we introduce a novel three-step block method designed to directly tackle third-order initial value problems. This method is crafted through an interpolation and collocation approach, leveraging power series analysis. We conduct a comprehensive examination of the proposed method, ensuring it meets all requisite conditions for rigorous analysis. To assess its efficacy and validity, we employ the method on both highly stiff linear and nonlinear initial value problems, juxtaposing our findings with established approaches in the literature. Our results highlight that the new method exhibits faster convergence compared to existing methods, underscoring its superior performance.

Initial value problems, Interpolation and collocation procedure, Three step, Third order 

Author Biographies

  • Ishaq A. Adam, Department of Physical Sciences, Al-Hikmah University, Ilorin, Nigeria

    Department of Physical Sciences, Senior Lecturer

  • John Sabo, Department of Mathematics, Adamawa State University, Mubi 650001, Nigeria

    Department of Mathematics, Assistant Lecturer

  • Ibrahim Salihu, Department of Mathematics, University of Abuja, Abuja, Nigeria,

    Department of Mathematics, Assistant Lecturer

  • Sefinat B. Jaiyeola, Department of Physical Sciences, Al-Hikmah University, Ilorin, Nigeria,

    Department of Physical Sciences, Senior Lecturer

References

Abolarin, O. E. Adeyefa, E. O. Kuboye, J. O. and Ogunware, B. G. (2020). A novel multiderivative hybrids block

method for the numerical treatment of higher order ordinary differential equations”, AI Dar Research for

Sustainability, 4(2), 43-64. http://adrjs.aduc.ac.ae

Adeyeye, O. and Omar, Z (2018). New self-starting approach for solving special third order initial value problems. Int. J. Pure Appl. Math. 118(3), 511-517. doi: 10.12732/ijpam.v118i3.2

Adeyeye, O. and Omar, Z. (2019). Solving third order ordinary differential equation using one-step block method with four equidistance generalized hybrid points”, International Journal of Applied Mathematics, 49(2), 1-9.

Awoyemi, D. O. (2003). A P-stable linear multistep method for solving third order ordinary differential equations, Inter. J. Computer Math, 80(8), 85-91. doi/abs/10.1080/0020716031000079572

Awoyemi, D. O. and Idowu, M. O. (2005). A class hybrid collocation method for third order of order ordinary differential equations, International Journal Computational Mathematics, 82, 1287-1293. http://dx.doi.org/10.1080/00207160500112902

Butcher, J.C. (1965). A modified multistep method for the numerical integration of ordinary differential equations, Journal of the ACM, 12, 124-135. https://dl.acm.org/doi/10.1145/321250.321261

Fatunla, S. O. (1994). A Class of block methods for second order IVPs, International Journal of Computer Mathematics, 55, 119-133. http://doi/abs/10.1080/00207169508804368

Kayode, S. J. and Obaruha, F. O. (2017). Symmetric 2-step 4-point hybrid method for the solution of general

third order differential equations. Journal of Applied and Computational Mathematics. 6(2), 1-4.

http://doi:10.4172/2168-9679.1000348

Kuboye, J. O. and Omar, Z. (2015). Numerical solution of third order ordinary differential equations using a seven-step blocks method. International Journal of Mathematical Analysis, 9(15), 743-754. http://dx.doi.org/10.12988/ijma.2015.5125

Lambert, J. D. (1973). Computational methods in ordinary differential equations, Introductory Mathematics for Scientists and Engineers. Wiley.

Omar, Z. (1999). Parallel block methods for solving higher order ordinary differential equations directly. Ph.D. Thesis, Universiti Putra Malaysia (unpublished).

Omar, Z. and Suleiman, M. B. (1999). Solving second order ODEs directly using 2-point explicit block method, Prosiding Kolokium Kebangsaan Penginterasian Teknologi Dalam Sains Matematik. Universiti Sains Malaysia, 390-395.

Raymond, D. Pantuvu, T. P. Lydia, A. Sabo, J. and Ajia, R. (2023). Optimized half-step scheme third derivative methods for testing higher order initial value problems. African Scientific Reports, 2(76), 1-8.

Sabo, (2021). Single step block hybrid methods for direct solution of higher order initial value problems, M.SC. Faculty of sciences, Adamawa State University Mubi (Unpublished).

Sabo, J. Ayinde, A. M. Ishaq, A. A. and Ajileye, G. (2021). The simulation of one-step algorithms for treating higher order initial value problems. Asian Research Journal of Mathematics, 17(9), 34-47. https://www.sdiarticle4.com/review-history/75912

Sabo, J. Bakari, A. I. and Babuba, S. (2021). On the direct solution of high order initial value problems of ordinary differential equations on one- step third derivative block method, Dutse Journal of Pure and Applied Sciences, 7(2), 134-149.

Sharp, P. W. and Fine, J. M. (1992). Some Nyström pairs for the general second-order initial value problem, Journal of Computational and Applied Mathematics, 42(3), 279-291.https//:doi.org/10.1016/0377-0427(92)90081-8

Sunday, J. (2018). On the oscillation criteria and computation of third order oscillatory differential equations,

Communication in Mathematics and Applications, 6(4), 615-625. https//:doi.org/10.26713/cma.v9i4.968

Taparki, R. M. Gurah, D. and Simon, S. (2010). An implicit Runge-Kutta method for solution of third order initial value problem in ODE, int.J. Numer. Math., 6, 174-189.

Wend, D.V. (1969), Existence and uniqueness of solutions of ordinary differential equations. Proceedings of the American Mathematical Society, 27-33. https//:doi.org/10/1090/S0002-9939-1969-0245879-4

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Published

2024-03-20

How to Cite

Three-step Collocation Method for Solution of Third Derivative Initial Value Problem. (2024). International Journal of Development Mathematics (IJDM), 1(1). https://doi.org/10.62054/ijdm/0101.03

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