An Efficient Numerical Simulation for Solving Dynamical Systems With Uncertainty

Author:

Ahmadian Ali1,Salahshour Soheil2,Chan Chee Seng3,Baleanu Dumitur45

Affiliation:

1. Department of Mathematics, Faculty of Science, University Putra Malaysia, Serdang 43400 UPM, Selangor, Malaysia e-mail:

2. Young Researchers and Elite Club, Mobarakeh Branch, Islamic Azad University, Mobarakeh 19166, Iran e-mail:

3. Centre of Image and Signal Processing, Faculty of Computer Science and Information Technology, University of Malaya, Kuala Lumpur 50603, Malaysia e-mail:

4. Department of Mathematics and Computer Science, Cankaya University, Balgat 06530, Ankara, Turkey;

5. Institute of Space Sciences, Magurele-Bucharest R 76911, Romania e-mail:

Abstract

In a wide range of real-world physical and dynamical systems, precise defining of the uncertain parameters in their mathematical models is a crucial issue. It is well known that the usage of fuzzy differential equations (FDEs) is a way to exhibit these possibilistic uncertainties. In this research, a fast and accurate type of Runge–Kutta (RK) methods is generalized that are for solving first-order fuzzy dynamical systems. An interesting feature of the structure of this technique is that the data from previous steps are exploited that reduce substantially the computational costs. The major novelty of this research is that we provide the conditions of the stability and convergence of the method in the fuzzy area, which significantly completes the previous findings in the literature. The experimental results demonstrate the robustness of our technique by solving linear and nonlinear uncertain dynamical systems.

Publisher

ASME International

Subject

Applied Mathematics,Mechanical Engineering,Control and Systems Engineering,Applied Mathematics,Mechanical Engineering,Control and Systems Engineering

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