Abstract:
Sufficient conditions are given for the existence of solutions of impulsive boundary value problems for singular nonlinear fractional differential systems. We allow the nonlinearities
Funding statement: Funding: This work was supported by the Natural Science Foundation of Guangdong Province (No:S2011010001900) and the Foundation for High-level Talents in Guangdong Higher Education Project.
Acknowledgements:
The author would like to thank the referee and the editors for their careful reading and some useful comments on improving the presentation of this paper.
References
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©2016 by De Gruyter
Articles in the same Issue
- Frontmatter
- Existence of Solutions of a New Class of Impulsive Initial Value Problems of Singular Nonlinear Fractional Differential Systems
- Lump-Type Solutions to the (3+1)-Dimensional Jimbo-Miwa Equation
- Comparison of Subcritical and Supercritical Flow Patterns Within Triangular Channels Along the Side Weir
- Existence of Solutions for Schrödinger–Kirchhoff Type Problems Involving Nonlocal Elliptic Operators
- Application of Fractional Techniques in the Analysis of Forest Fires
- Discharge Coefficient of Rectangular Side Weirs on Circular Channels
- Backward Bifurcation in a Fractional-Order SIRS Epidemic Model with a Nonlinear Incidence Rate
- Auxiliary Equation Method for Fractional Differential Equations with Modified Riemann–Liouville Derivative
Articles in the same Issue
- Frontmatter
- Existence of Solutions of a New Class of Impulsive Initial Value Problems of Singular Nonlinear Fractional Differential Systems
- Lump-Type Solutions to the (3+1)-Dimensional Jimbo-Miwa Equation
- Comparison of Subcritical and Supercritical Flow Patterns Within Triangular Channels Along the Side Weir
- Existence of Solutions for Schrödinger–Kirchhoff Type Problems Involving Nonlocal Elliptic Operators
- Application of Fractional Techniques in the Analysis of Forest Fires
- Discharge Coefficient of Rectangular Side Weirs on Circular Channels
- Backward Bifurcation in a Fractional-Order SIRS Epidemic Model with a Nonlinear Incidence Rate
- Auxiliary Equation Method for Fractional Differential Equations with Modified Riemann–Liouville Derivative