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Yongbin Ge
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2020 – today
- 2024
- [j21]Shuaikang Wang, Yongbin Ge, Sheng'en Liu:
Numerical solutions of the nonlinear wave equations with energy-preserving sixth-order finite difference schemes. Comput. Math. Appl. 168: 100-119 (2024) - [j20]Sheng'en Liu, Yongbin Ge, Shuaikang Wang:
Conservative higher-order finite difference scheme for the coupled nonlinear Schrödinger equations. Commun. Nonlinear Sci. Numer. Simul. 131: 107797 (2024) - 2023
- [j19]Tingfu Ma, Bin Lan, Yongbin Ge, Lili Wu:
Higher-Order Blended Compact Difference Scheme on Nonuniform Grids for the 3D Steady Convection-Diffusion Equation. Axioms 12(7): 651 (2023) - [j18]Fang Tian, Mingjing Wang, Yongbin Ge:
High-Effectiveness and -Accuracy Difference Scheme Based on Nonuniform Grids for Solving Convection-Diffusion Equations with Boundary Layers. Axioms 12(11): 1056 (2023) - [j17]Yu Wu, Yongbin Ge, Lin Zhang:
A high-order compact LOD method for solving the three-dimensional reaction-diffusion equation with nonlinear reaction term. Comput. Appl. Math. 42(1) (2023) - [j16]Zhi Wang, Yongbin Ge, Hai-Wei Sun:
High-Order Compact Finite Difference Methods for Solving the High-Dimensional Helmholtz Equations. Comput. Methods Appl. Math. 23(2): 491-516 (2023) - [j15]Yunzhi Jiang, Yongbin Ge:
An explicit high-order compact finite difference scheme for the three-dimensional acoustic wave equation with variable speed of sound. Int. J. Comput. Math. 100(2): 321-341 (2023) - [j14]Lin Zhang, Yongbin Ge, Xiaojia Yang, Yagang Zhang:
High accuracy compact difference and multigrid methods for two-dimensional time-dependent nonlinear advection-diffusion-reaction problems. Int. J. Comput. Math. 100(7): 1552-1579 (2023) - [j13]Miaomiao Yang, Wentao Ma, Yongbin Ge:
Barycentric rational interpolation method of the Helmholtz equation with Irregular Domain. Math. Model. Anal. 28(2): 330-351 (2023) - 2022
- [j12]Zhi Wang, Yongbin Ge, Hai-Wei Sun, Tao Sun:
Sixth-order quasi-compact difference schemes for 2D and 3D Helmholtz equations. Appl. Math. Comput. 431: 127347 (2022) - [j11]Jianying Wei, Yongbin Ge, Yan Wang:
High-Order Compact Difference Method for Solving Two- and Three-Dimensional Unsteady Convection Diffusion Reaction Equations. Axioms 11(3): 111 (2022) - [j10]Yu Wu, Yongbin Ge, Lin Zhang:
A high-order compact LOD difference method for solving the two-dimensional diffusion reaction equation with nonlinear source term. J. Comput. Sci. 62: 101748 (2022) - 2021
- [j9]Bo Hou, Yongbin Ge:
High-order compact LOD methods for solving high-dimensional advection equations. Comput. Appl. Math. 40(3) (2021) - [j8]Xiaojia Yang, Yongbin Ge, Bin Lan:
A class of compact finite difference schemes for solving the 2D and 3D Burgers' equations. Math. Comput. Simul. 185: 510-534 (2021) - [j7]Tianlong Ma, Lin Zhang, Fujun Cao, Yongbin Ge:
A Special Multigrid Strategy on Non-Uniform Grids for Solving 3D Convection-Diffusion Problems with Boundary/Interior Layers. Symmetry 13(7): 1123 (2021)
2010 – 2019
- 2019
- [j6]Xiaojia Yang, Yongbin Ge, Lin Zhang:
A class of high-order compact difference schemes for solving the Burgers' equations. Appl. Math. Comput. 358: 394-417 (2019) - 2017
- [j5]Fujun Cao, Yongbin Ge, Hai-Wei Sun:
Partial semi-coarsening multigrid method based on the HOC scheme on nonuniform grids for the convection-diffusion problems. Int. J. Comput. Math. 94(12): 2356-2372 (2017) - 2013
- [j4]Yongbin Ge, Fujun Cao, Jun Zhang:
A transformation-free HOC scheme and multigrid method for solving the 3D Poisson equation on nonuniform grids. J. Comput. Phys. 234: 199-216 (2013) - 2011
- [j3]Yongbin Ge, Fujun Cao:
Multigrid method based on the transformation-free HOC scheme on nonuniform grids for 2D convection diffusion problems. J. Comput. Phys. 230(10): 4051-4070 (2011) - 2010
- [j2]Yuezhen Ma, Yongbin Ge:
A high order finite difference method with Richardsonextrapolation for 3D convection diffusion equation. Appl. Math. Comput. 215(9): 3408-3417 (2010) - [j1]Yongbin Ge:
Multigrid method and fourth-order compact difference discretization scheme with unequal meshsizes for 3D poisson equation. J. Comput. Phys. 229(18): 6381-6391 (2010)
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