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Leijie Qiao
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2020 – today
- 2024
- [j20]Leijie Qiao, Yubin Yan:
Tempered nonlocal integrodifferential equations with nonsmooth solution data. Appl. Math. Lett. 158: 109213 (2024) - [j19]Ruru Wang, Yubin Yan, Ahmed S. Hendy, Leijie Qiao:
BDF2 ADI orthogonal spline collocation method for the fractional integro-differential equations of parabolic type in three dimensions. Comput. Math. Appl. 155: 126-141 (2024) - [j18]Ruru Wang, Yanping Chen, Leijie Qiao:
An efficient variable step numerical method for the three-dimensional nonlinear evolution equation. J. Appl. Math. Comput. 70(6): 6131-6163 (2024) - 2023
- [j17]Bo Tang, Leijie Qiao, Da Xu:
An ADI orthogonal spline collocation method for a new two-dimensional distributed-order fractional integro-differential equation. Comput. Math. Appl. 132: 104-118 (2023) - [j16]Qiong Huang, Leijie Qiao, Bo Tang:
High-order orthogonal spline collocation ADI scheme for a new complex two-dimensional distributed-order fractional integro-differential equation with two weakly singular kernels. Int. J. Comput. Math. 100(4): 703-721 (2023) - [j15]Leijie Qiao, Wenlin Qiu, Da Xu:
Error analysis of fast L1 ADI finite difference/compact difference schemes for the fractional telegraph equation in three dimensions. Math. Comput. Simul. 205: 205-231 (2023) - [j14]Leijie Qiao, Wenlin Qiu, Da Xu:
Crank-Nicolson ADI finite difference/compact difference schemes for the 3D tempered integrodifferential equation associated with Brownian motion. Numer. Algorithms 93(3): 1083-1104 (2023) - 2022
- [j13]Leijie Qiao, Bo Tang:
An accurate, robust, and efficient finite difference scheme with graded meshes for the time-fractional Burgers' equation. Appl. Math. Lett. 128: 107908 (2022) - [j12]Leijie Qiao, Jing Guo, Wenlin Qiu:
Fast BDF2 ADI methods for the multi-dimensional tempered fractional integrodifferential equation of parabolic type. Comput. Math. Appl. 123: 89-104 (2022) - [j11]Jun Zhou, Da Xu, Wenlin Qiu, Leijie Qiao:
An accurate, robust, and efficient weak Galerkin finite element scheme with graded meshes for the time-fractional quasi-linear diffusion equation. Comput. Math. Appl. 124: 188-195 (2022) - [j10]Leijie Qiao, Bo Tang, Da Xu, Wenlin Qiu:
High-order orthogonal spline collocation method with graded meshes for two-dimensional fractional evolution integro-differential equation. Int. J. Comput. Math. 99(7): 1305-1324 (2022) - [j9]Leijie Qiao, Da Xu, Zhibo Wang:
Orthogonal spline collocation method for the two-dimensional time fractional mobile-immobile equation. J. Appl. Math. Comput. 68(5): 3199-3217 (2022) - [j8]Leijie Qiao, Da Xu, Bo Tang, Jun Zhou:
Fast ADI difference/compact difference schemes for the nonlocal evolution equation with weakly singular kernels in three dimensions. Math. Comput. Simul. 194: 329-347 (2022) - 2021
- [j7]Leijie Qiao, Da Xu:
A fast ADI orthogonal spline collocation method with graded meshes for the two-dimensional fractional integro-differential equation. Adv. Comput. Math. 47(5): 64 (2021) - [j6]Leijie Qiao, Wenlin Qiu, Da Xu:
A second-order ADI difference scheme based on non-uniform meshes for the three-dimensional nonlocal evolution problem. Comput. Math. Appl. 102: 137-145 (2021)
2010 – 2019
- 2019
- [j5]Leijie Qiao, Da Xu, Zhibo Wang:
An ADI difference scheme based on fractional trapezoidal rule for fractional integro-differential equation with a weakly singular kernel. Appl. Math. Comput. 354: 103-114 (2019) - [j4]Leijie Qiao, Da Xu:
BDF ADI orthogonal spline collocation scheme for the fractional integro-differential equation with two weakly singular kernels. Comput. Math. Appl. 78(12): 3807-3820 (2019) - 2018
- [j3]Leijie Qiao, Da Xu:
Orthogonal spline collocation scheme for the multi-term time-fractional diffusion equation. Int. J. Comput. Math. 95(8): 1478-1493 (2018) - [j2]Leijie Qiao, Da Xu:
Compact Alternating Direction Implicit Scheme for Integro-Differential Equations of Parabolic Type. J. Sci. Comput. 76(1): 565-582 (2018) - 2010
- [j1]Yinggan Tang, Leijie Qiao, Xinping Guan:
Identification of Wiener model using step signals and particle swarm optimization. Expert Syst. Appl. 37(4): 3398-3404 (2010)
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