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Wang Hongqiao
Wang Hongqiao
Verified email at csu.edu.cn
Title
Cited by
Cited by
Year
Adaptive Gaussian process approximation for Bayesian inference with expensive likelihood functions
H Wang, J Li
Neural computation 30 (11), 3072-3094, 2018
612018
Gaussian process surrogates for failure detection: A Bayesian experimental design approach
H Wang, G Lin, J Li
Journal of Computational Physics 313, 247-259, 2016
292016
Explicit estimation of derivatives from data and differential equations by Gaussian process regression
H Wang, X Zhou
International Journal for Uncertainty Quantification 11 (4), 2021
122021
Influence study of solving correction forces caused by fitting errors for thin meniscus mirror
H Wang, B Fan, Y Wu, H Liu, R Liu, F Yan
JOSA A 30 (11), 2409-2414, 2013
42013
Maximum conditional entropy hamiltonian monte carlo sampler
T Yu, H Wang, J Li
SIAM Journal on Scientific Computing 43 (5), A3607-A3626, 2021
32021
Active learning for transition state calculation
S Gu, H Wang, X Zhou
J. Sci. Comput 93, 78, 2022
22022
Inverse Gaussian Process regression for likelihood-free inference
H Wang, Z Ao, T Yu, J Li
arXiv preprint arXiv:2102.10583, 2021
22021
Sampling-based adaptive design strategy for failure probability estimation
T Guo, H Wang, J Li, H Wang
Reliability Engineering & System Safety 241, 109664, 2024
12024
Active Learning for Saddle Point Calculation
S Gu, H Wang, X Zhou
Journal of Scientific Computing 93 (3), 78, 2022
12022
Simulation-based transition density approximation for the inference of SDE models
X Cai, J Yang, Z Li, H Wang
arXiv preprint arXiv:2401.02529, 2023
2023
Anderson Accelerated Gauss-Newton-guided deep learning for nonlinear inverse problems with Application to Electrical Impedance Tomography
Q Zhou, G Xu, Z Wen, H Wang
arXiv preprint arXiv:2312.12693, 2023
2023
Adaptive design of experiment via normalizing flows for failure probability estimation
H Wang, T Guo, J Li, H Wang
arXiv preprint arXiv:2302.06837, 2023
2023
Inferring the unknown parameters in differential equation by Gaussian process regression with constraint
Y Zhou, Q Zhou, H Wang
Computational and Applied Mathematics 41 (6), 280, 2022
2022
Control variates with a dimension reduced Bayesian Monte Carlo sampler
X Cai, J Xiong, H Wang, J Li
International Journal for Uncertainty Quantification 12 (4), 2022
2022
Maximizing conditional entropy of Hamiltonian Monte Carlo sampler
T Yu, H Wang, J Li
arXiv preprint arXiv:1910.05275, 2019
2019
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