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Zheyang Shen

5 accepted papers

2025

Prediction-Centric Uncertainty Quantification via MMD

AISTATS 2025poster

Deterministic mathematical models, such as those specified via differential equations, are a powerful tool to communicate scientific insight. However, such models are necessarily simplified descriptions of the real world. Generalised Bayesian methodologies have been proposed for inference with…

Cited by 0SourcecodeScholar
2021

Sparse Gaussian Processes Revisited: Bayesian Approaches to Inducing-Variable Approximations

AISTATS 2021poster

Variational inference techniques based on inducing variables provide an elegant framework for scalable posterior estimation in Gaussian process (GP) models. Besides enabling scalability, one of their main advantages over sparse approximations using direct marginal likelihood maximization is that the…