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pro vyhledávání: '"Hu, Shoubo"'
Bayesian optimization (BO) is widely adopted in black-box optimization problems and it relies on a surrogate model to approximate the black-box response function. With the increasing number of black-box optimization tasks solved and even more to solv
Externí odkaz:
http://arxiv.org/abs/2308.04660
In a nonparametric setting, the causal structure is often identifiable only up to Markov equivalence, and for the purpose of causal inference, it is useful to learn a graphical representation of the Markov equivalence class (MEC). In this paper, we r
Externí odkaz:
http://arxiv.org/abs/2206.08531
Domain generalization aims to learn knowledge invariant across different distributions while semantically meaningful for downstream tasks from multiple source domains, to improve the model's generalization ability on unseen target domains. The fundam
Externí odkaz:
http://arxiv.org/abs/2106.00925
A probabilistic expert system emulates the decision-making ability of a human expert through a directional graphical model. The first step in building such systems is to understand data generation mechanism. To this end, one may try to decompose a mu
Externí odkaz:
http://arxiv.org/abs/2006.04877
Domain generalization (DG) aims to incorporate knowledge from multiple source domains into a single model that could generalize well on unseen target domains. This problem is ubiquitous in practice since the distributions of the target data may rarel
Externí odkaz:
http://arxiv.org/abs/1907.11216
The inference of the causal relationship between a pair of observed variables is a fundamental problem in science, and most existing approaches are based on one single causal model. In practice, however, observations are often collected from multiple
Externí odkaz:
http://arxiv.org/abs/1809.08568
Publikováno v:
Neural computation, 30(5), 1394-1425, 2018
Although nonstationary data are more common in the real world, most existing causal discovery methods do not take nonstationarity into consideration. In this letter, we propose a kernel embedding-based approach, ENCI, for nonstationary causal model i
Externí odkaz:
http://arxiv.org/abs/1809.08560
Publikováno v:
In Machine Learning with Applications 15 March 2022 7
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