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Alexander Mey

5 accepted papers

2020

Semi-supervised learning, causality, and the conditional cluster assumption

UAI 2020poster

While the success of semi-supervised learning (SSL) is still not fully understood, Schölkopf et al. (2012) have established a link to the principle of independent causal mechanisms. They conclude that SSL should be impossible when predicting a target variable from its causes, but possible when predi…

Cited by 33SourcePDFScholar
2019

Semi-Generative Modelling: Covariate-Shift Adaptation with Cause and Effect Features

AISTATS 2019poster

Current methods for covariate-shift adaptation use unlabelled data to compute importance weights or domain-invariant features, while the final model is trained on labelled data only. Here, we consider a particular case of covariate shift which allows us also to learn from unlabelled data, that is, c…