Andrzej Bedychaj

dblp:242/7759 · DBLP profile ↗
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4ranked-venue papers
2as first author
4since 2021 · last 2024
0000-0001-9416-3991ORCID · corroborated

Domains — the database's venue-derived domains; a paper can count in several

Artificial intelligence and machine learning · 3 · 1 first-author · 3 since 2021Databases, data management, data science and information retrieval · 3 · 2 first-author · 3 since 2021
YearPublicationVenuePosition
2024 StyleAutoEncoder for Manipulating Image Attributes Using Pre-trained StyleGAN
Andrzej Bedychaj, Jacek Tabor, Marek Smieja
PAKDD (2)1
2022 Nonlinear Weighted Independent Component Analysis
Andrzej Bedychaj, Przemyslaw Spurek, Aleksandra Nowak 0001, Jacek Tabor
IPMU (2)1
2022 On the Relationship Between Disentanglement and Multi-task Learning
Lukasz Maziarka, Aleksandra Nowak 0001, Maciej Wolczyk, Andrzej Bedychaj
ECML/PKDD (1)4
2021 Non-Gaussian Gaussian Processes for Few-Shot Regression
abstract
Gaussian Processes (GPs) have been widely used in machine learning to model distributions over functions, with applications including multi-modal regression, time-series prediction, and few-shot learning. GPs are particularly useful in the last application since they rely on Normal distributions and enable closed-form computation of the posterior probability function. Unfortunately, because the resulting posterior is not flexible enough to capture complex distributions, GPs assume high similarity between subsequent tasks - a requirement rarely met in real-world conditions. In this work, we address this limitation by leveraging the flexibility of Normalizing Flows to modulate the posterior predictive distribution of the GP. This makes the GP posterior locally non-Gaussian, therefore we name our method Non-Gaussian Gaussian Processes (NGGPs). More precisely, we propose an invertible ODE-based mapping that operates on each component of the random variable vectors and shares the parameters across all of them. We empirically tested the flexibility of NGGPs on various few-shot learning regression datasets, showing that the mapping can incorporate context embedding information to model different noise levels for periodic functions. As a result, our method shares the structure of the problem between subsequent tasks, but the contextualization allows for adaptation to dissimilarities. NGGPs outperform the competing state-of-the-art approaches on a diversified set of benchmarks and applications.
Marcin Sendera, Jacek Tabor, Aleksandra Nowak 0001, Andrzej Bedychaj, Massimiliano Patacchiola, Tomasz Trzcinski, Przemyslaw Spurek, Maciej Zieba
NeurIPS4