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Sarah Lucie Filippi

4 accepted papers

2025

Adjusting Model Size in Continual Gaussian Processes: How Big is Big Enough?

ICML 2025spotlight

Many machine learning models require setting a parameter that controls their size before training, e.g. number of neurons in DNNs, or inducing points in GPs. Increasing capacity typically improves performance until all the information from the dataset is captured. After this point, computational cos…

2025

QuACK: A Multipurpose Queuing Algorithm for Cooperative $k$-Armed Bandits

AISTATS 2025poster

This paper studies the cooperative stochastic $k$-armed bandit problem, where $m$ agents collaborate to identify the optimal action. Rather than adapting a specific single-agent algorithm, we propose a general-purpose black-box reduction that extends any single-agent algorithm to the multi-agent set…

Cited by 0SourceScholar
2025

Weighted Sum of Gaussian Process Latent Variable Models

AISTATS 2025poster

This work develops a Bayesian non-parametric approach to signal separation where the signals may vary according to latent variables. Our key contribution is to augment Gaussian Process Latent Variable Models (GPLVMs) for the case where each data point comprises the weighted sum of a known number of…

Cited by 0SourceScholar