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David Janz

10 accepted papers

2025

Eluder dimension: localise it!

NeurIPS 2025spotlight

We establish a lower bound on the eluder dimension in generalised linear model classes, showing that standard eluder dimension-based analysis cannot lead to first-order regret bounds. To address this, we introduce a localisation method for the eluder dimension; our analysis immediately recovers and…

Cited by 0SourceScholar
2024

Exploration via linearly perturbed loss minimisation

AISTATS 2024poster

We introduce \emph{exploration via linear loss perturbations} (EVILL), a randomised exploration method for structured stochastic bandit problems that works by solving for the minimiser of a linearly perturbed regularised negative log-likelihood function. We show that, for the case of generalised lin…

2024

Stochastic Gradient Descent for Gaussian Processes Done Right

ICLR 2024poster

As is well known, both sampling from the posterior and computing the mean of the posterior in Gaussian process regression reduces to solving a large linear system of equations. We study the use of stochastic gradient descent for solving this linear system, and show that when done right---by which we…

2023

Sampling from Gaussian Process Posteriors using Stochastic Gradient Descent

NeurIPS 2023oral

Gaussian processes are a powerful framework for quantifying uncertainty and for sequential decision-making but are limited by the requirement of solving linear systems. In general, this has a cubic cost in dataset size and is sensitive to conditioning. We explore stochastic gradient algorithms as a…

2023

Sampling-based inference for large linear models, with application to linearised Laplace

ICLR 2023poster

Large-scale linear models are ubiquitous throughout machine learning, with contemporary application as surrogate models for neural network uncertainty quantification; that is, the linearised Laplace method. Alas, the computational cost associated with Bayesian linear models constrains this method's…

2022

Adapting the Linearised Laplace Model Evidence for Modern Deep Learning

ICML 2022spotlight

The linearised Laplace method for estimating model uncertainty has received renewed attention in the Bayesian deep learning community. The method provides reliable error bars and admits a closed-form expression for the model evidence, allowing for scalable selection of model hyperparameters. In this…

Cited by 39SourcePDFScholar
2019

Learning to Drive in a Day

ICRA 2019poster

We demonstrate the first application of deep reinforcement learning to autonomous driving. From randomly initialised parameters, our model is able to learn a policy for lane following in a handful of training episodes using a single monocular image as input. We provide a general and easy to obtain r…

Cited by 956SourceScholar
2019

Successor Uncertainties: Exploration and Uncertainty in Temporal Difference Learning

NeurIPS 2019poster

Posterior sampling for reinforcement learning (PSRL) is an effective method for balancing exploration and exploitation in reinforcement learning. Randomised value functions (RVF) can be viewed as a promising approach to scaling PSRL. However, we show that most contemporary algorithms combining RVF w…

Cited by 76SourcePDFScholar