Self-Concordant Perturbations for Linear Bandits
Abstract
We consider the adversarial linear bandits setting and present a unified algorithmic framework that bridges Follow-the-Regularized-Leader (FTRL) and Follow-the-Perturbed-Leader (FTPL) methods, extending the known connection between them from the full-information setting. Within this framework, we introduce self-concordant perturbations, a family of probability distributions that mirror the role of self-concordant barriers previously employed in the FTRL-based SCRiBLe algorithm. Using this idea, we design a novel FTPL-based algorithm that combines self-concordant regularization with efficient stochastic exploration. Our approach achieves a regret of on both the -dimensional hypercube and the ball. On the ball, this matches the rate attained by SCRiBLe. For the hypercube, this represents a improvement over these methods and matches the optimal bound up to logarithmic factors.
Keywords
Cite
@article{arxiv.2510.24187,
title = {Self-Concordant Perturbations for Linear Bandits},
author = {Lucas Lévy and Jean-Lou Valeau and Arya Akhavan and Patrick Rebeschini},
journal= {arXiv preprint arXiv:2510.24187},
year = {2026}
}