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Massimo Franceschetti

4 accepted papers

2022

Saving Stochastic Bandits from Poisoning Attacks via Limited Data Verification

AAAI 2022technical

This paper studies bandit algorithms under data poisoning attacks in a bounded reward setting. We consider a strong attacker model in which the attacker can observe both the selected actions and their corresponding rewards, and can contaminate the rewards with additive noise. We show that any bandit…

Cited by 16SourcePDFScholar
2022

Understanding the Limits of Poisoning Attacks in Episodic Reinforcement Learning

IJCAI 2022poster

To understand the security threats to reinforcement learning (RL) algorithms, this paper studies poisoning attacks to manipulate any order-optimal learning algorithm towards a targeted policy in episodic RL and examines the potential damage of two natural types of poisoning attacks, i.e., the manip…

Cited by 23SourcePDFScholar
2021

Associative Convolutional Layers

AISTATS 2021poster

We provide a general and easy to implement method for reducing the number of parameters of Convolutional Neural Networks (CNNs) during the training and inference phases. We introduce a simple trainable auxiliary neural network which can generate approximate versions of “slices” of the sets of convol…