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Manfred Morari

4 accepted papers

2021

Deep Reinforcement Learning for Active Target Tracking

ICRA 2021poster

We solve active target tracking, one of the essential tasks in autonomous systems, using a deep reinforcement learning (RL) approach. In this problem, an autonomous agent is tasked with acquiring information about targets of interests using its on-board sensors. The classical challenges in this prob…

Cited by 8SourceScholar
2020

BayesRace: Learning to race autonomously using prior experience

CoRL 2020

Autonomous race cars require perception, estimation, planning, and control modules which work together asynchronously while driving at the limit of a vehicle’s handling capability. A fundamental challenge encountered in designing these software components lies in predicting the vehicle’s future stat

2019

Efficient and Accurate Estimation of Lipschitz Constants for Deep Neural Networks

NeurIPS 2019spotlight

Tight estimation of the Lipschitz constant for deep neural networks (DNNs) is useful in many applications ranging from robustness certification of classifiers to stability analysis of closed-loop systems with reinforcement learning controllers. Existing methods in the literature for estimating the L…

Cited by 581SourcePDFScholar
2019

Learning Q-network for Active Information Acquisition

IROS 2019poster

In this paper, we propose a novel Reinforcement Learning approach for solving the Active Information Acquisition problem, which requires an agent to choose a sequence of actions in order to acquire information about a process of interest using on-board sensors. The classic challenges in the informat…

Cited by 21SourceScholar