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Jérôme Guzzi

9 accepted papers

2024

Resource-Aware Collaborative Monte Carlo Localization with Distribution Compression

IROS 2024poster

Global localization is essential in enabling robot autonomy, and collaborative localization is key for multi-robot systems, allowing for more efficient planning and execution of tasks. In this paper, we address the task of collaborative global localization under computational and communication const…

Cited by 1SourceScholar
2022

An Outlier Exposure Approach to Improve Visual Anomaly Detection Performance for Mobile Robots

RA-L 2022

We consider the problem of building visual anomaly detection systems for mobile robots. Standard anomaly detection models are trained using large datasets composed only of non-anomalous data. However, in robotics applications, it is often the case that (potentially very few) examples of anomalies ar

Cited by 16SourcecodeScholar
2022

Learning Visual Localization of a Quadrotor Using Its Noise as Self-Supervision

RA-L 2022

We introduce an approach to train neural network models for visual object localization using a small training set, labeled with ground truth object positions and a large unlabeled one. We assume that the object to be localized emits sound, which is perceived by a microphone rigidly affixed to the ca

Cited by 14SourceScholar
2020

Intuitive 3D Control of a Quadrotor in User Proximity with Pointing Gestures

ICRA 2020poster

We present an approach for controlling the position of a quadrotor in 3D space using pointing gestures; the task is difficult because it is in general ambiguous to infer where, along the pointing ray, the robot should go. We propose and validate a pragmatic solution based on a push button acting as…

Cited by 14SourceScholar
2020

Path Planning With Local Motion Estimations

RA-L 2020

We introduce a novel approach to long-range path planning that relies on a learned model to predict the outcome of local motions using possibly partial knowledge. The model is trained from a dataset of trajectories acquired in a self-supervised way. Sampling-based path planners use this component to

Cited by 46SourceScholar
2019

On the Impact of Uncertainty for Path Planning

ICRA 2019poster

We consider the problem of planning paths on graphs with some edges whose traversability is uncertain; for each uncertain edge, we are given a probability of being traversable (e.g., by a learned classifier). We categorize different interpretations of the problem that are meaningful for mobile robot…

Cited by 10SourceScholar
2019

Vision-based Control of a Quadrotor in User Proximity: Mediated vs End-to-End Learning Approaches

ICRA 2019poster

We consider the task of controlling a quadrotor to hover in front of a freely moving user, using input data from an onboard camera. On this specific task we compare two widespread learning paradigms: a mediated approach, which learns a high-level state from the input and then uses it for deriving co…

Cited by 17SourcecodeScholar
2015

Fair Multi-Target Tracking in Cooperative Multi-Robot systems

ICRA 2015poster

Cooperative Multi-Robot Observation of Multiple Moving Targets (CMOMMT) denotes a class of problems in which a set of autonomous mobile robots equipped with limited-range sensors are used to keep under observation a (possibly larger) set of mobile targets. Robots cooperatively plan their motion in o…

Cited by 32SourceScholar