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Matteo Fabbri

4 accepted papers

2023

TrackFlow: Multi-Object tracking with Normalizing Flows

ICCV 2023poster

The field of multi-object tracking has recently seen a renewed interest in the good old schema of tracking-by-detection, as its simplicity and strong priors spare it from the complex design and painful babysitting of tracking-by-attention approaches. In view of this, we aim at extending tracking-by-…

Cited by 16PDFScholar
2021

MOTSynth: How Can Synthetic Data Help Pedestrian Detection and Tracking?

ICCV 2021poster

Deep learning-based methods for video pedestrian detection and tracking require large volumes of training data to achieve good performance. However, data acquisition in crowded public environments raises data privacy concerns -- we are not allowed to simply record and store data without the explicit…

Cited by 159PDFScholar
2020

Compressed Volumetric Heatmaps for Multi-Person 3D Pose Estimation

CVPR 2020poster

In this paper we present a novel approach for bottom-up multi-person 3D human pose estimation from monocular RGB images. We propose to use high resolution volumetric heatmaps to model joint locations, devising a simple and effective compression method to drastically reduce the size of this represent…

Cited by 123PDFcodeScholar
2018

Learning to Detect and Track Visible and Occluded Body Joints in a Virtual World

ECCV 2018poster

Multi-People Tracking in an open-world setting requires a special effort in precise detection. Moreover, temporal continuity in the detection phase gains more importance when scene cluttering introduces the challenging problems of occluded targets. For the purpose, we propose a deep network architec…

Cited by 226SourcePDFScholar