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  4. Monocular visual scene understanding: Understanding multi-object traffic scenes
 
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2013
Journal Article
Title

Monocular visual scene understanding: Understanding multi-object traffic scenes

Abstract
Following recent advances in detection, context modeling, and tracking, scene understanding has been the focus of renewed interest in computer vision research. This paper presents a novel probabilistic 3D scene model that integrates state-of-the-art multiclass object detection, object tracking and scene labeling together with geometric 3D reasoning. Our model is able to represent complex object interactions such as inter-object occlusion, physical exclusion between objects, and geometric context. Inference in this model allows us to jointly recover the 3D scene context and perform 3D multi-object tracking from a mobile observer, for objects of multiple categories, using only monocular video as input. Contrary to many other approaches, our system performs explicit occlusion reasoning and is therefore capable of tracking objects that are partially occluded for extended periods of time, or objects that have never been observed to their full extent. In addition, we show that a joint scene tracklet model for the evidence collected over multiple frames substantially improves performance. The approach is evaluated for different types of challenging onboard sequences. We first show a substantial improvement to the state of the art in 3D multipeople tracking. Moreover, a similar performance gain is achieved for multiclass 3D tracking of cars and trucks on a challenging dataset.
Author(s)
Wojek, Christian
MPI Informatics
Walk, Stefan
ETH Zürich
Roth, Stefan
TU Darmstadt GRIS
Schindler, Konrad
ETH Zürich
Schiele, Bernt
MPI Informatics
Journal
IEEE Transactions on Pattern Analysis and Machine Intelligence  
DOI
10.1109/TPAMI.2012.174
Language
English
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Keyword(s)
  • scene understanding

  • object detection

  • object tracking

  • Forschungsgruppe Visual Inference (VINF)

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