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  4. Multimodal Panoptic Segmentation of 3D Point Clouds
 
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2023
Doctoral Thesis
Title

Multimodal Panoptic Segmentation of 3D Point Clouds

Abstract
The understanding and interpretation of complex 3D environments is a key challenge of autonomous driving. Lidar sensors and their recorded point clouds are particularly interesting for this challenge since they provide accurate 3D information about the environment. This work presents a multimodal approach based on deep learning for panoptic segmentation of 3D point clouds. It builds upon and combines the three key aspects multi view architecture, temporal feature fusion, and deep sensor fusion.
Thesis Note
Zugl.: Karlsruhe, Karlsruher Institut für Technologie (KIT), Diss., 2023
Author(s)
Dürr, Fabian
sl-0
Advisor(s)
Beyerer, Jürgen  
Fraunhofer-Institut für Optronik, Systemtechnik und Bildauswertung IOSB  
Publisher
KIT Scientific Publishing  
Open Access
File(s)
Download (16.43 MB)
Rights
CC BY-SA 4.0: Creative Commons Attribution-ShareAlike
DOI
10.5445/KSP/1000161158
10.24406/publica-2089
Language
English
Fraunhofer-Institut für Optronik, Systemtechnik und Bildauswertung IOSB  
Keyword(s)
  • Temporal Fusion

  • Sensor Fusion

  • Semantic Segmentation

  • Panoptic Segmentation

  • Zeitliche Fusion

  • Semantische Segmentierung

  • Panoptische Segmentierung

  • Sensorfusion

  • Deep Learning

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