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2024
Conference Paper
Title

The GOOSE Dataset for Perception in Unstructured Environments

Abstract
The potential for deploying autonomous systems can be significantly increased by improving the perception and interpretation of the environment. However, the development of deep learning-based techniques for autonomous systems in unstructured outdoor environments poses challenges due to limited data availability for training and testing. To address this gap, we present the German Outdoor and Offroad Dataset (GOOSE), a comprehensive dataset specifically designed for unstructured outdoor environments. The GOOSE dataset incorporates 10000 labeled pairs of images and point clouds, which are utilized to train a range of state-of-the-art segmentation models on both image and point cloud data. We open source the dataset, along with an ontology for unstructured terrain, as well as dataset standards and guidelines. This initiative aims to establish a common framework, enabling the seamless inclusion of existing datasets and a fast way to enhance the perception capabilities of various robots operating in unstructured environments. This framework also makes it possible to query data for specific weather conditions or sensor setups from a database in future. The dataset, pre-trained models for offroad perception, and additional documentation can be found at https://goose-dataset.de/.
Author(s)
Mortimer, Peter
Hagmanns, Raphael
Fraunhofer-Institut für Optronik, Systemtechnik und Bildauswertung IOSB  
Granero, Miguel
Fraunhofer-Institut für Optronik, Systemtechnik und Bildauswertung IOSB  
Lüttel, Thorsten
Petereit, Janko  
Fraunhofer-Institut für Optronik, Systemtechnik und Bildauswertung IOSB  
Wuensche, Hans-Joachim
Mainwork
IEEE International Conference on Robotics and Automation, ICRA 2024  
Conference
International Conference on Robotics and Automation 2024  
DOI
10.1109/icra57147.2024.10611298
Language
English
Fraunhofer-Institut für Optronik, Systemtechnik und Bildauswertung IOSB  
Keyword(s)
  • Point cloud compression

  • Training

  • Autonomous systems

  • Navigation

  • Semantic segmentation

  • Ontologies

  • Robot sensing systems

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