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  4. A novel approach for automatic annotation of human actions in 3D point clouds for flexible collaborative tasks with industrial robots
 
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2023
Journal Article
Title

A novel approach for automatic annotation of human actions in 3D point clouds for flexible collaborative tasks with industrial robots

Abstract
Manual annotation for human action recognition with content semantics using 3D Point Cloud (3D-PC) in industrial environments consumes a lot of time and resources. This work aims to recognize, analyze, and model human actions to develop a framework for automatically extracting content semantics. Main Contributions of this work: 1. design a multi-layer structure of various DNN classifiers to detect and extract humans and dynamic objects using 3D-PC preciously, 2. empirical experiments with over 10 subjects for collecting datasets of human actions and activities in one industrial setting, 3. development of an intuitive GUI to verify human actions and its interaction activities with the environment, 4. design and implement a methodology for automatic sequence matching of human actions in 3D-PC. All these procedures are merged in the proposed framework and evaluated in one industrial Use-Case with flexible patch sizes. Comparing the new approach with standard methods has shown that the annotation process can be accelerated by 5.2 times through automation.
Author(s)
Krusche, Sebastian  
Fraunhofer-Institut für Werkzeugmaschinen und Umformtechnik IWU  
Al Naser, Ibrahim
Fraunhofer-Institut für Werkzeugmaschinen und Umformtechnik IWU  
Bdiwi, Mohamad  
Fraunhofer-Institut für Werkzeugmaschinen und Umformtechnik IWU  
Ihlenfeldt, Steffen  
Fraunhofer-Institut für Werkzeugmaschinen und Umformtechnik IWU  
Journal
Frontiers in robotics and AI  
Open Access
DOI
10.3389/frobt.2023.1028329
Additional link
Full text
Language
English
Fraunhofer-Institut für Werkzeugmaschinen und Umformtechnik IWU  
Keyword(s)
  • data labeling

  • deep learning

  • human activity recognition

  • point cloud annotation

  • robotics

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