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  4. Where to drive: free space detection with one fisheye camera
 
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2020
Conference Paper
Title

Where to drive: free space detection with one fisheye camera

Abstract
The development in the field of autonomous driving goes hand in hand with ever new developments in the field of image processing and machine learning methods. In order to fully exploit the advantages of deep learning, it is necessary to have sufficient labeled training data available. This is especially not the case for omnidirectional fisheye cameras. As a solution, we propose in this paper to use synthetic training data based on Unity3D. A five-pass algorithm is used to create a virtual fisheye camera. This synthetic training data is evaluated for the application of free space detection for different deep learning network architectures. The results indicate that synthetic fisheye images can be used in deep learning context.
Author(s)
Scheck, Tobias
TU Chemnitz
Mallandur, Adarsh
TU Chemnitz
Wiede, Christian  
Fraunhofer-Institut für Mikroelektronische Schaltungen und Systeme IMS  
Hirtz, Gangolf
TU Chemnitz
Mainwork
Twelfth International Conference on Machine Vision, ICMV 2019  
Conference
International Conference on Machine Vision (ICMV) 2019  
Open Access
DOI
10.1117/12.2556380
Additional link
Full text
Language
English
Fraunhofer-Institut für Mikroelektronische Schaltungen und Systeme IMS  
Keyword(s)
  • free space detection

  • fisheye camera

  • convolutional neural network (CNN)

  • synthetic data creation

  • Deep Learning

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