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  4. SafeSens - Uncertainty Quantification of Complex Perception Systems
 
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2023
Conference Paper
Title

SafeSens - Uncertainty Quantification of Complex Perception Systems

Abstract
Safety testing and validation of complex autonomous systems requires a comprehensive and reliable analysis of performance and uncertainty. Especially uncertainty quantification plays a vital part in perception systems operating in open context environments that are neither foreseeable nor deterministic. Therefore, safety assurance based on field tests or corner cases alone is not a feasible option as effort and potential risks are high. Simulations offer a way out. They allow, for example, simulation of potentially hazardous situations, without any real danger, by systematically computing a variety of different (input) parameters quickly. In order to do so, simulations need accurate models to represent the complex system and in particular include uncertainty as inherent property to accurately reflect the interdependence between system components and the environment. We present an approach to creating perception architectures via suitable meta-models to enable a holistic safety analysis to quantify the uncertainties within the system. The models include aleatoric or epistemic uncertainty, dependent on the nature of the approximated component. A showcase of the proposed method highlights, how validation under uncertainty can be used for a camera-based object detection.
Author(s)
Kurzidem, Iwo  
Fraunhofer-Institut für Kognitive Systeme IKS  
Burton, Simon  
Fraunhofer-Institut für Kognitive Systeme IKS  
Schleiß, Philipp  
Fraunhofer-Institut für Kognitive Systeme IKS  
Mainwork
IEEE 26th International Conference on Intelligent Transportation Systems, ITSC 2023  
Project(s)
IKS-Aufbauprojekt  
Funder
Bayerisches Staatsministerium für Wirtschaft, Landesentwicklung und Energie  
Conference
International Conference on Intelligent Transportation Systems 2023  
File(s)
Download (608.42 KB)
Rights
Use according to copyright law
DOI
10.1109/ITSC57777.2023.10422256
10.24406/publica-2655
Language
English
Fraunhofer-Institut für Kognitive Systeme IKS  
Fraunhofer Group
Fraunhofer-Verbund IUK-Technologie  
Keyword(s)
  • uncertainty

  • computational modeling

  • object detection

  • safety

  • reliability

  • intelligent transportation systems

  • ITS

  • testing

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