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  4. Landscape of AI Safety Concerns - A Methodology to Support Safety Assurance for AI-Based Autonomous Systems
 
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2024
Conference Paper
Title

Landscape of AI Safety Concerns - A Methodology to Support Safety Assurance for AI-Based Autonomous Systems

Abstract
Artificial Intelligence (AI) has emerged as a key technology, driving advancements across a range of applications. Its integration into modern autonomous systems requires assuring safety. However, the challenge of assuring safety in systems that incorporate AI components is substantial. The lack of concrete specifications, and also the complexity of both the operational environment and the system itself, leads to various aspects of uncertain behavior and complicates the derivation of convincing evidence for system safety. Nonetheless, scholars proposed to thoroughly analyze and mitigate AI-specific insufficiencies, so-called AI safety concerns, which yields essential evidence supporting a convincing assurance case. In this paper, we build upon this idea and propose the so-called Landscape of AI Safety Concerns, a novel methodology designed to support the creation of safety assurance cases for AI-based systems by systematically demonstrating the absence of AI safety concerns. The methodology’s application is illustrated through a case study involving a driverless regional train, demonstrating its practicality and effectiveness.
Author(s)
Schnitzer, Ronald
Technische Universität München  
Kilian, Lennart
Siemens AG
Roessner, Simon
Siemens AG  
Theodorou, Konstantinos
Fraunhofer-Institut für Kognitive Systeme IKS  
Zillner, Sonja
Technische Universität München  
Mainwork
ICSRS 2024, 8th International Conference on System Reliability and Safety  
Project(s)
safe.trAIn
Funder
Bundesministerium für Wirtschaft und Klimaschutz  
Conference
International Conference on System Reliability and Safety 2024  
DOI
10.1109/ICSRS63046.2024.10927556
Language
English
Fraunhofer-Institut für Kognitive Systeme IKS  
Fraunhofer Group
Fraunhofer-Verbund IUK-Technologie  
Keyword(s)
  • artificial intelligence

  • AI

  • safety

  • AI safety

  • assurance

  • assurance case

  • safety assurance

  • autonomous systems

  • machine learning

  • ML

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