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Testing autonomous vehicles and AI: perspectives and challenges from cybersecurity, transparency, robustness and fairness (2403.14641v1)

Published 21 Feb 2024 in cs.CY, cs.AI, and cs.LG

Abstract: This study explores the complexities of integrating AI into Autonomous Vehicles (AVs), examining the challenges introduced by AI components and the impact on testing procedures, focusing on some of the essential requirements for trustworthy AI. Topics addressed include the role of AI at various operational layers of AVs, the implications of the EU's AI Act on AVs, and the need for new testing methodologies for Advanced Driver Assistance Systems (ADAS) and Automated Driving Systems (ADS). The study also provides a detailed analysis on the importance of cybersecurity audits, the need for explainability in AI decision-making processes and protocols for assessing the robustness and ethical behaviour of predictive systems in AVs. The paper identifies significant challenges and suggests future directions for research and development of AI in AV technology, highlighting the need for multidisciplinary expertise.

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Authors (12)
  1. David Fernández Llorca (21 papers)
  2. Ronan Hamon (5 papers)
  3. Henrik Junklewitz (9 papers)
  4. Kathrin Grosse (22 papers)
  5. Lars Kunze (40 papers)
  6. Patrick Seiniger (1 paper)
  7. Robert Swaim (1 paper)
  8. Nick Reed (1 paper)
  9. Alexandre Alahi (100 papers)
  10. Emilia Gómez (49 papers)
  11. Ignacio Sánchez (4 papers)
  12. Akos Kriston (1 paper)
Citations (1)
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