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Managing Transition to Autonomous Vehicles Using Bayesian Fuzzy Logic

conference contribution
posted on 2024-11-03, 13:34 authored by Milan Todorovic, Milan SimicMilan Simic
Automotive industry is currently facing two global changes. There is a transition from the vehicles with internal combustion engines to the various hybrid and fully electrical vehicles. Another transition is the introduction of more intelligence and communication capabilities what creates a trend toward the development and application of fully autonomous vehicles. Both transitions are complex and decisions on the optimal pathways depend on the big data, but also on incomplete and inconsistent knowledge and expectations. Considering the fuzziness of the global business, social, ethical, and other domains, the paper presents results of the investigation and the application of fuzzy logic in a decision-making process of the transition to autonomous vehicles, conducted by car manufacturers. It considers the crisp and fuzzy information, outcomes, and actions and compares the values of additional information.

History

Related Materials

  1. 1.
    DOI - Is published in 10.1007/978-981-13-8566-7_38
  2. 2.
    ISBN - Is published in 9789811385650 (urn:isbn:9789811385650)

Volume

145

Start page

409

End page

421

Total pages

13

Outlet

Proceedings of KES-InMed-19 and KES-IIMSS-19 Conferences

Editors

Yen-Wei Chen, Alfred Zimmermann, Robert J. Howlett, Lakhmi C. Jain

Name of conference

KES-InMed-19 and KES-IIMSS-19: Innovation in Medicine and Healthcare Systems, and Multimedia

Publisher

Springer

Place published

Singapore

Start date

2019-06-17

End date

2019-06-19

Language

English

Copyright

© 2019, Springer Nature Singapore Pte Ltd.

Former Identifier

2006106514

Esploro creation date

2021-08-11

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