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Towards Dependable Autonomous Systems Based on Bayesian Deep Learning Components

  • Fabio Arnez*
  • , Huascar Espinoza
  • , Ansgar Radermacher*
  • , Francois Terrier*
  • *Autor correspondiente de este trabajo

Producción científica: Capítulo del libro/informe/acta de congresoContribución a la conferenciarevisión exhaustiva

4 Citas (Scopus)

Resumen

As autonomous systems increasingly rely on Deep Neural Networks (DNN) to implement the navigation pipeline functions, uncertainty estimation methods have become paramount for estimating confidence in DNN predictions. Bayesian Deep Learning (BDL) offers a principled approach to model uncertainties in DNNs. However, in DNN-based systems, not all the components use uncertainty estimation methods and typically ignore the uncertainty propagation between them. This paper provides a method that considers the uncertainty and the interaction between BDL components to capture the overall system uncertainty. We study the effect of uncertainty propagation in a BDL-based system for autonomous aerial navigation. Experiments show that our approach allows us to capture useful uncertainty estimates while slightly improving the system's performance in its final task. In addition, we discuss the benefits, challenges, and implications of adopting BDL to build dependable autonomous systems.

Idioma originalInglés
Título de la publicación alojadaProceedings - 2022 18th European Dependable Computing Conference, EDCC 2022
EditorialInstitute of Electrical and Electronics Engineers Inc.
Páginas65-72
Número de páginas8
ISBN (versión digital)9781665474023
DOI
EstadoPublicada - 2022
Publicado de forma externa
Evento18th European Dependable Computing Conference, EDCC 2022 - Zaragoza, Espana
Duración: 12 sept 202215 sept 2022

Serie de la publicación

NombreProceedings - 2022 18th European Dependable Computing Conference, EDCC 2022

Conferencia

Conferencia18th European Dependable Computing Conference, EDCC 2022
País/TerritorioEspana
CiudadZaragoza
Período12/09/2215/09/22

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