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REDOUBT: Duo Safety Validation for Autonomous Vehicle Motion Planning

Research output: Chapters, Conference Papers, Creative and Literary WorksRGC 32 - Refereed conference paper (with host publication)peer-review

Abstract

Safety validation, which assesses the safety of an autonomous system's motion planning decisions, is critical for the safe deployment of autonomous vehicles. Existing input validation techniques from other machine learning domains, such as image classification, face unique challenges in motion planning due to its contextual properties, including complex inputs and one-to-many mapping. Furthermore, current output validation methods in autonomous driving primarily focus on open-loop trajectory prediction, which is ill-suited for the closed-loop nature of motion planning. We introduce REDOUBT, the first systematic safety validation framework for autonomous vehicle motion planning that employs a duo mechanism, simultaneously inspecting input distributions and output uncertainty. REDOUBT identifies previously overlooked unsafe modes arising from the interplay of In-Distribution/Out-of-Distribution (OOD) scenarios and certain/uncertain planning decisions. We develop specialized solutions for both OOD detection via latent flow matching and decision uncertainty estimation via an energy-based approach. Our extensive experiments demonstrate that both modules outperform existing approaches, under both open-loop and closed-loop evaluation settings. Our codes are available at: https://github.com/sgNicola/Redoubt.
Original languageEnglish
Title of host publication39th Conference on Neural Information Processing Systems (NeurIPS 2025)
EditorsD. Belgrave , C. Zhang , H. Lin , R. Pascanu , P. Koniusz , M. Ghassemi , N. Chen
PublisherNeural Information Processing Systems (NeurIPS)
Number of pages24
Publication statusPublished - 2025
Event39th Annual Conference on Neural Information Processing Systems (NeurIPS 2025) - San Diego, United States
Duration: 2 Dec 20257 Dec 2025
https://neurips.cc/Conferences/2025

Publication series

NameAdvances in Neural Information Processing Systems
Volume38

Conference

Conference39th Annual Conference on Neural Information Processing Systems (NeurIPS 2025)
Abbreviated titleNeurIPS 2025
PlaceUnited States
CitySan Diego
Period2/12/257/12/25
Internet address

Bibliographical note

Research Unit(s) information for this publication is provided by the author(s) concerned.

Funding

The work is supported in part by Hong Kong Research Grant Council under CRF C1042-23GF and GRF 11216323.

RGC Funding Information

  • RGC-funded

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