A Noisy Elephant in the Room: Is Your out-of-Distribution Detector Robust to Label Noise?

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Abstract

The ability to detect unfamiliar or unexpected images is essential for safe deployment of computer vision systems. In the context of classification the task of detecting images outside of a model's training domain is known as out-of-distribution (OOD) detection. While there has been a growing research interest in developing post-hoc OOD detection methods there has been comparably little discussion around how these methods perform when the underlying classifier is not trained on a clean carefully curated dataset. In this work we take a closer look at 20 state-of-the-art OOD detection methods in the (more realistic) scenario where the labels used to train the underlying classifier are unreliable (e.g. crowd-sourced or web-scraped labels). Extensive experiments across different datasets noise types & levels architectures and checkpointing strategies provide insights into the effect of class label noise on OOD detection and show that poor separation between incorrectly classified ID samples vs. OOD samples is an overlooked yet important limitation of existing methods. Code: https://github.com/glhr/ood-labelnoise
OriginalsprogEngelsk
Titel2024 Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR)
Antal sider11
ForlagIEEE (Institute of Electrical and Electronics Engineers)
Publikationsdato16 sep. 2024
Sider22626-22636
ISBN (Trykt)979-8-3503-5301-3
ISBN (Elektronisk)979-8-3503-5300-6
DOI
StatusUdgivet - 16 sep. 2024
Begivenhed2024 IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR) - Seattle Convention Center, Seattle, USA
Varighed: 17 jun. 202421 jun. 2024
https://cvpr.thecvf.com/Conferences/2024

Konference

Konference2024 IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR)
LokationSeattle Convention Center
Land/OmrådeUSA
BySeattle
Periode17/06/202421/06/2024
Internetadresse

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