Igeood: An Information Geometry Approach to Out-of-Distribution Detection
Eduardo Dadalto Câmara Gomes, Florence Alberge, Pierre Duhamel, Pablo Piantanida
摘要
Reliable out-of-distribution (OOD) detection is fundamental to implementing safer modern machine learning (ML) systems. In this paper, we introduce Igeood, an effective method for detecting OOD samples. Igeood applies to any pre-trained neural network, works under various degrees of access to the ML model, does not require OOD samples or assumptions on the OOD data but can also benefit (if available) from OOD samples. By building on the geodesic (Fisher-Rao) distance between the underlying data distributions, our discriminator can combine confidence scores from the logits outputs and the learned features of a deep neural network. Empirically, we show that Igeood outperforms competing state-of-the-art methods on a variety of network architectures and datasets.
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引用它的顶会 Paper12
- RankFeat: Rank-1 Feature Removal for Out-of-distribution DetectionYue Song, Nicu Sebe, Wei WangNeurIPS 2022 · 被引用 76 次
- Beyond Mahalanobis Distance for Textual OOD DetectionPierre Colombo, Eduardo Dadalto Câmara Gomes, Guillaume Staerman, Nathan Noiry 等NeurIPS 2022 · 被引用 24 次
- Conjugated Semantic Pool Improves OOD Detection with Pre-trained Vision-Language ModelsMengyuan Chen, Junyu Gao, Changsheng XuNeurIPS 2024 · 被引用 21 次
- Unsupervised Layer-Wise Score Aggregation for Textual OOD DetectionMaxime Darrin, Guillaume Staerman, Eduardo Dadalto Câmara Gomes, Jackie C. K. Cheung 等AAAI 2024 · 被引用 18 次
- Anomaly Detection with Score Distribution DiscriminationMinqi Jiang, Songqiao Han, Hailiang HuangKDD 2023 · 被引用 17 次
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