Novelty Detection Via Blurring
Sung-Ik Choi, Sae-Young Chung
摘要
Conventional out-of-distribution (OOD) detection schemes based on variational autoencoder or Random Network Distillation (RND) are known to assign lower uncertainty to the OOD data than the target distribution. In this work, we discover that such conventional novelty detection schemes are also vulnerable to the blurred images. Based on the observation, we construct a novel RND-based OOD detector, SVD-RND, that utilizes blurred images during training. Our detector is simple, efficient in test time, and outperforms baseline OOD detectors in various domains. Further results show that SVD-RND learns a better target distribution representation than the baselines. Finally, SVD-RND combined with geometric transform achieves near-perfect detection accuracy in CelebA domain.
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- CSI: Novelty Detection via Contrastive Learning on Distributionally Shifted InstancesJihoon Tack, Sangwoo Mo, Jongheon Jeong, Jinwoo ShinNeurIPS 2020 · 被引用 755 次
- Detecting Out-of-Distribution Examples with Gram MatricesChandramouli Shama Sastry, Sageev OoreICML 2020 · 被引用 275 次
- Co-mining: Self-Supervised Learning for Sparsely Annotated Object DetectionTiancai Wang, Tong Yang, Jiale Cao, Xiangyu ZhangAAAI 2021 · 被引用 57 次
- Watermarking for Out-of-distribution DetectionQizhou Wang, Feng Liu, Yonggang Zhang, Jing Zhang 等NeurIPS 2022 · 被引用 44 次
- Projection Regret: Reducing Background Bias for Novelty Detection via Diffusion ModelsSungik Choi, Hankook Lee, Honglak Lee, Moontae LeeNeurIPS 2023 · 被引用 15 次
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