Detecting Semantic Anomalies
Faruk Ahmed, Aaron C. Courville
摘要
We critically appraise the recent interest in out-of-distribution (OOD) detection and question the practical relevance of existing benchmarks. While the currently prevalent trend is to consider different datasets as OOD, we argue that out-distributions of practical interest are ones where the distinction is semantic in nature for a specified context, and that evaluative tasks should reflect this more closely. Assuming a context of object recognition, we recommend a set of benchmarks, motivated by practical applications. We make progress on these benchmarks by exploring a multi-task learning based approach, showing that auxiliary objectives for improved semantic awareness result in improved semantic anomaly detection, with accompanying generalization benefits.
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引用它的顶会 Paper17
- A Unified Model for Multi-class Anomaly DetectionZhiyuan You, Lei Cui, Yujun Shen, Kai Yang 等NeurIPS 2022 · 被引用 585 次
- Detecting Out-of-Distribution Examples with Gram MatricesChandramouli Shama Sastry, Sageev OoreICML 2020 · 被引用 275 次
- Learning Semantic Context from Normal Samples for Unsupervised Anomaly DetectionXudong Yan, Huaidong Zhang, Xuemiao Xu, Xiaowei Hu 等AAAI 2021 · 被引用 210 次
- A Closer Look at AUROC and AUPRC under Class ImbalanceMatthew B. A. McDermott, Haoran Zhang, Lasse Hyldig Hansen, Giovanni Angelotti 等NeurIPS 2024 · 被引用 191 次
- Mean-Shifted Contrastive Loss for Anomaly DetectionTal Reiss, Yedid HoshenAAAI 2023 · 被引用 153 次
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