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Open Set Learning

Traditional supervised learning aims to train a classifier in the closed-set world, where training and test samples share the same label space. Open set learning (OSL) is a more challenging and realistic setting, where there exist test samples from the classes that are unseen during training. Open set recognition (OSR) is the sub-task of detecting test samples which do not come from the training.

Papers

Showing 126150 of 267 papers

TitleStatusHype
Representation learning with function call graph transformations for malware open set recognition0
Rethinking Few-Shot Class-Incremental Learning with Open-Set Hypothesis in Hyperbolic Geometry0
Revealing the Two Sides of Data Augmentation: An Asymmetric Distillation-based Win-Win Solution for Open-Set Recognition0
Know Your Space: Inlier and Outlier Construction for Calibrating Medical OOD Detectors0
ROG_PL: Robust Open-Set Graph Learning via Region-Based Prototype Learning0
M-Tuning: Prompt Tuning with Mitigated Label Bias in Open-Set Scenarios0
Self-supervised Detransformation Autoencoder for Representation Learning in Open Set Recognition0
Semi-supervised Vocabulary-informed Learning0
Solution for OOD-CV Workshop SSB Challenge 2024 (Open-Set Recognition Track)0
Spatial-Temporal Attention Network for Open-Set Fine-Grained Image Recognition0
Specialized Support Vector Machines for Open-set Recognition0
Structure-based Anomaly Detection and Clustering0
Subject-Independent Brain-Computer Interfaces with Open-Set Subject Recognition0
Synthetic Unknown Class Learning for Learning Unknowns0
Taking Class Imbalance Into Account in Open Set Recognition Evaluation0
Teacher-Explorer-Student Learning: A Novel Learning Method for Open Set Recognition0
Textbook Question Answering with Multi-modal Context Graph Understanding and Self-supervised Open-set Comprehension0
The Importance of Metric Learning for Robotic Vision: Open Set Recognition and Active Learning0
Toward an Efficient Multi-class Classification in an Open Universe0
Towards Accurate Open-Set Recognition via Background-Class Regularization0
Towards Open-set Gesture Recognition via Feature Activation Enhancement and Orthogonal Prototype Learning0
Uncertainty-inspired Open Set Learning for Retinal Anomaly Identification0
Understanding Open-Set Recognition by Jacobian Norm and Inter-Class Separation0
Unlocking Transfer Learning for Open-World Few-Shot Recognition0
Video Anomaly Detection via Spatio-Temporal Pseudo-Anomaly Generation : A Unified Approach0
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