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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 125 of 267 papers

TitleStatusHype
Open-Set Image Tagging with Multi-Grained Text SupervisionCode4
Open World Object Detection: A SurveyCode2
Towards Open Vocabulary Learning: A SurveyCode2
BackMix: Regularizing Open Set Recognition by Removing Underlying Fore-Background PriorsCode1
COOOL: Challenge Of Out-Of-Label A Novel Benchmark for Autonomous DrivingCode1
Open-set recognition with long-tail sonar imagesCode1
Dissecting Out-of-Distribution Detection and Open-Set Recognition: A Critical Analysis of Methods and BenchmarksCode1
Exploring Diverse Representations for Open Set RecognitionCode1
Navigating Open Set Scenarios for Skeleton-based Action RecognitionCode1
Unified Classification and Rejection: A One-versus-All FrameworkCode1
Domain Adaptive Few-Shot Open-Set LearningCode1
OpenGCD: Assisting Open World Recognition with Generalized Category DiscoveryCode1
HomOpt: A Homotopy-Based Hyperparameter Optimization MethodCode1
Distill-SODA: Distilling Self-Supervised Vision Transformer for Source-Free Open-Set Domain Adaptation in Computational PathologyCode1
Learning Adversarial Semantic Embeddings for Zero-Shot Recognition in Open WorldsCode1
Uncovering the Hidden Dynamics of Video Self-supervised Learning under Distribution ShiftsCode1
Few-Shot Open-Set Learning for On-Device Customization of KeyWord Spotting SystemsCode1
In or Out? Fixing ImageNet Out-of-Distribution Detection EvaluationCode1
torchosr -- a PyTorch extension package for Open Set Recognition models evaluation in PythonCode1
Glocal Energy-based Learning for Few-Shot Open-Set RecognitionCode1
Progressive Open Space Expansion for Open-Set Model AttributionCode1
The Devil is in the Wrongly-classified Samples: Towards Unified Open-set RecognitionCode1
Open-Set Likelihood Maximization for Few-Shot LearningCode1
Open-Set Automatic Target RecognitionCode1
OpenAUC: Towards AUC-Oriented Open-Set RecognitionCode1
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