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Out of Distribution (OOD) Detection

Out of Distribution (OOD) Detection is the task of detecting instances that do not belong to the distribution the classifier has been trained on. OOD data is often referred to as "unseen" data, as the model has not encountered it during training.

OOD detection is typically performed by training a model to distinguish between in-distribution (ID) data, which the model has seen during training, and OOD data, which it has not seen. This can be done using a variety of techniques, such as training a separate OOD detector, or modifying the model's architecture or loss function to make it more sensitive to OOD data.

Papers

Showing 251275 of 629 papers

TitleStatusHype
Estimating Soft Labels for Out-of-Domain Intent Detection0
Humble your Overconfident Networks: Unlearning Overfitting via Sequential Monte Carlo Tempered Deep Ensembles0
EPA: Neural Collapse Inspired Robust Out-of-Distribution Detector0
Hyperbolic Metric Learning for Visual Outlier Detection0
Locally Most Powerful Bayesian Test for Out-of-Distribution Detection using Deep Generative Models0
Entropic Issues in Likelihood-Based OOD Detection0
Enhancing Trustworthiness in ML-Based Network Intrusion Detection with Uncertainty Quantification0
A Variational Information Theoretic Approach to Out-of-Distribution Detection0
Enhancing the Generalization for Intent Classification and Out-of-Domain Detection in SLU0
Contextualised Out-of-Distribution Detection using Pattern Identication0
A Metacognitive Approach to Out-of-Distribution Detection for Segmentation0
Enhancing Out-of-Distribution Detection with Extended Logit Normalization0
Enhancing Out-of-Distribution Detection with Multitesting-based Layer-wise Feature Fusion0
A Unified Approach Towards Active Learning and Out-of-Distribution Detection0
Neural Mean Discrepancy for Efficient Out-of-Distribution Detection0
Enhancing Outlier Knowledge for Few-Shot Out-of-Distribution Detection with Extensible Local Prompts0
Enhancing Near OOD Detection in Prompt Learning: Maximum Gains, Minimal Costs0
ConjNorm: Tractable Density Estimation for Out-of-Distribution Detection0
Enhancing Automated and Early Detection of Alzheimer's Disease Using Out-Of-Distribution Detection0
A Benchmark for Out of Distribution Detection in Point Cloud 3D Semantic Segmentation0
Learn what you can't learn: Regularized Ensembles for Transductive out-of-distribution detection0
Limitations of Out-of-Distribution Detection in 3D Medical Image Segmentation0
Energy Correction Model in the Feature Space for Out-of-Distribution Detection0
Energy-bounded Learning for Robust Models of Code0
Comprehensive OOD Detection Improvements0
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