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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 301325 of 629 papers

TitleStatusHype
YolOOD: Utilizing Object Detection Concepts for Multi-Label Out-of-Distribution DetectionCode1
Block Selection Method for Using Feature Norm in Out-of-distribution DetectionCode1
Improving Training and Inference of Face Recognition Models via Random Temperature Scaling0
Rethinking Out-of-Distribution Detection From a Human-Centric Perspective0
Out-Of-Distribution Detection Is Not All You Need0
Residual Pattern Learning for Pixel-wise Out-of-Distribution Detection in Semantic SegmentationCode1
TrustGAN: Training safe and trustworthy deep learning models through generative adversarial networksCode0
Beyond Mahalanobis-Based Scores for Textual OOD Detection0
Multi-Level Knowledge Distillation for Out-of-Distribution Detection in TextCode1
Diffusion Denoising Process for Perceptron Bias in Out-of-distribution DetectionCode0
Towards Realistic Out-of-Distribution Detection: A Novel Evaluation Framework for Improving Generalization in OOD DetectionCode0
Demo Abstract: Real-Time Out-of-Distribution Detection on a Mobile RobotCode1
Heatmap-based Out-of-Distribution DetectionCode1
A Benchmark for Out of Distribution Detection in Point Cloud 3D Semantic Segmentation0
Estimating Soft Labels for Out-of-Domain Intent Detection0
GOOD-D: On Unsupervised Graph Out-Of-Distribution DetectionCode1
Interpreting deep learning output for out-of-distribution detection0
Understanding the properties and limitations of contrastive learning for Out-of-Distribution detection0
A Theoretical Study on Solving Continual LearningCode1
Exploring Structure-Wise Uncertainty for 3D Medical Image Segmentation0
On Out-of-Distribution Detection for Audio with Deep Nearest NeighborsCode0
Is Out-of-Distribution Detection Learnable?0
Uncertainty-based Meta-Reinforcement Learning for Robust Radar Tracking0
Falsehoods that ML researchers believe about OOD detection0
Enhancing Out-of-Distribution Detection in Natural Language Understanding via Implicit Layer EnsembleCode0
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