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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 101125 of 629 papers

TitleStatusHype
Uncertainty Estimation by Density Aware Evidential Deep LearningCode1
Enhancing Outlier Knowledge for Few-Shot Out-of-Distribution Detection with Extensible Local Prompts0
SOOD-ImageNet: a Large-Scale Dataset for Semantic Out-Of-Distribution Image Classification and Semantic SegmentationCode0
Dissecting Out-of-Distribution Detection and Open-Set Recognition: A Critical Analysis of Methods and BenchmarksCode1
TagOOD: A Novel Approach to Out-of-Distribution Detection via Vision-Language Representations and Class Center LearningCode0
Diffusion based Semantic Outlier Generation via Nuisance Awareness for Out-of-Distribution Detection0
Long-Tailed Out-of-Distribution Detection: Prioritizing Attention to TailCode0
Out-Of-Distribution Detection for Audio-visual Generalized Zero-Shot Learning: A General FrameworkCode0
Mitral Regurgitation Recognition based on Unsupervised Out-of-Distribution Detection with Residual Diffusion Amplification0
Diffusion for Out-of-Distribution Detection on Road Scenes and BeyondCode1
Towards Open-World Object-based Anomaly Detection via Self-Supervised Outlier SynthesisCode0
TTA-OOD: Test-time Augmentation for Improving Out-of-Distribution Detection in Gastrointestinal Vision0
LAPT: Label-driven Automated Prompt Tuning for OOD Detection with Vision-Language ModelsCode1
Improving Out-of-Distribution Detection by Combining Existing Post-hoc MethodsCode0
OpenCIL: Benchmarking Out-of-Distribution Detection in Class-Incremental LearningCode1
GalLoP: Learning Global and Local Prompts for Vision-Language ModelsCode2
Enhancing OOD Detection Using Latent DiffusionCode0
Combine and Conquer: A Meta-Analysis on Data Shift and Out-of-Distribution DetectionCode1
Unifying Unsupervised Graph-Level Anomaly Detection and Out-of-Distribution Detection: A BenchmarkCode2
SeTAR: Out-of-Distribution Detection with Selective Low-Rank ApproximationCode0
Exploiting Diffusion Prior for Out-of-Distribution Detection0
A Rate-Distortion View of Uncertainty QuantificationCode1
Rethinking the Evaluation of Out-of-Distribution Detection: A Sorites ParadoxCode0
FOOD: Facial Authentication and Out-of-Distribution Detection with Short-Range FMCW Radar0
Situation Monitor: Diversity-Driven Zero-Shot Out-of-Distribution Detection using Budding Ensemble Architecture for Object Detection0
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