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One-Class Classification

One-class classification (OCC) algorithms serve a crucial role in scenarios where the negative class is either absent, poorly sampled, or not well defined. This unique situation presents a challenge for building effective classifiers, as they must delineate the class boundary solely based on knowledge of the positive class. OCC has found application in various research domains, including outlier/novelty detection and concept learning.

In the context of anomaly detection, OCC models are trained exclusively on "normal" data and are subsequently tasked with identifying anomalous patterns during inference.

A one-class classifier aims at capturing characteristics of training instances, in order to be able to distinguish between them and potential outliers to appear.

— Page 139, Learning from Imbalanced Data Sets, 2018.

Papers

Showing 2650 of 227 papers

TitleStatusHype
LLM meets Vision-Language Models for Zero-Shot One-Class Classification0
A Dual-Tier Adaptive One-Class Classification IDS for Emerging Cyberthreats0
usfAD Based Effective Unknown Attack Detection Focused IDS Framework0
Refining Myocardial Infarction Detection: A Novel Multi-Modal Composite Kernel Strategy in One-Class Classification0
Understanding Time Series Anomaly State Detection through One-Class Classification0
Trustworthiness of X Users: A One-Class Classification Approach0
Interleaving One-Class and Weakly-Supervised Models with Adaptive Thresholding for Unsupervised Video Anomaly DetectionCode1
Lp-Norm Constrained One-Class Classifier Combination0
Advancing Image Retrieval with Few-Shot Learning and Relevance FeedbackCode0
Label-Free Multivariate Time Series Anomaly DetectionCode1
Learning Polynomial Representations of Physical Objects with Application to Certifying Correct Packing Configurations0
OCGEC: One-class Graph Embedding Classification for DNN Backdoor DetectionCode0
Video Anomaly Detection via Spatio-Temporal Pseudo-Anomaly Generation : A Unified Approach0
Enhancing Sentiment Analysis Results through Outlier Detection Optimization0
Interpretable pap smear cell representation for cervical cancer screening0
A Coarse-to-Fine Pseudo-Labeling (C2FPL) Framework for Unsupervised Video Anomaly DetectionCode1
Deep Learning Predicts Biomarker Status and Discovers Related Histomorphology Characteristics for Low-Grade Glioma0
Efficient Training of One Class Classification-SVMs0
Credit Card Fraud Detection with Subspace Learning-based One-Class Classification0
Newton Method-based Subspace Support Vector Data Description0
One-Class Classification for Intrusion Detection on Vehicular Networks0
Convolutional autoencoder-based multimodal one-class classification0
Active anomaly detection based on deep one-class classification0
An Iterative Method for Unsupervised Robust Anomaly Detection Under Data Contamination0
A Perceptron-based Fine Approximation Technique for Linear Separation0
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