SOTAVerified

Anomaly Detection

Anomaly Detection is a binary classification identifying unusual or unexpected patterns in a dataset, which deviate significantly from the majority of the data. The goal of anomaly detection is to identify such anomalies, which could represent errors, fraud, or other types of unusual events, and flag them for further investigation.

[Image source]: GAN-based Anomaly Detection in Imbalance Problems

Papers

Showing 46264650 of 4856 papers

TitleStatusHype
Image Captioning and Classification of Dangerous Situations0
Unsupervised and Semi-supervised Anomaly Detection with LSTM Neural Networks0
Inductive Representation Learning in Large Attributed Graphs0
Bayesian Hypernetworks0
On the Runtime-Efficacy Trade-off of Anomaly Detection Techniques for Real-Time Streaming Data0
Machine Learning for Drug Overdose Surveillance0
Deep Learning for Unsupervised Insider Threat Detection in Structured Cybersecurity Data StreamsCode0
A Revisit of Sparse Coding Based Anomaly Detection in Stacked RNN FrameworkCode0
The model of an anomaly detector for HiLumi LHC magnets based on Recurrent Neural Networks and adaptive quantizationCode0
Joint Detection and Recounting of Abnormal Events by Learning Deep Generic Knowledge0
Catching Anomalous Distributed Photovoltaics: An Edge-based Multi-modal Anomaly Detection0
Practical Machine Learning for Cloud Intrusion Detection: Challenges and the Way Forward0
Unsupervised Machine Learning for Networking: Techniques, Applications and Research Challenges0
To Go or Not To Go? A Near Unsupervised Learning Approach For Robot Navigation0
Anomaly Detection for a Water Treatment System Using Unsupervised Machine Learning0
Ignoring Distractors in the Absence of Labels: Optimal Linear Projection to Remove False Positives During Anomaly Detection0
Anomaly Detection in Hierarchical Data Streams under Unknown Models0
Medical Image Analysis using Convolutional Neural Networks: A Review0
Abnormal Event Detection in Videos using Generative Adversarial Nets0
Anomaly Detection: Review and preliminary Entropy method tests0
Anomaly Detection in Wireless Sensor Networks0
Bayesian Learning of Clique Tree Structure0
Explaining Anomalies in Groups with Characterizing Subspace RulesCode0
Energy-based Models for Video Anomaly Detection0
Deep Learning for Medical Image Analysis0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1CPR-faster(TensorRT)FPS1,016Unverified
2CPR-fast(TensorRT)FPS362Unverified
3CPR(TensorRT)FPS130Unverified
4GLASSDetection AUROC99.9Unverified
5UniNetDetection AUROC99.9Unverified
6HETMMDetection AUROC99.8Unverified
7INP-Fomer ViT-L (model-unified multi-class)Detection AUROC99.8Unverified
8EfficientAD (early stopping)Detection AUROC99.8Unverified
9DDADDetection AUROC99.8Unverified
10PBASDetection AUROC99.8Unverified
#ModelMetricClaimedVerifiedStatus
1UniNetDetection AUROC99.8Unverified
2GLADDetection AUROC99.5Unverified
3UniNet(model-unified multi-class)Detection AUROC99.15Unverified
4INP-Former ViT-B (model-unified multi-class)Detection AUROC98.9Unverified
5DDADDetection AUROC98.9Unverified
6Dinomaly ViT-L (model-unified multi-class)Detection AUROC98.9Unverified
7DiffusionADDetection AUROC98.8Unverified
8GLASSDetection AUROC98.8Unverified
9TransFusionDetection AUROC98.7Unverified
10HETMMDetection AUROC98.1Unverified
#ModelMetricClaimedVerifiedStatus
1CSADAvg. Detection AUROC95.3Unverified
2PSADAvg. Detection AUROC94.9Unverified