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 31013125 of 4856 papers

TitleStatusHype
Detection of Fights in Videos: A Comparison Study of Anomaly Detection and Action Recognition0
PAC-Wrap: Semi-Supervised PAC Anomaly Detection0
Anomaly Detection for Multivariate Time Series on Large-scale Fluid Handling Plant Using Two-stage Autoencoder0
A Subspace Method for Time Series Anomaly Detection in Cyber-Physical SystemsCode0
Anomaly detection using prediction error with Spatio-Temporal Convolutional LSTMCode0
Unsupervised Features Ranking via Coalitional Game Theory for Categorical DataCode0
Federated Anomaly Detection over Distributed Data Streams0
Unsupervised Abnormal Traffic Detection through Topological Flow Analysis0
Self-Supervised Masking for Unsupervised Anomaly Detection and Localization0
Tensor Decompositions for Hyperspectral Data Processing in Remote Sensing: A Comprehensive Review0
A Vision Inspired Neural Network for Unsupervised Anomaly Detection in Unordered Data0
Deep Learning for Prawn Farming: Forecasting and Anomaly Detection0
Reconstruction Enhanced Multi-View Contrastive Learning for Anomaly Detection on Attributed Networks0
Self-Supervised Anomaly Detection in Computer Vision and Beyond: A Survey and Outlook0
Deep Federated Anomaly Detection for Multivariate Time Series Data0
Network Traffic Anomaly Detection Method Based on Multi scale Residual Feature0
Anomaly Detection in Intra-Vehicle Networks0
LPC-AD: Fast and Accurate Multivariate Time Series Anomaly Detection via Latent Predictive Coding0
Zero-Episode Few-Shot Contrastive Predictive Coding: Solving intelligence tests without prior training0
Explainable Anomaly Detection for Industrial Control System CybersecurityCode0
ARCADE: Adversarially Regularized Convolutional Autoencoder for Network Anomaly Detection0
Explainable multi-class anomaly detection on functional data0
A Contrario multi-scale anomaly detection method for industrial quality inspection0
Object Class Aware Video Anomaly Detection through Image Translation0
TracInAD: Measuring Influence for Anomaly DetectionCode0
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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