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 18261850 of 4856 papers

TitleStatusHype
Efficient Dynamic Clustering: Capturing Patterns from Historical Cluster Evolution0
Efficiently Discovering Frequent Motifs in Large-scale Sensor Data0
Attention-Based Self-Supervised Feature Learning for Security Data0
Efficient Non-Compression Auto-Encoder for Driving Noise-based Road Surface Anomaly Detection0
Efficient Nonlinear RX Anomaly Detectors0
Efficient pattern-based anomaly detection in a network of multivariate devices0
Efficient Quantum One-Class Support Vector Machines for Anomaly Detection Using Randomized Measurements and Variable Subsampling0
Efficient Representation of the Activation Space in Deep Neural Networks0
Efficient Slice Anomaly Detection Network for 3D Brain MRI Volume0
Effort-free Automated Skeletal Abnormality Detection of Rat Fetuses on Whole-body Micro-CT Scans0
e-G2C: A 0.14-to-8.31 μJ/Inference NN-based Processor with Continuous On-chip Adaptation for Anomaly Detection and ECG Conversion from EGM0
Anomaly Detection with Test Time Augmentation and Consistency Evaluation0
EIAD: Explainable Industrial Anomaly Detection Via Multi-Modal Large Language Models0
Electrical Grid Anomaly Detection via Tensor Decomposition0
Attention-Guided Perturbation for Unsupervised Image Anomaly Detection0
Exploring the Impact of Outlier Variability on Anomaly Detection Evaluation Metrics0
Attention Map-guided Two-stage Anomaly Detection using Hard Augmentation0
Custom DNN using Reward Modulated Inverted STDP Learning for Temporal Pattern Recognition0
ELUQuant: Event-Level Uncertainty Quantification in Deep Inelastic Scattering0
EMO\&LY (EMOtion and AnomaLY) : A new corpus for anomaly detection in an audiovisual stream with emotional context.0
Emotion-Based Crowd Representation for Abnormality Detection0
Empirical Analysis of Anomaly Detection on Hyperspectral Imaging Using Dimension Reduction Methods0
Empirical Density Estimation based on Spline Quasi-Interpolation with applications to Copulas clustering modeling0
Empirical performance maximization for linear rank statistics0
Anomaly Detection with Tensor Networks0
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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