SOTAVerified

Outlier Detection

Outlier Detection is a task of identifying a subset of a given data set which are considered anomalous in that they are unusual from other instances. It is one of the core data mining tasks and is central to many applications. In the security field, it can be used to identify potentially threatening users, in the manufacturing field it can be used to identify parts that are likely to fail.

Source: Coverage-based Outlier Explanation

Papers

Showing 101150 of 703 papers

TitleStatusHype
Robust Conformal Outlier Detection under Contaminated Reference DataCode0
CleanSurvival: Automated data preprocessing for time-to-event models using reinforcement learningCode0
RODEO: Robust Outlier Detection via Exposing Adaptive Out-of-Distribution SamplesCode0
Explainable and Robust Millimeter Wave Beam Alignment for AI-Native 6G Networks0
Class Imbalance in Anomaly Detection: Learning from an Exactly Solvable Model0
Temporal Analysis of Adversarial Attacks in Federated Learning0
Data Enrichment Opportunities for Distribution Grid Cable Networks using Variational Autoencoders0
Outlyingness Scores with Cluster Catch Digraphs0
On the Adversarial Robustness of Benjamini Hochberg0
An Efficient Outlier Detection Algorithm for Data Streaming0
Transfer Neyman-Pearson Algorithm for Outlier Detection0
FlexUOD: The Answer to Real-world Unsupervised Image Outlier Detection0
Blockchain-Empowered Cyber-Secure Federated Learning for Trustworthy Edge Computing0
Testing and Improving the Robustness of Amortized Bayesian Inference for Cognitive ModelsCode0
Brain Ageing Prediction using Isolation Forest Technique and Residual Neural Network (ResNet)0
Efficient Curation of Invertebrate Image Datasets Using Feature Embeddings and Automatic Size ComparisonCode0
PyOD 2: A Python Library for Outlier Detection with LLM-powered Model SelectionCode0
GradStop: Exploring Training Dynamics in Unsupervised Outlier Detection through GradientCode0
Detecting outliers by clustering algorithms0
Backdooring Outlier Detection Methods: A Novel Attack Approach0
Leveraging Ensemble-Based Semi-Supervised Learning for Illicit Account Detection in Ethereum DeFi Transactions0
TGTOD: A Global Temporal Graph Transformer for Outlier Detection at ScaleCode0
Using Images to Find Context-Independent Word Representations in Vector Space0
Unsupervised Event Outlier Detection in Continuous Time0
Lower Dimensional Spherical Representation of Medium Voltage Load Profiles for Visualization, Outlier Detection, and Generative Modelling0
Uncertainty in Supply Chain Digital Twins: A Quantum-Classical Hybrid Approach0
Unsupervised Parameter-free Outlier Detection using HDBSCAN* Outlier Profiles0
Enhancing Diversity in Bayesian Deep Learning via Hyperspherical Energy Minimization of CKACode0
GWQ: Gradient-Aware Weight Quantization for Large Language Models0
Sliced-Wasserstein-based Anomaly Detection and Open Dataset for Localized Critical Peak RebatesCode0
A Review of Graph-Powered Data Quality Applications for IoT Monitoring Sensor Networks0
Lifted Coefficient of Determination: Fast model-free prediction intervals and likelihood-free model comparison0
ECORS: An Ensembled Clustering Approach to Eradicate The Local And Global Outlier In Collaborative Filtering Recommender System0
Conditional Testing based on Localized Conformal p-values0
Decision-change Informed Rejection Improves Robustness in Pattern Recognition-based Myoelectric Control0
Outlier Detection with Cluster Catch Digraphs0
Zero-shot Outlier Detection via Prior-data Fitted Networks: Model Selection Bygone!0
Interpreting Outliers in Time Series Data through Decoding Autoencoder0
Synthetic Data Generation and Automated Multidimensional Data Labeling for AI/ML in General and Circular Coordinates0
Robust Statistical Scaling of Outlier Scores: Improving the Quality of Outlier Probabilities for Outliers (Extended Version)0
Outlier Detection Bias Busted: Understanding Sources of Algorithmic Bias through Data-centric Factors0
Flexible categorization using formal concept analysis and Dempster-Shafer theory0
Multimodal Foundational Models for Unsupervised 3D General Obstacle Detection0
ALTBI: Constructing Improved Outlier Detection Models via Optimization of Inlier-Memorization Effect0
Impact of Comprehensive Data Preprocessing on Predictive Modelling of COVID-19 MortalityCode0
EOL: Transductive Few-Shot Open-Set Recognition by Enhancing Outlier LogitsCode0
Regularized Contrastive Partial Multi-view Outlier Detection0
Outlier Detection in Large Radiological Datasets using UMAPCode0
BoBa: Boosting Backdoor Detection through Data Distribution Inference in Federated Learning0
Rethinking Unsupervised Outlier Detection via Multiple ThresholdingCode0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1VRAE+SVMAccuracy0.98Unverified
2F-t ALSTM-FCNAccuracy0.95Unverified
3GENDISAccuracy0.94Unverified
#ModelMetricClaimedVerifiedStatus
1ASVDDAverage Accuracy99.03Unverified
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1ASVDDAverage Accuracy37.62Unverified
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1ASVDDAverage Accuracy65.6Unverified
#ModelMetricClaimedVerifiedStatus
1PAEAUROC1Unverified
#ModelMetricClaimedVerifiedStatus
1ASVDDAverage Accuracy99.05Unverified
#ModelMetricClaimedVerifiedStatus
1MIXAUC0.86Unverified
#ModelMetricClaimedVerifiedStatus
1MIXAUC-ROC0.85Unverified
#ModelMetricClaimedVerifiedStatus
1MIXAUC-ROC0.93Unverified
#ModelMetricClaimedVerifiedStatus
1ASVDDAverage Accuracy86.33Unverified
#ModelMetricClaimedVerifiedStatus
1LSTMCapsAverage F10.74Unverified