SOTAVerified

Intrusion Detection

Intrusion Detection is the process of dynamically monitoring events occurring in a computer system or network, analyzing them for signs of possible incidents and often interdicting the unauthorized access. This is typically accomplished by automatically collecting information from a variety of systems and network sources, and then analyzing the information for possible security problems.

Source: Machine Learning Techniques for Intrusion Detection

Papers

Showing 751775 of 800 papers

TitleStatusHype
Anomaly Detection via Minimum Likelihood Generative Adversarial Networks0
Anomaly Generation using Generative Adversarial Networks in Host Based Intrusion Detection0
An Online Ensemble Learning Model for Detecting Attacks in Wireless Sensor Networks0
Anonymous Jamming Detection in 5G with Bayesian Network Model Based Inference Analysis0
A Novel Approach To Network Intrusion Detection System Using Deep Learning For Sdn: Futuristic Approach0
A Novel Deep Learning based Model to Defend Network Intrusion Detection System against Adversarial Attacks0
A Novel Federated Learning-Based IDS for Enhancing UAVs Privacy and Security0
A Novel Online Incremental Learning Intrusion Prevention System0
A Novel Resampling Technique for Imbalanced Dataset Optimization0
AntibotV: A Multilevel Behaviour-based Framework for Botnets Detection in Vehicular Networks0
A Performance Comparison of Data Mining Algorithms Based Intrusion Detection System for Smart Grid0
Application of a Dynamic Line Graph Neural Network for Intrusion Detection With Semisupervised Learning0
Applications of Positive Unlabeled (PU) and Negative Unlabeled (NU) Learning in Cybersecurity0
Are Embedding Spaces Interpretable? Results of an Intrusion Detection Evaluation on a Large French Corpus0
Are Trees Really Green? A Detection Approach of IoT Malware Attacks0
A review of Federated Learning in Intrusion Detection Systems for IoT0
A Review of Machine Learning based Anomaly Detection Techniques0
A Review of Various Datasets for Machine Learning Algorithm-Based Intrusion Detection System: Advances and Challenges0
Are We There Yet? Unraveling the State-of-the-Art Graph Network Intrusion Detection Systems0
ARLIF-IDS -- Attention augmented Real-Time Isolation Forest Intrusion Detection System0
A Robust Comparison of the KDDCup99 and NSL-KDD IoT Network Intrusion Detection Datasets Through Various Machine Learning Algorithms0
Artificial Neural Network for Cybersecurity: A Comprehensive Review0
A Scalable Hierarchical Intrusion Detection System for Internet of Vehicles0
A Secure Healthcare 5.0 System Based on Blockchain Technology Entangled with Federated Learning Technique0
A short review on Applications of Deep learning for Cyber security0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1Random ForestAccuracy (%)98.13Unverified
2K-Nearest NeighborsAccuracy (%)98.07Unverified
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1MSTREAM-PCAAUC0.94Unverified
#ModelMetricClaimedVerifiedStatus
1MSTREAM-IBAUC0.95Unverified
#ModelMetricClaimedVerifiedStatus
1MSTREAM-AEAUC0.9Unverified