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Darkbert Finetuned Ner

Developed by guidobenb
A named entity recognition model fine-tuned based on DarkBERT, focusing on threat intelligence analysis in the field of network security.
Downloads 169
Release Time : 8/15/2024

Model Overview

This model is based on the DarkBERT architecture and fine-tuned on the VCDB dataset to identify key entities and terms in network security events, such as actors, assets, actions, and attributes.

Model Features

Optimized for the network security field
Fine-tuned using the VCDB dataset, specifically optimized for entity recognition in network security event descriptions.
VERIS glossary support
Capable of identifying and classifying entities in the 4A categories (actors, assets, actions, and attributes) of the VERIS glossary.
High accuracy
Achieved an accuracy of 0.8901 on the evaluation set, indicating good recognition ability of the model.

Model Capabilities

Network security entity recognition
Threat intelligence analysis
Security event description parsing

Use Cases

Network security
Security event analysis
Analyze security event descriptions to identify key entities such as attackers and affected assets.
Help security teams quickly understand the key elements of events
Threat intelligence collection
Extract structured threat intelligence data from public security event reports.
Support the automated construction of threat intelligence databases
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