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Factcg DeBERTa V3 Large

Developed by yaxili96
FactCG is a text classification model based on the DeBERTa-v3-large architecture, specifically designed to detect unsubstantiated hallucinations in content generated by large language models.
Downloads 118
Release Time : 2/10/2025

Model Overview

This model is trained using graph-structured multi-hop data augmentation techniques, effectively identifying factual errors in text, suitable for fact-checking AI-generated content.

Model Features

Multi-hop data augmentation
Utilizes graph-structured multi-hop data augmentation techniques to enhance the model's fact-checking capabilities
Based on DeBERTa-v3-large
Uses the powerful DeBERTa-v3-large as the base model, providing excellent text comprehension capabilities
Hallucination detection
Specifically designed to detect unsubstantiated hallucinations in content generated by large language models

Model Capabilities

Text classification
Fact-checking
AI-generated content verification
Hallucination detection

Use Cases

Content moderation
Fact-checking AI-generated content
Verifying the factual accuracy of content generated by large language models
Effectively identifies unsubstantiated false information
Information quality assessment
Automatic fact-checking
Automatically detecting factual errors in text
Improves efficiency in assessing information credibility
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