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Eriberta Base

Developed by HiTZ
EriBERTa is a bilingual domain-specific language model pre-trained on a massive corpus of clinical medical texts. It surpasses all previous Spanish-language models in the clinical domain, demonstrating exceptional medical text comprehension and information extraction capabilities.
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Release Time : 6/11/2024

Model Overview

A bilingual pre-trained language model for clinical natural language processing, supporting English and Spanish, with a focus on biomedical and healthcare text comprehension and information extraction.

Model Features

Bilingual Medical Specialized Model
Pre-trained specifically on English and Spanish medical clinical texts, excelling in the medical domain.
Cross-lingual Knowledge Transfer
Capable of transferring knowledge between English and Spanish, particularly useful in scenarios with scarce Spanish clinical data.
Large-scale Medical Corpus Training
Pre-trained on a multilingual medical corpus (HiTZ/Multilingual Medical Corpus), processing 4.5 billion tokens.

Model Capabilities

Medical text comprehension
Clinical information extraction
Bilingual text processing
Masked language prediction

Use Cases

Clinical Text Analysis
Medical Report Anomaly Detection
Analyze anomalies in medical reports, such as 'No <mask> abnormalities detected in full-body skeletal X-rays.'
Capable of accurately predicting professional terminology in medical reports.
Surgical Record Analysis
Understand professional terminology in surgical records, such as 'Percutaneous coronary <mask> procedure.'
Capable of correctly predicting surgical types and terminology.
Clinical Examination Analysis
Examination Result Interpretation
Interpret clinical examination results, such as 'No signs of <mask> or keratitis.'
Capable of accurately predicting professional medical terminology in examination results.
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