Das22 42 Camembert Finetuned Ref
Fine-tuned based on the CamemBERT model, specifically designed for named entity recognition in 19th century French business directories
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Release Time : 5/20/2022
Model Overview
This model is optimized for Named Entity Recognition (NER) tasks in 19th century French business directories, capable of identifying personal/business names, industries, and location information within directory entries.
Model Features
Historical Document Optimization
Specifically optimized for the format and linguistic characteristics of 19th century French business directories
Multi-version Training
Provides derivative model versions based on data extracted from different OCR systems (PERO/Tesseract)
Academic Research Support
Part of the DAS2022 paper research materials, ensuring reproducibility
Model Capabilities
Recognize named entities in business directories
Process historical document formats
Analyze French texts
Use Cases
Historical Research
Business Archive Digitization
Automatically extract entity information from 19th century French business archives
Can identify key information such as personal names, business names, industries, and addresses
Digital Humanities
Historical Business Network Analysis
Extract entity relationships from business directories to construct historical business networks
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