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AfnanTS/ARBERTv1EL
ARBERTv1EL is a fill-mask model from AfnanTS. Use it when you need the model to fill a missing word. It is set up for transformers.
<img src="./ArabBERT2.png" alt="Model Logo" width="30%" height="30%" align="right"/
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From the Hugging Face model README
The ArBERTV1_EL model is a transformer-based Arabic language model fine-tuned using the Entity Linking (EL) task. This model leverages Knowledge Graphs (KGs) for intrinsic evaluation of Masked Language Modeling (MLM) models without directly evaluating the EL model. The EL task ensures that the model benefits from the incorporation of structured knowledge during pre-training.
Filling masked tokens in Arabic text, particularly in contexts enriched with knowledge from KGs.
Can be further fine-tuned for Arabic NLP tasks that require semantic understanding, such as text classification or question answering.
from transformers import pipeline
fill_mask = pipeline("fill-mask", model="AfnanTS/ArBERTV1_EL")
fill_mask("اللغة [MASK] مهمة جدا."
Trained on the ArLAMA dataset, which is designed to represent Knowledge Graphs in natural language.
Continued pre-training of the ArBERTv1 model using Entity Linking (EL) task.