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Named Entity Recognition (NER) Comparison #30

Description

@Cgarg9

Description:

To help users understand the differences in Named Entity Recognition (NER) models, add a notebook that applies multiple NER techniques on the same dataset and compares results.

Tasks:

  • Create a notebook to compare Spacy, NLTK, Stanford NER, and transformer-based models (e.g., BERT, RoBERTa, GPT-4 for NER).
  • Provide visual comparisons and discuss precision, recall, and real-world use cases.
  • Summarize key takeaways for each method.
  • Name the notebook ner_comparison.ipynb.
  • Update the README file with relevant references.

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