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  # Fine-Tuned BART Model for Text Classification on CNN News Articles
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- [![Hugging Face Model](https://img.shields.io/huggingface/model/IT-community/Bart_News_text_classification?color=blue&logo=huggingface)](https://huggingface.co/IT-community/Bart_News_text_classification)
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- [![License](https://img.shields.io/badge/License-MIT-yellow.svg)](https://opensource.org/licenses/MIT)
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  This is a fine-tuned BART (Bidirectional and Auto-Regressive Transformers) model for text classification on CNN news articles. The model was fine-tuned on a dataset of CNN news articles with labels indicating the article topic, using a batch size of 32, learning rate of 6e-5, and trained for one epoch.
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  The model achieved the following performance metrics on the test set:
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  Accuracy: 0.9591836734693877
 
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  F1-score: 0.958301875401112
 
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  Recall: 0.9591836734693877
 
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  Precision: 0.9579673040369542
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  ## Contact
 
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  ---
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  # Fine-Tuned BART Model for Text Classification on CNN News Articles
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  This is a fine-tuned BART (Bidirectional and Auto-Regressive Transformers) model for text classification on CNN news articles. The model was fine-tuned on a dataset of CNN news articles with labels indicating the article topic, using a batch size of 32, learning rate of 6e-5, and trained for one epoch.
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  The model achieved the following performance metrics on the test set:
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  Accuracy: 0.9591836734693877
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  F1-score: 0.958301875401112
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  Recall: 0.9591836734693877
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  Precision: 0.9579673040369542
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  ## Contact