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@@ -29,7 +29,7 @@ This model is a BERT-based model fine-tuned for sentiment analysis in the Hausa
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  ### **Model Architecture**
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  - **Base Model**: BERT (Bidirectional Encoder Representations from Transformers)
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  - **Pre-trained Model**: `bert-base-cased` from Hugging Face Transformers library.
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- - **Fine-Tuned Model**: Fine-tuned for 3 epochs on a Hausa sentiment dataset.
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  ### **Training Data**
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  - **Data Source**: The model was trained on a dataset containing 35,000 examples from social media platforms such as Twitter and Facebook.
@@ -67,7 +67,7 @@ The model performs well on the given dataset, achieving a balanced performance b
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  - Consider the impact on privacy and data protection laws, especially when analyzing social media content.
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  ### **License**
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- - Apache 2.0
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  ### **Citation**
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  If you use this model in your work, please cite it as follows:
 
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  ### **Model Architecture**
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  - **Base Model**: BERT (Bidirectional Encoder Representations from Transformers)
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  - **Pre-trained Model**: `bert-base-cased` from Hugging Face Transformers library.
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+ - **Fine-Tuned Model**: Fine-tuned for 40 epochs on a Hausa sentiment dataset.
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  ### **Training Data**
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  - **Data Source**: The model was trained on a dataset containing 35,000 examples from social media platforms such as Twitter and Facebook.
 
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  - Consider the impact on privacy and data protection laws, especially when analyzing social media content.
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  ### **License**
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+ -
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  ### **Citation**
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  If you use this model in your work, please cite it as follows: