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  # FinTwitBERT-sentiment
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- FinTwitBERT-sentiment is a finetuned model for classifying the sentiment of financial tweets. It uses [FinTwitBERT](https://huggingface.co/StephanAkkerman/FinTwitBERT) as a base model, which has been pre-trained on 1 million financial tweets.
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  This approach ensures that the FinTwitBERT-sentiment has seen enough financial tweets, which have an informal nature, compared to other financial texts, such as news headlines.
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  Therefore this model performs great on informal financial texts, seen on social media.
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  FinTwitBERT-sentiment is intended for classifying financial tweets or other financial social media texts.
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  ## More Information
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  For a comprehensive overview, including the training setup and analysis of the model, visit the [FinTwitBERT GitHub repository](https://github.com/TimKoornstra/FinTwitBERT).
 
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  # FinTwitBERT-sentiment
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+ FinTwitBERT-sentiment is a finetuned model for classifying the sentiment of financial tweets. It uses [FinTwitBERT](https://huggingface.co/StephanAkkerman/FinTwitBERT) as a base model, which has been pre-trained on 10 million financial tweets.
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  This approach ensures that the FinTwitBERT-sentiment has seen enough financial tweets, which have an informal nature, compared to other financial texts, such as news headlines.
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  Therefore this model performs great on informal financial texts, seen on social media.
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  FinTwitBERT-sentiment is intended for classifying financial tweets or other financial social media texts.
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+ ## Dataset
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+ FinTwitBERT-sentiment has been trained on two datasets. One being a collection of several financial tweet datasets and the other a synthetic dataset created out of the first.
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+ - [TimKoornstra/financial-tweets-sentiment](https://huggingface.co/datasets/TimKoornstra/financial-tweets-sentiment): 38,091 human-labeled tweets
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+ - [TimKoornstra/synthetic-financial-tweets-sentiment](https://huggingface.co/datasets/TimKoornstra/synthetic-financial-tweets-sentiment): 1,428,771 synethtic tweets
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  ## More Information
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  For a comprehensive overview, including the training setup and analysis of the model, visit the [FinTwitBERT GitHub repository](https://github.com/TimKoornstra/FinTwitBERT).