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@@ -17,18 +17,18 @@ We fine-tuned our model on Sentiment Analysis task using _FinancialPhraseBank_ d
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  # How to use
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  Our model can be used thanks to Transformers pipeline for sentiment analysis.
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  ```python
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- from transformers import BertTokenizer, BertForSequenceClassification
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- from transformers import pipeline
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- finbert = BertForSequenceClassification.from_pretrained("ahmedrachid/FinancialBERT-Sentiment-Analysis",num_labels=3)
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- tokenizer = BertTokenizer.from_pretrained("ahmedrachid/FinancialBERT-Sentiment-Analysis")
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- nlp = pipeline("sentiment-analysis", model=finbert, tokenizer=tokenizer)
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- sentences = ["Operating profit rose to EUR 13.1 mn from EUR 8.7 mn in the corresponding period in 2007 representing 7.7 % of net sales.",
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  "Bids or offers include at least 1,000 shares and the value of the shares must correspond to at least EUR 4,000.",
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  "Raute reported a loss per share of EUR 0.86 for the first half of 2009 , against EPS of EUR 0.74 in the corresponding period of 2008.",
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  ]
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- results = nlp(sentences)
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- print(results)
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  ```
 
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  # How to use
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  Our model can be used thanks to Transformers pipeline for sentiment analysis.
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  ```python
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+ >>> from transformers import BertTokenizer, BertForSequenceClassification
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+ >>> from transformers import pipeline
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+ >>> model = BertForSequenceClassification.from_pretrained("ahmedrachid/FinancialBERT-Sentiment-Analysis",num_labels=3)
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+ >>> tokenizer = BertTokenizer.from_pretrained("ahmedrachid/FinancialBERT-Sentiment-Analysis")
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+ >>> nlp = pipeline("sentiment-analysis", model=model, tokenizer=tokenizer)
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+ >>> sentences = ["Operating profit rose to EUR 13.1 mn from EUR 8.7 mn in the corresponding period in 2007 representing 7.7 % of net sales.",
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  "Bids or offers include at least 1,000 shares and the value of the shares must correspond to at least EUR 4,000.",
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  "Raute reported a loss per share of EUR 0.86 for the first half of 2009 , against EPS of EUR 0.74 in the corresponding period of 2008.",
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  ]
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+ >>> results = nlp(sentences)
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+ >>> print(results)
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  ```