rdose commited on
Commit
1f028f9
1 Parent(s): f22412b

Update app.py

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Files changed (1) hide show
  1. app.py +2 -3
app.py CHANGED
@@ -160,12 +160,11 @@ def inference(input_batch,isurl,use_archive,limit_companies=10):
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  print("[i] Running sentiment using",MODEL_SENTIMENT_ANALYSIS ,"inference...")
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  #sentiment = _inference_sentiment_model_via_api_query({"inputs": extracted['content']})
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  sentiment = _inference_sentiment_model_pipeline(input_batch_content )
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- print("[i] Sentiment output:",sentiment )
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  #summary = _inference_summary_model_pipeline(input_batch_content )[0]['generated_text']
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  #ner_labels = _inference_ner_spancat(input_batch_content ,summary, penalty = 0.8, limit_outputs=limit_companies)
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  df = pd.DataFrame(prob_outs,columns =['E','S','G'])
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- df['sent_lbl'] = sentiment['label']
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- df['sent_score'] = sentiment['score']
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  print("[i] Pandas output shape:",df.shape)
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  return df #ner_labels, {'E':float(prob_outs[0]),"S":float(prob_outs[1]),"G":float(prob_outs[2])},{sentiment['label']:float(sentiment['score'])},"**Summary:**\n\n" + summary
 
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  print("[i] Running sentiment using",MODEL_SENTIMENT_ANALYSIS ,"inference...")
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  #sentiment = _inference_sentiment_model_via_api_query({"inputs": extracted['content']})
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  sentiment = _inference_sentiment_model_pipeline(input_batch_content )
 
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  #summary = _inference_summary_model_pipeline(input_batch_content )[0]['generated_text']
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  #ner_labels = _inference_ner_spancat(input_batch_content ,summary, penalty = 0.8, limit_outputs=limit_companies)
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  df = pd.DataFrame(prob_outs,columns =['E','S','G'])
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+ df['sent_lbl'] = [d['label'] for d in sentiment ]
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+ df['sent_score'] = [d['score'] for d in sentiment ]
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  print("[i] Pandas output shape:",df.shape)
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  return df #ner_labels, {'E':float(prob_outs[0]),"S":float(prob_outs[1]),"G":float(prob_outs[2])},{sentiment['label']:float(sentiment['score'])},"**Summary:**\n\n" + summary