Update utils/target_classifier.py
Browse files- utils/target_classifier.py +4 -27
utils/target_classifier.py
CHANGED
@@ -37,7 +37,7 @@ def get_target_labels(preds):
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index_of_one = ele.index(1)
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except ValueError:
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index_of_one = "NA"
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# Retrieve the name of the label (if no prediction made = NA)
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if index_of_one != "NA":
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name = label_dict[index_of_one]
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@@ -107,42 +107,19 @@ def target_classification(haystack_doc:pd.DataFrame,
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logging.info("Working on target/action identification")
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haystack_doc['Target Label'] = 'NA'
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st.write(haystack_doc)
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if not classifier_model:
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st.write("No classifier_model")
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classifier_model = st.session_state['target_classifier']
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st.write("classifier model defined")
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# Get predictions
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predictions = classifier_model(list(haystack_doc.text))
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st.write(predictions)
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# Get labels for predictions
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pred_labels = get_target_labels(predictions)
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st.write(pred_labels)
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# Save labels
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haystack_doc['Target Label'] = pred_labels
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return haystack_doc
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# logging.info("Working on action/target extraction")
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# if not classifier_model:
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# # classifier_model = st.session_state['target_classifier']
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# # results = classifier_model(list(haystack_doc.text))
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# # labels_= [(l[0]['label'],
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# # l[0]['score']) for l in results]
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# # df1 = DataFrame(labels_, columns=["Target Label","Target Score"])
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# # df = pd.concat([haystack_doc,df1],axis=1)
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# # df = df.sort_values(by="Target Score", ascending=False).reset_index(drop=True)
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# # df['Target Score'] = df['Target Score'].round(2)
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# # df.index += 1
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# # # df['Label_def'] = df['Target Label'].apply(lambda i: _lab_dict[i])
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index_of_one = ele.index(1)
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except ValueError:
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index_of_one = "NA"
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# Retrieve the name of the label (if no prediction made = NA)
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if index_of_one != "NA":
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name = label_dict[index_of_one]
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logging.info("Working on target/action identification")
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haystack_doc['Target Label'] = 'NA'
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if not classifier_model:
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classifier_model = st.session_state['target_classifier']
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# Get predictions
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predictions = classifier_model(list(haystack_doc.text))
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# Get labels for predictions
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pred_labels = get_target_labels(predictions)
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# Save labels
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haystack_doc['Target Label'] = pred_labels
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return haystack_doc
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