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paragon-analytics
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2888c51
1
Parent(s):
8fb9551
Update app.py
Browse files
app.py
CHANGED
@@ -22,9 +22,9 @@ model = AutoModelForSequenceClassification.from_pretrained("paragon-analytics/AD
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pred = transformers.pipeline("text-classification", model=model,
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tokenizer=tokenizer, return_all_scores=True)
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def interpretation_function(text):
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explainer = shap.Explainer(pred)
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shap_values = explainer([text])
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scores = list(zip(shap_values.data[0], shap_values.values[0, :, 1]))
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return scores
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@@ -46,7 +46,7 @@ def interpretation_function(text):
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# return val
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def adr_predict(x):
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encoded_input = tokenizer(x, return_tensors='pt')
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output = model(**encoded_input)
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scores = output[0][0].detach().numpy()
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scores = tf.nn.softmax(scores)
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@@ -93,7 +93,6 @@ def adr_predict(x):
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# , word_attributions ,scores
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def main(text):
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text = str(text).lower()
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obj = adr_predict(text)
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return obj[0],obj[1]
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# ,obj[2]
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pred = transformers.pipeline("text-classification", model=model,
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tokenizer=tokenizer, return_all_scores=True)
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explainer = shap.Explainer(pred)
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def interpretation_function(text):
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shap_values = explainer([text])
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scores = list(zip(shap_values.data[0], shap_values.values[0, :, 1]))
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return scores
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# return val
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def adr_predict(x):
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encoded_input = tokenizer(str(x), return_tensors='pt')
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output = model(**encoded_input)
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scores = output[0][0].detach().numpy()
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scores = tf.nn.softmax(scores)
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# , word_attributions ,scores
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def main(text):
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obj = adr_predict(text)
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return obj[0],obj[1]
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# ,obj[2]
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