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Update README.md

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@@ -9,7 +9,9 @@ Trained Strategy :
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  - In-batch Negatives : 12 Epoch, by KLUE MRC dataset, random sampling between Sparse Retrieval(TF-IDF) top 100 passage per each query
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  I'm not confident about this model will work in other dataset or corpus.
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- '''
 
 
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  from Transformers import AutoTokenizer, BertPreTrainedModel, BertModel
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  class BertEncoder(BertPreTrainedModel):
@@ -31,4 +33,5 @@ tokenizer = AutoTokenizer.from_pretrained(model_name)
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  q_encoder = BertEncoder.from_pretrained("thingsu/koDPR_question")
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  p_encoder = BertEncoder.from_pretrained("thingsu/koDPR_context")
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- '''
 
 
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  - In-batch Negatives : 12 Epoch, by KLUE MRC dataset, random sampling between Sparse Retrieval(TF-IDF) top 100 passage per each query
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  I'm not confident about this model will work in other dataset or corpus.
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+
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+ <pre>
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+ <code>
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  from Transformers import AutoTokenizer, BertPreTrainedModel, BertModel
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  class BertEncoder(BertPreTrainedModel):
 
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  q_encoder = BertEncoder.from_pretrained("thingsu/koDPR_question")
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  p_encoder = BertEncoder.from_pretrained("thingsu/koDPR_context")
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+ </code>
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+ </pre>