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    | @@ -91,11 +91,12 @@ with torch.no_grad(): | |
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              # Perform pooling. In this case, cls pooling.
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              sentence_embeddings = model_output[0][:, 0]
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            # normalize embeddings
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            sentence_embeddings = torch.nn.functional.normalize(sentence_embeddings, p=2, dim=1) | 
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            # [0. | 
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            ```
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            Also, you can use native [FlagEmbedding](https://github.com/FlagOpen/FlagEmbedding) library for evaluation. Usage is described in [`bge-m3` model card](https://huggingface.co/BAAI/bge-m3).
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              # Perform pooling. In this case, cls pooling.
         | 
| 92 | 
             
              sentence_embeddings = model_output[0][:, 0]
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            # normalize embeddings
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            sentence_embeddings = torch.nn.functional.normalize(sentence_embeddings, p=2, dim=1)
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            # [[0.5567, 0.3014],
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            #  [0.1701, 0.7122]]
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            scores = (sentence_embeddings[:2] @ sentence_embeddings[2:].T)
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            ```
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            Also, you can use native [FlagEmbedding](https://github.com/FlagOpen/FlagEmbedding) library for evaluation. Usage is described in [`bge-m3` model card](https://huggingface.co/BAAI/bge-m3).
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