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  1. 1_Pooling/config.json +7 -0
  2. README.md +107 -0
  3. checkpoint-13/config.json +26 -0
  4. checkpoint-13/model.safetensors +3 -0
  5. checkpoint-13/optimizer.pt +3 -0
  6. checkpoint-13/rng_state.pth +3 -0
  7. checkpoint-13/scheduler.pt +3 -0
  8. checkpoint-13/trainer_state.json +25 -0
  9. checkpoint-13/training_args.bin +3 -0
  10. checkpoint-26/config.json +26 -0
  11. checkpoint-26/model.safetensors +3 -0
  12. checkpoint-26/optimizer.pt +3 -0
  13. checkpoint-26/rng_state.pth +3 -0
  14. checkpoint-26/scheduler.pt +3 -0
  15. checkpoint-26/trainer_state.json +31 -0
  16. checkpoint-26/training_args.bin +3 -0
  17. config.json +26 -0
  18. config_sentence_transformers.json +7 -0
  19. model.safetensors +3 -0
  20. modules.json +14 -0
  21. runs/Dec08_18-13-22_e64c266ea476/events.out.tfevents.1702059203.e64c266ea476.3829.3 +3 -0
  22. runs/Dec08_18-22-54_e64c266ea476/events.out.tfevents.1702059775.e64c266ea476.10053.0 +3 -0
  23. runs/Dec08_18-37-09_e64c266ea476/events.out.tfevents.1702060630.e64c266ea476.14005.0 +3 -0
  24. runs/Dec08_18-40-42_e64c266ea476/events.out.tfevents.1702060843.e64c266ea476.14005.1 +3 -0
  25. runs/Dec08_18-45-34_e64c266ea476/events.out.tfevents.1702061135.e64c266ea476.16530.0 +3 -0
  26. runs/Dec08_18-47-01_e64c266ea476/events.out.tfevents.1702061221.e64c266ea476.16530.1 +3 -0
  27. runs/Dec08_18-54-13_e64c266ea476/events.out.tfevents.1702061653.e64c266ea476.18765.0 +3 -0
  28. runs/Dec08_18-58-48_e64c266ea476/events.out.tfevents.1702061928.e64c266ea476.18765.1 +3 -0
  29. runs/Dec08_19-08-04_e64c266ea476/events.out.tfevents.1702062485.e64c266ea476.22326.0 +3 -0
  30. runs/Dec08_19-17-49_e64c266ea476/events.out.tfevents.1702063069.e64c266ea476.24818.0 +3 -0
  31. sentence_bert_config.json +4 -0
  32. special_tokens_map.json +37 -0
  33. tokenizer.json +0 -0
  34. tokenizer_config.json +64 -0
  35. training_args.bin +3 -0
  36. vocab.txt +0 -0
1_Pooling/config.json ADDED
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+ {
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+ "word_embedding_dimension": 384,
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+ "pooling_mode_cls_token": false,
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+ "pooling_mode_mean_tokens": true,
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+ "pooling_mode_max_tokens": false,
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+ "pooling_mode_mean_sqrt_len_tokens": false
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+ }
README.md ADDED
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+ ---
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+ pipeline_tag: sentence-similarity
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+ license: apache-2.0
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+ tags:
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+ - sentence-transformers
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+ - feature-extraction
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+ - sentence-similarity
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+ - transformers
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+ ---
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+
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+ # sentence-transformers/paraphrase-MiniLM-L6-v2
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+
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+ This is a [sentence-transformers](https://www.SBERT.net) model: It maps sentences & paragraphs to a 384 dimensional dense vector space and can be used for tasks like clustering or semantic search.
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+
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+
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+
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+ ## Usage (Sentence-Transformers)
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+
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+ Using this model becomes easy when you have [sentence-transformers](https://www.SBERT.net) installed:
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+
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+ ```
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+ pip install -U sentence-transformers
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+ ```
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+
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+ Then you can use the model like this:
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+
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+ ```python
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+ from sentence_transformers import SentenceTransformer
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+ sentences = ["This is an example sentence", "Each sentence is converted"]
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+
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+ model = SentenceTransformer('sentence-transformers/paraphrase-MiniLM-L6-v2')
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+ embeddings = model.encode(sentences)
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+ print(embeddings)
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+ ```
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+
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+
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+
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+ ## Usage (HuggingFace Transformers)
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+ Without [sentence-transformers](https://www.SBERT.net), you can use the model like this: First, you pass your input through the transformer model, then you have to apply the right pooling-operation on-top of the contextualized word embeddings.
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+
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+ ```python
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+ from transformers import AutoTokenizer, AutoModel
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+ import torch
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+
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+
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+ #Mean Pooling - Take attention mask into account for correct averaging
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+ def mean_pooling(model_output, attention_mask):
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+ token_embeddings = model_output[0] #First element of model_output contains all token embeddings
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+ input_mask_expanded = attention_mask.unsqueeze(-1).expand(token_embeddings.size()).float()
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+ return torch.sum(token_embeddings * input_mask_expanded, 1) / torch.clamp(input_mask_expanded.sum(1), min=1e-9)
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+
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+
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+ # Sentences we want sentence embeddings for
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+ sentences = ['This is an example sentence', 'Each sentence is converted']
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+
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+ # Load model from HuggingFace Hub
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+ tokenizer = AutoTokenizer.from_pretrained('sentence-transformers/paraphrase-MiniLM-L6-v2')
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+ model = AutoModel.from_pretrained('sentence-transformers/paraphrase-MiniLM-L6-v2')
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+
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+ # Tokenize sentences
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+ encoded_input = tokenizer(sentences, padding=True, truncation=True, return_tensors='pt')
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+
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+ # Compute token embeddings
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+ with torch.no_grad():
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+ model_output = model(**encoded_input)
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+
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+ # Perform pooling. In this case, max pooling.
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+ sentence_embeddings = mean_pooling(model_output, encoded_input['attention_mask'])
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+
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+ print("Sentence embeddings:")
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+ print(sentence_embeddings)
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+ ```
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+
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+
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+
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+ ## Evaluation Results
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+
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+
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+
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+ For an automated evaluation of this model, see the *Sentence Embeddings Benchmark*: [https://seb.sbert.net](https://seb.sbert.net?model_name=sentence-transformers/paraphrase-MiniLM-L6-v2)
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+
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+
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+
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+ ## Full Model Architecture
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+ ```
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+ SentenceTransformer(
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+ (0): Transformer({'max_seq_length': 128, 'do_lower_case': False}) with Transformer model: BertModel
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+ (1): Pooling({'word_embedding_dimension': 384, 'pooling_mode_cls_token': False, 'pooling_mode_mean_tokens': True, 'pooling_mode_max_tokens': False, 'pooling_mode_mean_sqrt_len_tokens': False})
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+ )
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+ ```
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+
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+ ## Citing & Authors
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+
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+ This model was trained by [sentence-transformers](https://www.sbert.net/).
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+
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+ If you find this model helpful, feel free to cite our publication [Sentence-BERT: Sentence Embeddings using Siamese BERT-Networks](https://arxiv.org/abs/1908.10084):
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+ ```bibtex
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+ @inproceedings{reimers-2019-sentence-bert,
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+ title = "Sentence-BERT: Sentence Embeddings using Siamese BERT-Networks",
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+ author = "Reimers, Nils and Gurevych, Iryna",
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+ booktitle = "Proceedings of the 2019 Conference on Empirical Methods in Natural Language Processing",
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+ month = "11",
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+ year = "2019",
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+ publisher = "Association for Computational Linguistics",
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+ url = "http://arxiv.org/abs/1908.10084",
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+ }
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+ ```
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