Push model using huggingface_hub.
Browse files- .gitattributes +1 -0
 - 1_Pooling/config.json +10 -0
 - README.md +131 -0
 - config.json +28 -0
 - config_sentence_transformers.json +10 -0
 - config_setfit.json +4 -0
 - model.safetensors +3 -0
 - model_head.pkl +3 -0
 - modules.json +20 -0
 - sentence_bert_config.json +4 -0
 - sentencepiece.bpe.model +3 -0
 - special_tokens_map.json +51 -0
 - tokenizer.json +3 -0
 - tokenizer_config.json +61 -0
 
    	
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        1_Pooling/config.json
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            +
            ---
         
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            base_model: intfloat/multilingual-e5-large
         
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            library_name: setfit
         
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            metrics:
         
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            - accuracy
         
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            pipeline_tag: text-classification
         
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            tags:
         
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            - setfit
         
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            +
            - sentence-transformers
         
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            +
            - text-classification
         
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            +
            - generated_from_setfit_trainer
         
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            widget: []
         
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            inference: true
         
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            ---
         
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            # SetFit with intfloat/multilingual-e5-large
         
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            +
            This is a [SetFit](https://github.com/huggingface/setfit) model that can be used for Text Classification. This SetFit model uses [intfloat/multilingual-e5-large](https://huggingface.co/intfloat/multilingual-e5-large) as the Sentence Transformer embedding model. A [LogisticRegression](https://scikit-learn.org/stable/modules/generated/sklearn.linear_model.LogisticRegression.html) instance is used for classification.
         
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            +
             
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            +
            The model has been trained using an efficient few-shot learning technique that involves:
         
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            +
             
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            +
            1. Fine-tuning a [Sentence Transformer](https://www.sbert.net) with contrastive learning.
         
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            +
            2. Training a classification head with features from the fine-tuned Sentence Transformer.
         
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            +
             
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| 25 | 
         
            +
            ## Model Details
         
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            +
             
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| 27 | 
         
            +
            ### Model Description
         
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| 28 | 
         
            +
            - **Model Type:** SetFit
         
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| 29 | 
         
            +
            - **Sentence Transformer body:** [intfloat/multilingual-e5-large](https://huggingface.co/intfloat/multilingual-e5-large)
         
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            +
            - **Classification head:** a [LogisticRegression](https://scikit-learn.org/stable/modules/generated/sklearn.linear_model.LogisticRegression.html) instance
         
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            +
            - **Maximum Sequence Length:** 512 tokens
         
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| 32 | 
         
            +
            <!-- - **Number of Classes:** Unknown -->
         
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| 33 | 
         
            +
            <!-- - **Training Dataset:** [Unknown](https://huggingface.co/datasets/unknown) -->
         
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| 34 | 
         
            +
            <!-- - **Language:** Unknown -->
         
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| 35 | 
         
            +
            <!-- - **License:** Unknown -->
         
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            +
             
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            +
            ### Model Sources
         
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            +
             
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| 39 | 
         
            +
            - **Repository:** [SetFit on GitHub](https://github.com/huggingface/setfit)
         
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            +
            - **Paper:** [Efficient Few-Shot Learning Without Prompts](https://arxiv.org/abs/2209.11055)
         
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| 41 | 
         
            +
            - **Blogpost:** [SetFit: Efficient Few-Shot Learning Without Prompts](https://huggingface.co/blog/setfit)
         
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| 42 | 
         
            +
             
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| 43 | 
         
            +
            ## Uses
         
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| 44 | 
         
            +
             
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| 45 | 
         
            +
            ### Direct Use for Inference
         
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| 46 | 
         
            +
             
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| 47 | 
         
            +
            First install the SetFit library:
         
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            +
             
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            +
            ```bash
         
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            pip install setfit
         
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            +
            ```
         
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            +
             
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            +
            Then you can load this model and run inference.
         
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            +
             
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            +
            ```python
         
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            +
            from setfit import SetFitModel
         
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            +
             
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            +
            # Download from the 🤗 Hub
         
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| 59 | 
         
            +
            model = SetFitModel.from_pretrained("LKriesch/TwinTransitionMapper_AI")
         
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            +
            # Run inference
         
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| 61 | 
         
            +
            preds = model("I loved the spiderman movie!")
         
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| 62 | 
         
            +
            ```
         
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| 63 | 
         
            +
             
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| 64 | 
         
            +
            <!--
         
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| 65 | 
         
            +
            ### Downstream Use
         
     | 
| 66 | 
         
            +
             
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| 67 | 
         
            +
            *List how someone could finetune this model on their own dataset.*
         
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| 68 | 
         
            +
            -->
         
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| 69 | 
         
            +
             
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| 70 | 
         
            +
            <!--
         
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| 71 | 
         
            +
            ### Out-of-Scope Use
         
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| 72 | 
         
            +
             
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| 73 | 
         
            +
            *List how the model may foreseeably be misused and address what users ought not to do with the model.*
         
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| 74 | 
         
            +
            -->
         
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| 75 | 
         
            +
             
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| 76 | 
         
            +
            <!--
         
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| 77 | 
         
            +
            ## Bias, Risks and Limitations
         
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| 78 | 
         
            +
             
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| 79 | 
         
            +
            *What are the known or foreseeable issues stemming from this model? You could also flag here known failure cases or weaknesses of the model.*
         
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| 80 | 
         
            +
            -->
         
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| 81 | 
         
            +
             
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| 82 | 
         
            +
            <!--
         
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| 83 | 
         
            +
            ### Recommendations
         
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| 84 | 
         
            +
             
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| 85 | 
         
            +
            *What are recommendations with respect to the foreseeable issues? For example, filtering explicit content.*
         
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| 86 | 
         
            +
            -->
         
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            +
             
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| 88 | 
         
            +
            ## Training Details
         
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| 89 | 
         
            +
             
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            +
            ### Framework Versions
         
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| 91 | 
         
            +
            - Python: 3.9.19
         
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| 92 | 
         
            +
            - SetFit: 1.0.3
         
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| 93 | 
         
            +
            - Sentence Transformers: 3.0.1
         
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| 94 | 
         
            +
            - Transformers: 4.44.0
         
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| 95 | 
         
            +
            - PyTorch: 2.4.0+cu124
         
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| 96 | 
         
            +
            - Datasets: 2.16.1
         
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| 97 | 
         
            +
            - Tokenizers: 0.19.1
         
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            +
             
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            +
            ## Citation
         
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| 100 | 
         
            +
             
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| 101 | 
         
            +
            ### BibTeX
         
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| 102 | 
         
            +
            ```bibtex
         
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| 103 | 
         
            +
            @article{https://doi.org/10.48550/arxiv.2209.11055,
         
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| 104 | 
         
            +
                doi = {10.48550/ARXIV.2209.11055},
         
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| 105 | 
         
            +
                url = {https://arxiv.org/abs/2209.11055},
         
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| 106 | 
         
            +
                author = {Tunstall, Lewis and Reimers, Nils and Jo, Unso Eun Seo and Bates, Luke and Korat, Daniel and Wasserblat, Moshe and Pereg, Oren},
         
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| 107 | 
         
            +
                keywords = {Computation and Language (cs.CL), FOS: Computer and information sciences, FOS: Computer and information sciences},
         
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| 108 | 
         
            +
                title = {Efficient Few-Shot Learning Without Prompts},
         
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| 109 | 
         
            +
                publisher = {arXiv},
         
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| 110 | 
         
            +
                year = {2022},
         
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| 111 | 
         
            +
                copyright = {Creative Commons Attribution 4.0 International}
         
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            +
            }
         
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| 113 | 
         
            +
            ```
         
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            +
             
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            +
            <!--
         
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| 116 | 
         
            +
            ## Glossary
         
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| 117 | 
         
            +
             
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| 118 | 
         
            +
            *Clearly define terms in order to be accessible across audiences.*
         
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| 119 | 
         
            +
            -->
         
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            +
             
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| 121 | 
         
            +
            <!--
         
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| 122 | 
         
            +
            ## Model Card Authors
         
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| 123 | 
         
            +
             
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            +
            *Lists the people who create the model card, providing recognition and accountability for the detailed work that goes into its construction.*
         
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| 125 | 
         
            +
            -->
         
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            +
             
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            +
            <!--
         
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| 128 | 
         
            +
            ## Model Card Contact
         
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| 129 | 
         
            +
             
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| 130 | 
         
            +
            *Provides a way for people who have updates to the Model Card, suggestions, or questions, to contact the Model Card authors.*
         
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| 131 | 
         
            +
            -->
         
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        config.json
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            {
         
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              "_name_or_path": "T:\\Trabbi\\sft_ai",
         
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              "architectures": [
         
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            +
                "XLMRobertaModel"
         
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              ],
         
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| 6 | 
         
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              "attention_probs_dropout_prob": 0.1,
         
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| 7 | 
         
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| 8 | 
         
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              "hidden_size": 1024,
         
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              "model_type": "xlm-roberta",
         
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              "output_past": true,
         
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              "position_embedding_type": "absolute",
         
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              "torch_dtype": "float32",
         
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              "transformers_version": "4.44.0",
         
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| 25 | 
         
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              "type_vocab_size": 1,
         
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              "use_cache": true,
         
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              "vocab_size": 250002
         
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            }
         
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            {
         
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              "__version__": {
         
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                "sentence_transformers": "3.0.1",
         
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                "transformers": "4.44.0",
         
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                "pytorch": "2.4.0+cu124"
         
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              },
         
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              "prompts": {},
         
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              "default_prompt_name": null,
         
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              "similarity_fn_name": null
         
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            }
         
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              "labels": null,
         
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            +
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| 9 | 
         
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| 10 | 
         
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| 11 | 
         
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| 12 | 
         
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     | 
| 13 | 
         
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| 14 | 
         
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| 16 | 
         
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| 18 | 
         
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     | 
| 19 | 
         
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     | 
| 20 | 
         
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     | 
    	
        sentence_bert_config.json
    ADDED
    
    | 
         @@ -0,0 +1,4 @@ 
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        sentencepiece.bpe.model
    ADDED
    
    | 
         @@ -0,0 +1,3 @@ 
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    ADDED
    
    | 
         @@ -0,0 +1,51 @@ 
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| 49 | 
         
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     | 
| 50 | 
         
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     | 
| 51 | 
         
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     | 
    	
        tokenizer.json
    ADDED
    
    | 
         @@ -0,0 +1,3 @@ 
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| 3 | 
         
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            size 17082987
         
     | 
    	
        tokenizer_config.json
    ADDED
    
    | 
         @@ -0,0 +1,61 @@ 
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| 1 | 
         
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     | 
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     | 
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     | 
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     | 
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| 49 | 
         
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| 57 | 
         
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     | 
| 58 | 
         
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     | 
| 59 | 
         
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     | 
| 61 | 
         
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