thegenerativegeneration
commited on
Upload 13 files
Browse files- .gitattributes +1 -0
- 1_Pooling/config.json +10 -0
- README.md +216 -0
- config.json +26 -0
- config_sentence_transformers.json +9 -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 +55 -0
.gitattributes
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*.zip filter=lfs diff=lfs merge=lfs -text
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*.zst filter=lfs diff=lfs merge=lfs -text
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tokenizer.json filter=lfs diff=lfs merge=lfs -text
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1_Pooling/config.json
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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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"pooling_mode_weightedmean_tokens": false,
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"pooling_mode_lasttoken": false,
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"include_prompt": true
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}
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README.md
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---
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library_name: setfit
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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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base_model: intfloat/multilingual-e5-small
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metrics:
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- accuracy
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widget:
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- text: 'query: Sí, la próxima vez que vayas, cuenta conmigo. He querido salir y hacer
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más actividades en la naturaleza.'
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- text: 'query: I''m man, I''m leaving now.'
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- text: 'query: Ja, forse possiamo fare un giro in bicicletta insieme.'
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- text: 'query: Mak saya suruh balik, jumpa lagi.'
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- text: 'query: İnanılmaz, bu harika! Bir ayı gördüğüne inanamıyorum!'
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pipeline_tag: text-classification
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inference: true
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---
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# SetFit with intfloat/multilingual-e5-small
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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-small](https://huggingface.co/intfloat/multilingual-e5-small) as the Sentence Transformer embedding model. A [SetFitHead](huggingface.co/docs/setfit/reference/main#setfit.SetFitHead) instance is used for classification.
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The model has been trained using an efficient few-shot learning technique that involves:
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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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## Model Details
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### Model Description
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- **Model Type:** SetFit
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- **Sentence Transformer body:** [intfloat/multilingual-e5-small](https://huggingface.co/intfloat/multilingual-e5-small)
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- **Classification head:** a [SetFitHead](huggingface.co/docs/setfit/reference/main#setfit.SetFitHead) instance
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- **Maximum Sequence Length:** 512 tokens
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- **Number of Classes:** 2 classes
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<!-- - **Training Dataset:** [Unknown](https://huggingface.co/datasets/unknown) -->
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<!-- - **Language:** Unknown -->
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<!-- - **License:** Unknown -->
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### Model Sources
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- **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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- **Blogpost:** [SetFit: Efficient Few-Shot Learning Without Prompts](https://huggingface.co/blog/setfit)
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### Model Labels
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| Label | Examples |
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|:------|:-----------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------|
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| 1 | <ul><li>'query: Tja, måste dra nu, ses senare.'</li><li>'query: Ispričavam se, moram sada otići.'</li><li>'query: Przepraszam, muszę już iść.'</li></ul> |
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| 0 | <ul><li>'query: Sveiki, kā jums klājas?'</li><li>'query: அதிர்ச்சிகரமானது, அது மிகவும் அருமையாக இருக்கிறது! நீ கரடியை பார்த்தது எனக்கு நம்பிக்கையே வரவில்லை!'</li><li>'query: Ég hef það fínt, takk. Og þú?'</li></ul> |
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## Uses
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### Direct Use for Inference
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First install the SetFit library:
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```bash
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pip install setfit
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```
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Then you can load this model and run inference.
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```python
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from setfit import SetFitModel
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# Download from the 🤗 Hub
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model = SetFitModel.from_pretrained("setfit_model_id")
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# Run inference
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preds = model("query: I'm man, I'm leaving now.")
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```
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<!--
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### Downstream Use
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*List how someone could finetune this model on their own dataset.*
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-->
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<!--
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### Out-of-Scope Use
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*List how the model may foreseeably be misused and address what users ought not to do with the model.*
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-->
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<!--
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## Bias, Risks and Limitations
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*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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-->
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<!--
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### Recommendations
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*What are recommendations with respect to the foreseeable issues? For example, filtering explicit content.*
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-->
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## Training Details
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### Training Set Metrics
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| Training set | Min | Median | Max |
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|:-------------|:----|:-------|:----|
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| Word count | 2 | 7.6965 | 31 |
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| Label | Training Sample Count |
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|:------|:----------------------|
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| 0 | 902 |
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| 1 | 910 |
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### Training Hyperparameters
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- batch_size: (16, 2)
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- num_epochs: (1, 16)
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- max_steps: -1
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- sampling_strategy: undersampling
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- body_learning_rate: (1e-05, 1e-05)
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- head_learning_rate: 0.001
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- loss: CosineSimilarityLoss
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- distance_metric: cosine_distance
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- margin: 0.1
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- end_to_end: False
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- use_amp: False
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- warmup_proportion: 0.1
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- seed: 42
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- run_name: multilingual-e5-small
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- eval_max_steps: -1
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- load_best_model_at_end: True
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### Training Results
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| Epoch | Step | Training Loss | Validation Loss |
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|:------:|:----:|:-------------:|:---------------:|
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| 0.0000 | 1 | 0.3613 | - |
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| 0.0005 | 50 | 0.3577 | - |
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| 0.0010 | 100 | 0.3511 | 0.3413 |
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| 0.0015 | 150 | 0.3372 | - |
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| 0.0019 | 200 | 0.3447 | 0.3347 |
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| 0.0024 | 250 | 0.3349 | - |
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| 0.0029 | 300 | 0.3326 | 0.3224 |
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| 0.0034 | 350 | 0.3372 | - |
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| 0.0039 | 400 | 0.3185 | 0.3039 |
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| 0.0044 | 450 | 0.2828 | - |
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| 0.0049 | 500 | 0.3055 | 0.2774 |
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| 0.0054 | 550 | 0.2594 | - |
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| 0.0058 | 600 | 0.2779 | 0.2489 |
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| 0.0063 | 650 | 0.2486 | - |
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| 0.0068 | 700 | 0.2321 | 0.22 |
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| 0.0073 | 750 | 0.1838 | - |
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| 0.0078 | 800 | 0.1845 | 0.2075 |
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| 0.0083 | 850 | 0.1899 | - |
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| 0.0088 | 900 | 0.2147 | 0.2025 |
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| 0.0093 | 950 | 0.1644 | - |
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| 0.0097 | 1000 | 0.2019 | 0.1821 |
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| 0.0102 | 1050 | 0.2309 | - |
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| 0.0107 | 1100 | 0.2084 | 0.1784 |
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| 0.0112 | 1150 | 0.1508 | - |
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| 0.0117 | 1200 | 0.1064 | 0.1453 |
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| 0.0122 | 1250 | 0.1376 | - |
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| 0.0127 | 1300 | 0.0828 | 0.121 |
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| 0.0132 | 1350 | 0.1628 | - |
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| 0.0136 | 1400 | 0.1308 | 0.1018 |
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| 0.0141 | 1450 | 0.0566 | - |
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| 0.0146 | 1500 | 0.0953 | 0.0767 |
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| 0.0151 | 1550 | 0.1607 | - |
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| 0.0156 | 1600 | 0.1322 | 0.0625 |
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| 0.0161 | 1650 | 0.0861 | - |
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| 0.0166 | 1700 | 0.0926 | 0.0423 |
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| 0.0171 | 1750 | 0.0338 | - |
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| 0.0175 | 1800 | 0.1029 | 0.0344 |
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| 0.0180 | 1850 | 0.0442 | - |
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| 0.0185 | 1900 | 0.019 | 0.0256 |
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| 0.0190 | 1950 | 0.0489 | - |
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| 0.0195 | 2000 | 0.0675 | 0.0187 |
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### Framework Versions
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- Python: 3.10.11
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- SetFit: 1.0.3
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- Sentence Transformers: 2.7.0
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- Transformers: 4.39.0
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- PyTorch: 2.4.0
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- Datasets: 2.20.0
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- Tokenizers: 0.15.2
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## Citation
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### BibTeX
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```bibtex
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@article{https://doi.org/10.48550/arxiv.2209.11055,
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doi = {10.48550/ARXIV.2209.11055},
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url = {https://arxiv.org/abs/2209.11055},
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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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keywords = {Computation and Language (cs.CL), FOS: Computer and information sciences, FOS: Computer and information sciences},
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title = {Efficient Few-Shot Learning Without Prompts},
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publisher = {arXiv},
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year = {2022},
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copyright = {Creative Commons Attribution 4.0 International}
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}
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```
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<!--
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## Glossary
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*Clearly define terms in order to be accessible across audiences.*
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-->
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<!--
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## Model Card Authors
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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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-->
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<!--
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## Model Card Contact
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*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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-->
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config.json
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{
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"_name_or_path": "intfloat/multilingual-e5-small",
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"architectures": [
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"BertModel"
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],
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"attention_probs_dropout_prob": 0.1,
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"classifier_dropout": null,
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"hidden_act": "gelu",
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"hidden_dropout_prob": 0.1,
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"hidden_size": 384,
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"initializer_range": 0.02,
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"intermediate_size": 1536,
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"layer_norm_eps": 1e-12,
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"max_position_embeddings": 512,
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"model_type": "bert",
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"num_attention_heads": 12,
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"num_hidden_layers": 12,
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"pad_token_id": 0,
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"position_embedding_type": "absolute",
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"tokenizer_class": "XLMRobertaTokenizer",
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"torch_dtype": "float32",
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"transformers_version": "4.39.0",
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"type_vocab_size": 2,
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"use_cache": true,
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"vocab_size": 250037
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}
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config_sentence_transformers.json
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{
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"__version__": {
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"sentence_transformers": "2.7.0",
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"transformers": "4.39.0",
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"pytorch": "2.4.0"
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},
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"prompts": {},
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"default_prompt_name": null
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}
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config_setfit.json
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{
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"labels": null,
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"normalize_embeddings": false
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}
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model.safetensors
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version https://git-lfs.github.com/spec/v1
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2 |
+
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size 470637416
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model_head.pkl
ADDED
@@ -0,0 +1,3 @@
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|
1 |
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version https://git-lfs.github.com/spec/v1
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oid sha256:df178af3c19cf3bd160758f24dfedbf2133263527e90b572f5ff9c7107f6a5de
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size 4608
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modules.json
ADDED
@@ -0,0 +1,20 @@
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1 |
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[
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{
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"idx": 0,
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"name": "0",
|
5 |
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"path": "",
|
6 |
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"type": "sentence_transformers.models.Transformer"
|
7 |
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},
|
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{
|
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"idx": 1,
|
10 |
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"name": "1",
|
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"path": "1_Pooling",
|
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"type": "sentence_transformers.models.Pooling"
|
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},
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{
|
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"idx": 2,
|
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"name": "2",
|
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"path": "2_Normalize",
|
18 |
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"type": "sentence_transformers.models.Normalize"
|
19 |
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}
|
20 |
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]
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sentence_bert_config.json
ADDED
@@ -0,0 +1,4 @@
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|
1 |
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{
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"max_seq_length": 512,
|
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"do_lower_case": false
|
4 |
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}
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sentencepiece.bpe.model
ADDED
@@ -0,0 +1,3 @@
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1 |
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version https://git-lfs.github.com/spec/v1
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oid sha256:cfc8146abe2a0488e9e2a0c56de7952f7c11ab059eca145a0a727afce0db2865
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size 5069051
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special_tokens_map.json
ADDED
@@ -0,0 +1,51 @@
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"rstrip": false,
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|
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"eos_token": {
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|
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|
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|
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|
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|
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|
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},
|
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"pad_token": {
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"content": "<pad>",
|
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|
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|
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|
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|
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},
|
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|
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|
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|
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|
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},
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|
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|
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|
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"single_word": false
|
50 |
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}
|
51 |
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}
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tokenizer.json
ADDED
@@ -0,0 +1,3 @@
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|
1 |
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version https://git-lfs.github.com/spec/v1
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2 |
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oid sha256:45b6ee00bc5023ac454b82c372ebe14b27866fa471b6dbb0d24e09b12909a1f4
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size 17083075
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tokenizer_config.json
ADDED
@@ -0,0 +1,55 @@
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{
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3 |
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4 |
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|
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|
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|
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|
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|
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|
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|
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|
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|
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|
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},
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|
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|
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|
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|
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|
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|
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|
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|
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"pad_token": "<pad>",
|
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"sep_token": "</s>",
|
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"sp_model_kwargs": {},
|
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"tokenizer_class": "XLMRobertaTokenizer",
|
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"unk_token": "<unk>"
|
55 |
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}
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