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Commit
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Add SetFit model

Browse files
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README.md ADDED
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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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+ metrics:
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+ - accuracy
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+ widget:
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+ - text: She picks up a wine glass and takes a drink. She
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+ - text: Someone smiles as she looks out her window. Their car
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+ - text: Someone turns and her jaw drops at the site of the other woman. Moving in
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+ slow motion, someone
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+ - text: He sneers and winds up with his fist. Someone
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+ - text: He smooths it back with his hand. Finally, appearing confident and relaxed
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+ and with the old familiar glint in his eyes, someone
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+ pipeline_tag: text-classification
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+ inference: true
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+ base_model: sentence-transformers/paraphrase-mpnet-base-v2
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+ model-index:
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+ - name: SetFit with sentence-transformers/paraphrase-mpnet-base-v2
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+ results:
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+ - task:
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+ type: text-classification
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+ name: Text Classification
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+ dataset:
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+ name: Unknown
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+ type: unknown
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+ split: test
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+ metrics:
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+ - type: accuracy
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+ value: 0.16538461538461538
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+ name: Accuracy
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+ ---
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+
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+ # SetFit with sentence-transformers/paraphrase-mpnet-base-v2
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+
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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 [sentence-transformers/paraphrase-mpnet-base-v2](https://huggingface.co/sentence-transformers/paraphrase-mpnet-base-v2) 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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+
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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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+ ## Model Details
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+
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+ ### Model Description
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+ - **Model Type:** SetFit
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+ - **Sentence Transformer body:** [sentence-transformers/paraphrase-mpnet-base-v2](https://huggingface.co/sentence-transformers/paraphrase-mpnet-base-v2)
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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:** 9 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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+
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+ ### Model Sources
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+
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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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+
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+ ### Model Labels
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+ | Label | Examples |
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+ |:------|:----------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------|
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+ | 8 | <ul><li>'Later she meets someone at the bar. He'</li><li>'He heads to them and sits. The bus'</li><li>'Someone leaps to his feet and punches the agent in the face. Seemingly unaffected, the agent'</li></ul> |
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+ | 2 | <ul><li>'A man sits behind a desk. Two people'</li><li>'A man is seen standing at the bottom of a hole while a man records him. Two men'</li><li>'Someone questions his female colleague who shrugs. Through a window, we'</li></ul> |
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+ | 0 | <ul><li>'A woman bends down and puts something on a scale. She then'</li><li>'He pulls down the blind. He'</li><li>'Someone flings his hands forward. The someone fires, but the water'</li></ul> |
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+ | 6 | <ul><li>'People are sitting down on chairs. They'</li><li>'They look up at stained glass skylights. The Americans'</li><li>'The lady and the man dance around each other in a circle. The people'</li></ul> |
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+ | 1 | <ul><li>'An older gentleman kisses her. As he leads her off, someone'</li><li>'The first girl comes back and does it effortlessly as the second girl still struggles. For the last round, the girl'</li><li>'As she leaves, the bartender smiles. Now the blonde'</li></ul> |
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+ | 3 | <ul><li>'Someone lowers his demoralized gaze. Someone'</li><li>'Someone goes into his bedroom. Someone'</li><li>'As someone leaves, someone spots him on the monitor. Someone'</li></ul> |
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+ | 7 | <ul><li>'Four inches of Plexiglas separate the two and they talk on monitored phones. Someone'</li><li>'The American and Russian commanders each watch them returning. As someone'</li><li>'A group of walkers walk along the sidewalk near the lake. A man'</li></ul> |
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+ | 4 | <ul><li>'The secretary flexes the foot of her crossed - leg as she eyes someone. The woman'</li><li>'A man in a white striped shirt is smiling. A woman'</li><li>'He grabs her hair and pulls her head back. She'</li></ul> |
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+ | 5 | <ul><li>'He heads out of the plaza. Someone'</li><li>"As he starts back, he sees someone's scared look just before he slams the door shut. Someone"</li><li>'He nods at her beaming. Someone'</li></ul> |
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+
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+ ## Evaluation
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+
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+ ### Metrics
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+ | Label | Accuracy |
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+ |:--------|:---------|
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+ | **all** | 0.1654 |
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+
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+ ## Uses
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+
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+ ### Direct Use for Inference
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+
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+ 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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+ model = SetFitModel.from_pretrained("HelgeKn/Swag-multi-class-20")
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+ # Run inference
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+ preds = model("He sneers and winds up with his fist. Someone")
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+ ```
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+
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+ <!--
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+ ### Downstream Use
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+
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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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+ <!--
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+ ### Out-of-Scope Use
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+
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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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+ <!--
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+ ## Bias, Risks and Limitations
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+
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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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+ <!--
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+ ### Recommendations
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+
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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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+
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+ ## Training Details
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+
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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 | 5 | 12.1056 | 33 |
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+
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+ | Label | Training Sample Count |
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+ |:------|:----------------------|
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+ | 0 | 20 |
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+ | 1 | 20 |
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+ | 2 | 20 |
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+ | 3 | 20 |
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+ | 4 | 20 |
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+ | 5 | 20 |
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+ | 6 | 20 |
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+ | 7 | 20 |
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+ | 8 | 20 |
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+
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+ ### Training Hyperparameters
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+ - batch_size: (16, 16)
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+ - num_epochs: (2, 2)
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+ - max_steps: -1
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+ - sampling_strategy: oversampling
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+ - num_iterations: 20
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+ - body_learning_rate: (2e-05, 2e-05)
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+ - head_learning_rate: 2e-05
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+ - loss: CosineSimilarityLoss
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+ - distance_metric: cosine_distance
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+ - margin: 0.25
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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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+ - eval_max_steps: -1
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+ - load_best_model_at_end: False
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+
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+ ### Training Results
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+ | Epoch | Step | Training Loss | Validation Loss |
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+ |:------:|:----:|:-------------:|:---------------:|
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+ | 0.0022 | 1 | 0.3747 | - |
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+ | 0.1111 | 50 | 0.2052 | - |
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+ | 0.2222 | 100 | 0.1878 | - |
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+ | 0.3333 | 150 | 0.1126 | - |
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+ | 0.4444 | 200 | 0.1862 | - |
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+ | 0.5556 | 250 | 0.1385 | - |
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+ | 0.6667 | 300 | 0.0154 | - |
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+ | 0.7778 | 350 | 0.0735 | - |
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+ | 0.8889 | 400 | 0.0313 | - |
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+ | 1.0 | 450 | 0.0189 | - |
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+ | 1.1111 | 500 | 0.0138 | - |
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+ | 1.2222 | 550 | 0.0046 | - |
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+ | 1.3333 | 600 | 0.0043 | - |
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+ | 1.4444 | 650 | 0.0021 | - |
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+ | 1.5556 | 700 | 0.0033 | - |
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+ | 1.6667 | 750 | 0.001 | - |
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+ | 1.7778 | 800 | 0.0026 | - |
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+ | 1.8889 | 850 | 0.0022 | - |
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+ | 2.0 | 900 | 0.0014 | - |
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+
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+ ### Framework Versions
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+ - Python: 3.9.13
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+ - SetFit: 1.0.1
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+ - Sentence Transformers: 2.2.2
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+ - Transformers: 4.36.0
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+ - PyTorch: 2.1.1+cpu
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+ - Datasets: 2.15.0
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+ - Tokenizers: 0.15.0
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+
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+ ## Citation
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+
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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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+ <!--
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+ ## Glossary
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+
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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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+ <!--
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+ ## Model Card Authors
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+
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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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+ <!--
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+ ## Model Card Contact
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+
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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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