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README.md ADDED
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+
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+ ---
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+ language: en
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+ tags:
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+ - sagemaker
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+ - mt5
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+ - summarization
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+ - spanish
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+ license: apache-2.0
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+ datasets:
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+ - mlsum - es
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+ model-index:
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+ - name: `mt5-small-mlsum`
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+ results:
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+ - task:
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+ name: Abstractive Text Summarization
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+ type: abstractive-text-summarization
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+ dataset:
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+ name: "MLSUM: MultiLingual SUMmarization dataset (Spanish)"
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+ type: mlsum
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+ metrics:
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+ - name: Validation ROGUE-1
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+ type: rogue-1
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+ value: 26.4352
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+ - name: Validation ROGUE-2
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+ type: rogue-2
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+ value: 8.9293
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+ - name: Validation ROGUE-L
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+ type: rogue-l
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+ value: 21.2622
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+ - name: Validation ROGUE-LSUM
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+ type: rogue-lsum
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+ value: 21.5518
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+ - name: Test ROGUE-1
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+ type: rogue-1
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+ value: 26.0756
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+ - name: Test ROGUE-2
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+ type: rogue-2
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+ value: 8.4669
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+ - name: Test ROGUE-L
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+ type: rogue-l
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+ value: 20.8167
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+ - name: Validation ROGUE-LSUM
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+ type: rogue-lsum
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+ value: 21.0822
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+ widget:
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+ - text: |
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+ Jeff: Can I train a 🤗 Transformers model on Amazon SageMaker?
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+ Philipp: Sure you can use the new Hugging Face Deep Learning Container.
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+ Jeff: ok.
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+ Jeff: and how can I get started?
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+ Jeff: where can I find documentation?
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+ Philipp: ok, ok you can find everything here. https://huggingface.co/blog/the-partnership-amazon-sagemaker-and-hugging-face
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+ ---
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+ ## `mt5-small-mlsum`
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+ This model was trained using Amazon SageMaker and the new Hugging Face Deep Learning container.
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+ For more information look at:
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+ - [🤗 Transformers Documentation: Amazon SageMaker](https://huggingface.co/transformers/sagemaker.html)
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+ - [Example Notebooks](https://github.com/huggingface/notebooks/tree/master/sagemaker)
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+ - [Amazon SageMaker documentation for Hugging Face](https://docs.aws.amazon.com/sagemaker/latest/dg/hugging-face.html)
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+ - [Python SDK SageMaker documentation for Hugging Face](https://sagemaker.readthedocs.io/en/stable/frameworks/huggingface/index.html)
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+ - [Deep Learning Container](https://github.com/aws/deep-learning-containers/blob/master/available_images.md#huggingface-training-containers)
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+ ## Hyperparameters
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+ {
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+ "dataset_config": "es",
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+ "dataset_name": "mlsum",
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+ "do_eval": true,
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+ "do_predict": true,
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+ "do_train": true,
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+ "fp16": true,
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+ "max_target_length": 64,
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+ "model_name_or_path": "google/mt5-small",
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+ "num_train_epochs": 10,
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+ "output_dir": "/opt/ml/checkpoints",
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+ "per_device_eval_batch_size": 4,
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+ "per_device_train_batch_size": 4,
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+ "predict_with_generate": true,
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+ "sagemaker_container_log_level": 20,
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+ "sagemaker_program": "run_summarization.py",
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+ "save_strategy": "epoch",
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+ "seed": 7,
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+ "summary_column": "summary",
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+ "text_column": "text"
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+ }
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+ ## Usage
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+
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+ ## Results
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+ | key | value |
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+ | --- | ----- |
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+ | eval_rouge1 | 26.4352 |
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+ | eval_rouge2 | 8.9293 |
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+ | eval_rougeL | 21.2622 |
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+ | eval_rougeLsum | 21.5518 |
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+ | test_rouge1 | 26.0756 |
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+ | test_rouge2 | 8.4669 |
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+ | test_rougeL | 20.8167 |
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+ | test_rougeLsum | 21.0822 |
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