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language: en
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---
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## prophetnet-large-uncased
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## prophetnet-large-uncased
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Pretrained weights for [ProphetNet](https://arxiv.org/abs/2001.04063).
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Pretrained weights for [ProphetNet](https://arxiv.org/abs/2001.04063).
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ProphetNet is a new pre-trained language model for sequence-to-sequence learning with a novel self-supervised objective called future n-gram prediction.
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ProphetNet is a new pre-trained language model for sequence-to-sequence learning with a novel self-supervised objective called future n-gram prediction.
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ProphetNet is able to predict more future tokens with a n-stream decoder. The original implementation is Fairseq version at [github repo](https://github.com/microsoft/ProphetNet).
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ProphetNet is able to predict more future tokens with a n-stream decoder. The original implementation is Fairseq version at [github repo](https://github.com/microsoft/ProphetNet).
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### Usage
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### Usage
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Please see [the official repository](https://github.com/microsoft/ProphetNet) for details.
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This pre-trained model can be fine-tuned on *sequence-to-sequence* tasks. The model could *e.g.* be trained on headline generation as follows:
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```python
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from transformers import ProphetNetForConditionalGeneration, ProphetNetTokenizer
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model = ProphetNetForConditionalGeneration.from_pretrained("microsoft/prophetnet-large-uncased")
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tokenizer = ProphetNetTokenizer.from_pretrained("microsoft/prophetnet-large-uncased")
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input_str = "the us state department said wednesday it had received no formal word from bolivia that it was expelling the us ambassador there but said the charges made against him are `` baseless ."
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target_str = "us rejects charges against its ambassador in bolivia"
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input_ids = tokenizer(input_str, return_tensors="pt").input_ids
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labels = tokenizer(target_str, return_tensors="pt").input_ids
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loss = model(input_ids, labels=labels, return_dict=True).loss
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```
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### Citation
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### Citation
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```bibtex
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```bibtex
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