Model card for allegro/herbert-klej-cased-tokenizer-v1 (#4184)
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language: polish
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---
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# HerBERT tokenizer
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**[HerBERT](https://en.wikipedia.org/wiki/Zbigniew_Herbert)** tokenizer is a character level byte-pair encoding with
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vocabulary size of 50k tokens. The tokenizer was trained on [Wolne Lektury](https://wolnelektury.pl/) and a publicly available subset of
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[National Corpus of Polish](http://nkjp.pl/index.php?page=14&lang=0) with [fastBPE](https://github.com/glample/fastBPE) library.
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Tokenizer utilize `XLMTokenizer` implementation from [transformers](https://github.com/huggingface/transformers).
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## Tokenizer usage
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Herbert tokenizer should be used together with [HerBERT model](https://huggingface.co/allegro/herbert-klej-cased-v1):
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```python
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from transformers import XLMTokenizer, RobertaModel
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tokenizer = XLMTokenizer.from_pretrained("allegro/herbert-klej-cased-tokenizer-v1")
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model = RobertaModel.from_pretrained("allegro/herbert-klej-cased-v1")
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encoded_input = tokenizer.encode("Kto ma lepszą sztukę, ma lepszy rząd – to jasne.", return_tensors='pt')
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outputs = model(encoded_input)
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```
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## License
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CC BY-SA 4.0
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## Citation
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If you use this tokenizer, please cite the following paper:
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```
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@misc{rybak2020klej,
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title={KLEJ: Comprehensive Benchmark for Polish Language Understanding},
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author={Piotr Rybak and Robert Mroczkowski and Janusz Tracz and Ireneusz Gawlik},
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year={2020},
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eprint={2005.00630},
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archivePrefix={arXiv},
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primaryClass={cs.CL}
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}
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```
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Paper is accepted at ACL 2020, as soon as proceedings appear, we will update the BibTeX.
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## Authors
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Tokenizer was created by **Allegro Machine Learning Research** team.
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You can contact us at: <a href="mailto:klejbenchmark@allegro.pl">klejbenchmark@allegro.pl</a>
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