readme: add initial version of model card
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this commit adds the initial version of model card.
README.md
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---
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language: nl
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license: mit
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tags:
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- flair
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- token-classification
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- sequence-tagger-model
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base_model: dbmdz/bert-tiny-historic-multilingual-cased
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widget:
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- text: Professoren der Geneeskun dige Faculteit te Groningen alsook van de HH , Doctoren
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en Chirurgijns van Groningen , Friesland , Noordholland , Overijssel , Gelderland
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, Drenthe , in welke Provinciën dit Elixir als Medicament voor Mond en Tanden
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reeds jaren bakend is .
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---
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# Fine-tuned Flair Model on Dutch ICDAR-Europeana NER Dataset
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This Flair model was fine-tuned on the
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[Dutch ICDAR-Europeana](https://github.com/stefan-it/historic-domain-adaptation-icdar)
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NER Dataset using hmBERT Tiny as backbone LM.
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The ICDAR-Europeana NER Dataset is a preprocessed variant of the
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[Europeana NER Corpora](https://github.com/EuropeanaNewspapers/ner-corpora) for Dutch and French.
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The following NEs were annotated: `PER`, `LOC` and `ORG`.
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# Results
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We performed a hyper-parameter search over the following parameters with 5 different seeds per configuration:
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* Batch Sizes: `[4, 8]`
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* Learning Rates: `[5e-05, 3e-05]`
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And report micro F1-score on development set:
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| Configuration | Seed 1 | Seed 2 | Seed 3 | Seed 4 | Seed 5 | Average |
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|-------------------|--------------|--------------|-----------------|--------------|--------------|-----------------|
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| `bs4-e10-lr5e-05` | [0.5572][1] | [0.5434][2] | [**0.5984**][3] | [0.5636][4] | [0.5674][5] | 0.566 ± 0.0203 |
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| `bs8-e10-lr5e-05` | [0.5072][6] | [0.5287][7] | [0.5641][8] | [0.5438][9] | [0.5346][10] | 0.5357 ± 0.0208 |
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| `bs4-e10-lr3e-05` | [0.519][11] | [0.471][12] | [0.5479][13] | [0.498][14] | [0.4977][15] | 0.5067 ± 0.0286 |
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| `bs8-e10-lr3e-05` | [0.4817][16] | [0.4511][17] | [0.4956][18] | [0.4627][19] | [0.4715][20] | 0.4725 ± 0.0171 |
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[1]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs4-wsFalse-e10-lr5e-05-poolingfirst-layers-1-crfFalse-1
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[2]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs4-wsFalse-e10-lr5e-05-poolingfirst-layers-1-crfFalse-2
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[3]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs4-wsFalse-e10-lr5e-05-poolingfirst-layers-1-crfFalse-3
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[4]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs4-wsFalse-e10-lr5e-05-poolingfirst-layers-1-crfFalse-4
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[5]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs4-wsFalse-e10-lr5e-05-poolingfirst-layers-1-crfFalse-5
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[6]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs8-wsFalse-e10-lr5e-05-poolingfirst-layers-1-crfFalse-1
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[7]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs8-wsFalse-e10-lr5e-05-poolingfirst-layers-1-crfFalse-2
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[8]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs8-wsFalse-e10-lr5e-05-poolingfirst-layers-1-crfFalse-3
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[9]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs8-wsFalse-e10-lr5e-05-poolingfirst-layers-1-crfFalse-4
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[10]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs8-wsFalse-e10-lr5e-05-poolingfirst-layers-1-crfFalse-5
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[11]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs4-wsFalse-e10-lr3e-05-poolingfirst-layers-1-crfFalse-1
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[12]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs4-wsFalse-e10-lr3e-05-poolingfirst-layers-1-crfFalse-2
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[13]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs4-wsFalse-e10-lr3e-05-poolingfirst-layers-1-crfFalse-3
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[14]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs4-wsFalse-e10-lr3e-05-poolingfirst-layers-1-crfFalse-4
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[15]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs4-wsFalse-e10-lr3e-05-poolingfirst-layers-1-crfFalse-5
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[16]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs8-wsFalse-e10-lr3e-05-poolingfirst-layers-1-crfFalse-1
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[17]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs8-wsFalse-e10-lr3e-05-poolingfirst-layers-1-crfFalse-2
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[18]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs8-wsFalse-e10-lr3e-05-poolingfirst-layers-1-crfFalse-3
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[19]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs8-wsFalse-e10-lr3e-05-poolingfirst-layers-1-crfFalse-4
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[20]: https://hf.co/stefan-it/hmbench-icdar-nl-hmbert_tiny-bs8-wsFalse-e10-lr3e-05-poolingfirst-layers-1-crfFalse-5
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The [training log](training.log) and TensorBoard logs (not available for hmBERT Base model) are also uploaded to the model hub.
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More information about fine-tuning can be found [here](https://github.com/stefan-it/hmBench).
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# Acknowledgements
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We thank [Luisa März](https://github.com/LuisaMaerz), [Katharina Schmid](https://github.com/schmika) and
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[Erion Çano](https://github.com/erionc) for their fruitful discussions about Historic Language Models.
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Research supported with Cloud TPUs from Google's [TPU Research Cloud](https://sites.research.google/trc/about/) (TRC).
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Many Thanks for providing access to the TPUs ❤️
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