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README.md
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- token-classification
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language:
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- grc
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model-index:
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- name: grc_odycy_joint_trf
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results:
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type: f_score
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value: 0.8352455255
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---
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| Feature | Description |
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| --- | --- |
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| **Name** | `grc_odycy_joint_trf` |
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| **Components** | `transformer`, `tagger`, `morphologizer`, `parser`, `trainable_lemmatizer`, `frequency_lemmatizer` |
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| **Vectors** | 0 keys, 0 unique vectors (0 dimensions) |
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| **Sources** | n/a |
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| **License** |
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-
| **Author** | [
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### Label Scheme
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- token-classification
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language:
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- grc
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license: mit
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model-index:
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- name: grc_odycy_joint_trf
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results:
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type: f_score
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value: 0.8352455255
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---
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<p align="center">
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<img width="200" src="https://github.com/centre-for-humanities-computing/odyCy/raw/main/docs/_static/logo_with_text_below.svg">
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<div align="center" style="color: #2c5882; font-weight: bold; font-size: 18px; margin-top: -20px;">
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A general-purpose NLP pipeline for Ancient-Greek.
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</div>
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</p>
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[![Open in Colab](https://colab.research.google.com/assets/colab-badge.svg)](https://colab.research.google.com/github/centre-for-humanities-computing/odyCy/blob/main/tutorials/01_odycy_getting_started.ipynb#&offline=true&sandboxMode=true)
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Check out our Documentation on [Basic Usage](https://centre-for-humanities-computing.github.io/odyCy/getting_started.html).
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## Performance
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odyCy achieves state of the art performance on multiple tasks on unseen test data from the Universal Dependencies Perseus treebank,
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and performs second best on the PROIEL treebank’s test set on even more tasks.
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In addition performance also seems relatively stable across the two evaluation datasets in comparison with other NLP pipelines.
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For plots and tables on OdyCy's performance, check out the Documentation page on [Performance](https://centre-for-humanities-computing.github.io/odyCy/performance.html)
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| Feature | Description |
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| --- | --- |
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| **Name** | `grc_odycy_joint_trf` |
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| **Components** | `transformer`, `tagger`, `morphologizer`, `parser`, `trainable_lemmatizer`, `frequency_lemmatizer` |
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| **Vectors** | 0 keys, 0 unique vectors (0 dimensions) |
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| **Sources** | n/a |
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| **License** | `MIT` |
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| **Author** | [{Jan Kostkan, Márton Kardos}](https://github.com/centre-for-humanities-computing/odyCy) |
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### Label Scheme
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