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--- |
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tags: |
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- spacy |
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- token-classification |
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language: |
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- es |
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model-index: |
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- name: es_metaextract_umsa_v1 |
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results: |
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- task: |
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name: NER |
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type: token-classification |
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metrics: |
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- name: NER Precision |
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type: precision |
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value: 0.8582004936 |
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- name: NER Recall |
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type: recall |
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value: 0.9470778743 |
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- name: NER F Score |
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type: f_score |
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value: 0.9004513804 |
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--- |
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| Feature | Description | |
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| --- | --- | |
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| **Name** | `es_metaextract_umsa_v1` | |
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| **Version** | `1.0` | |
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| **spaCy** | `>=3.7.2,<3.8.0` | |
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| **Default Pipeline** | `tok2vec`, `ner` | |
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| **Components** | `tok2vec`, `ner` | |
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| **Vectors** | 0 keys, 0 unique vectors (0 dimensions) | |
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| **Sources** | n/a | |
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| **License** | n/a | |
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| **Author** | [n/a]() | |
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### Label Scheme |
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<details> |
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<summary>View label scheme (6 labels for 1 components)</summary> |
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| Component | Labels | |
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| --- | --- | |
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| **`ner`** | `ADVISOR`, `AUTHOR`, `DEPARTMENT`, `FACULTY`, `TITLE`, `YEAR` | |
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</details> |
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### Accuracy |
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| Type | Score | |
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| --- | --- | |
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| `ENTS_F` | 90.05 | |
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| `ENTS_P` | 85.82 | |
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| `ENTS_R` | 94.71 | |
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| `TOK2VEC_LOSS` | 52012.59 | |
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| `NER_LOSS` | 228767.42 | |