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metadata
tags:
  - spacy
  - token-classification
language:
  - en
model-index:
  - name: en_xlnet_res_pipeline
    results:
      - task:
          name: NER
          type: token-classification
        metrics:
          - name: NER Precision
            type: precision
            value: 0.6765457333
          - name: NER Recall
            type: recall
            value: 0.7866904337
          - name: NER F Score
            type: f_score
            value: 0.7274725275
Feature Description
Name en_xlnet_res_pipeline
Version 0.0.0
spaCy >=3.5.1,<3.6.0
Default Pipeline transformer, ner
Components transformer, ner
Vectors 0 keys, 0 unique vectors (0 dimensions)
Sources n/a
License n/a
Author n/a

Label Scheme

View label scheme (5 labels for 1 components)
Component Labels
ner degree, experience, majors, publications, skills

Accuracy

Type Score
ENTS_F 72.75
ENTS_P 67.65
ENTS_R 78.67
TRANSFORMER_LOSS 226242.24
NER_LOSS 5192776.38