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Add evaluation results on the squad_v2 config of squad_v2
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metadata
language: en
datasets:
  - squad
metrics:
  - squad
license: apache-2.0
model-index:
  - name: autoevaluate/distilbert-base-cased-distilled-squad
    results:
      - task:
          type: question-answering
          name: Question Answering
        dataset:
          name: squad_v2
          type: squad_v2
          config: squad_v2
          split: validation
        metrics:
          - name: Exact Match
            type: exact_match
            value: 39.7675
            verified: true
          - name: F1
            type: f1
            value: 43.6039
            verified: true
          - name: total
            type: total
            value: 11869
            verified: true

DistilBERT base cased distilled SQuAD

Note: This model is a clone of distilbert-base-cased-distilled-squad for internal testing.

This model is a fine-tune checkpoint of DistilBERT-base-cased, fine-tuned using (a second step of) knowledge distillation on SQuAD v1.1. This model reaches a F1 score of 87.1 on the dev set (for comparison, BERT bert-base-cased version reaches a F1 score of 88.7).

Using the question answering Evaluator from evaluate gives:

{'exact_match': 79.54588457899716,
 'f1': 86.81181300991533,
 'latency_in_seconds': 0.008683730778997168,
 'samples_per_second': 115.15787689073015,
 'total_time_in_seconds': 91.78703433400005}

which is roughly consistent with the official score.