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Add evaluation results on cnn_dailymail dataset
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metadata
language: en
license: apache-2.0
tags:
  - summarization
datasets:
  - cnn_dailymail
metrics:
  - R1
  - R2
  - RL
model-index:
  - name: echarlaix/bart-base-cnn-r2-18.7-d23-hybrid
    results:
      - task:
          type: summarization
          name: Summarization
        dataset:
          name: cnn_dailymail
          type: cnn_dailymail
          config: 3.0.0
          split: test
        metrics:
          - name: ROUGE-1
            type: rouge
            value: 23.7908
            verified: true
          - name: ROUGE-2
            type: rouge
            value: 11.3439
            verified: true
          - name: ROUGE-L
            type: rouge
            value: 19.7608
            verified: true
          - name: ROUGE-LSUM
            type: rouge
            value: 22.3485
            verified: true
          - name: loss
            type: loss
            value: 2.0443272590637207
            verified: true
          - name: gen_len
            type: gen_len
            value: 19.9996
            verified: true

facebook/bart-base model fine-tuned on CNN/DailyMail

This model was created using the nn_pruning python library: the linear layers contains 23% of the original weights.

The model contains 45% of the original weights overall (the embeddings account for a significant part of the model, and they are not pruned by this method).

Fine-Pruning details

This model was fine-tuned from the HuggingFace model. A side-effect of block pruning is that some of the attention heads are completely removed: 61 heads were removed on a total of 216 (28.2%).

Details of the CNN/DailyMail dataset

Dataset Split # samples
CNN/DailyMail train 287K
CNN/DailyMail eval 13K

Results

Metric # Value
Rouge 1 41.43
Rouge 2 18.72
Rouge L 38.35