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metadata
language: es
tags:
  - biomedical
  - clinical
  - spanish
  - xlm-roberta-large
license: mit
datasets:
  - IIC/livingner3
metrics:
  - f1
model-index:
  - name: IIC/xlm-roberta-large-livingner3
    results:
      - task:
          type: multi-label-classification
        dataset:
          name: livingner3
          type: IIC/livingner3
          split: test
        metrics:
          - name: f1
            type: f1
            value: 0.606
pipeline_tag: text-classification

xlm-roberta-large-livingner3

This model is a finetuned version of xlm-roberta-large for the livingner3 dataset used in a benchmark in the paper TODO. The model has a F1 of 0.606

Please refer to the original publication for more information TODO LINK

Parameters used

parameter Value
batch size 16
learning rate 2e-05
classifier dropout 0
warmup ratio 0
warmup steps 0
weight decay 0
optimizer AdamW
epochs 10
early stopping patience 3

BibTeX entry and citation info

TODO