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rafmacalaba/lfm2.5-Encoder-350M-datause

sourceHugging Faceapache-2.0updated 1mo agoView on Hugging Face
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lfm2.5-Encoder-350M-datause

Fine-tune of LiquidAI/LFM2.5-Encoder-350M for BIO data-use mention tagging (dataset / survey / census / registry mentions in economics research papers).

Labels

  • NAMED_DATA — a proper name, title, or acronym of a specific data source
  • DESCRIPTIVE_DATA — a source described in words but not named
  • VAGUE_DATA — generic data wording with no identifiable source

Training

  • base model: LiquidAI/LFM2.5-Encoder-350M
  • dataset: rafmacalaba/data-use-mentions (bio config)
  • epochs: 5
  • learning rate: 2e-05
  • batch size: 16
  • precision: bf16

Evaluation (holdout, label-agnostic)

thrtpfpfnprecisionrecallf0.5f1
0.104577109127690.80750.62310.76240.7034
0.204577109127690.80750.62310.76240.7034
0.304576109127700.80750.62290.76230.7033
0.404565108627810.80780.62140.76210.7025
0.504501103328450.81330.61270.76330.6989
0.60420084031460.83330.57170.76350.6782
0.70387768734690.84950.52780.75720.6510

Best F0.5: 0.7635 (thr=0.6) Best F1: 0.7034 (thr=0.1)