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poltextlab/xlm-roberta-large-i5-binary-codebook-v14

sourceHugging Facecc-by-4.0updated 6mo agoView on Hugging Face
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xlm-roberta-large-i5-binary-codebook-v14

How to use the model

python
from transformers import AutoTokenizer, pipeline

tokenizer = AutoTokenizer.from_pretrained("xlm-roberta-large")
pipe = pipeline(
    model="poltextlab/xlm-roberta-large-i5-binary-codebook-v14",
    task="text-classification",
    tokenizer=tokenizer,
    use_fast=False,
    token="<your_hf_read_only_token>"
)

text = "<text_to_classify>"
pipe(text)

Classification Report

Overall Performance:

  • Accuracy: N/A
  • Macro Avg: Precision: 0.76, Recall: 0.76, F1-score: 0.76
  • Weighted Avg: Precision: 0.76, Recall: 0.76, F1-score: 0.76

Per-Class Metrics:

LabelPrecisionRecallF1-scoreSupport
(0) Not illiberal0.790.770.7830
(1) Illiberal0.730.760.7525

Inference platform

This model is used by the CAP Babel Machine, an open-source and free natural language processing tool, designed to simplify and speed up projects for comparative research.

Cooperation

Model performance can be significantly improved by extending our training sets. We appreciate every submission of CAP-coded corpora (of any domain and language) at poltextlab{at}poltextlab{dot}com or by using the CAP Babel Machine.

Debugging and issues

This architecture uses the sentencepiece tokenizer. In order to run the model before transformers==4.27 you need to install it manually.