Verdict_Splitter / README.md
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metadata
language: fa
pipeline_tag: token-classification
library_name: transformers

QomSSLab/Verdict_Splitter

This repository hosts an XLM-RoBERTa token-classification head trained.

Usage

from transformers import AutoTokenizer, AutoModelForTokenClassification, pipeline

model_id = "QomSSLab/Verdict_Splitter"
tokenizer = AutoTokenizer.from_pretrained(model_id)
model = AutoModelForTokenClassification.from_pretrained(model_id)
tagger = pipeline("token-classification", model=model, tokenizer=tokenizer, aggregation_strategy="simple")

text = "مثال از یک ورودی فارسی"
for entity in tagger(text):
    print(entity)

Labels

  • O
  • استدلال
  • تصمیم
  • خارج
  • خلع
  • مقدمه
  • پایانی

Metrics

Validation Metrics

  • Precision: 0.7430
  • Recall: 0.8457
  • F1: 0.7910
  • Accuracy: 0.9545

Per-label Breakdown

Label Precision Recall F1 Support
O 0.8468 0.7995 0.8225 394
استدلال 0.9754 0.8776 0.9239 6635
تصمیم 0.9917 0.9608 0.9760 5361
خارج 1.0000 1.0000 1.0000 0
خلع 1.0000 1.0000 1.0000 0
مقدمه 0.9279 0.9982 0.9618 10871
پایانی 0.9728 0.9902 0.9814 1732