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narcolepticchicken/trace-reward-model-qwen3-4b-v1

sourceHugging Faceupdated 5mo agoView on Hugging Face
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Model Card for trace-reward-model-qwen3-4b-v1

This model is a fine-tuned version of Qwen/Qwen3-4B. It has been trained using TRL.

Quick start

python
from transformers import pipeline

text = "The capital of France is Paris."
rewarder = pipeline(model="narcolepticchicken/trace-reward-model-qwen3-4b-v1", device="cuda")
output = rewarder(text)[0]
print(output["score"])

Training procedure

This model was trained with Reward.

Framework versions

  • —TRL: 1.3.0
  • —Transformers: 5.8.0
  • —Pytorch: 2.11.0
  • —Datasets: 4.8.5
  • —Tokenizers: 0.22.2

Citations

Cite TRL as:

bibtex
@software{vonwerra2020trl,
  title   = {{TRL: Transformers Reinforcement Learning}},
  author  = {von Werra, Leandro and Belkada, Younes and Tunstall, Lewis and Beeching, Edward and Thrush, Tristan and Lambert, Nathan and Huang, Shengyi and Rasul, Kashif and Gallouédec, Quentin},
  license = {Apache-2.0},
  url     = {https://github.com/huggingface/trl},
  year    = {2020}
}

<!-- ml-intern-provenance -->

Generated by ML Intern

This model repository was generated by ML Intern, an agent for machine learning research and development on the Hugging Face Hub.

  • —Try ML Intern: https://smolagents-ml-intern.hf.space
  • —Source code: https://github.com/huggingface/ml-intern

Usage

python
from transformers import AutoModelForCausalLM, AutoTokenizer

model_id = 'narcolepticchicken/trace-reward-model-qwen3-4b-v1'
tokenizer = AutoTokenizer.from_pretrained(model_id)
model = AutoModelForCausalLM.from_pretrained(model_id)

For non-causal architectures, replace AutoModelForCausalLM with the appropriate AutoModel class.