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AofaYu71/LatentSkill

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LatentSkill Checkpoints

This model repository contains the released checkpoints for LatentSkill: From In-Context Textual Skills to In-Weight Latent Skills for LLM Agents.

Code: https://github.com/yuaofan0-oss/LatentSkill Paper: https://arxiv.org/abs/2606.06087 Dataset repository: https://huggingface.co/datasets/AofaYu71/LatentSkill

Contents

text
config.json
latentskill_pretrain_qwen3_8b/
  pretrain.tar.gz
latentskill_sft_qwen3_8b/
  train.tar.gz

The checkpoint archives are expected to be extracted under the code repository root:

text
checkpoints/latentskill_pretrain_qwen3_8b/pretrain/
checkpoints/latentskill_sft_qwen3_8b/train/

Download

From the root of the code repository:

bash
hf download AofaYu71/LatentSkill \
  --repo-type model \
  --local-dir checkpoints \
  --include "config.json" \
            "latentskill_pretrain_qwen3_8b/pretrain.tar.gz" \
            "latentskill_sft_qwen3_8b/train.tar.gz"

tar -xzf checkpoints/latentskill_pretrain_qwen3_8b/pretrain.tar.gz \
  -C checkpoints/latentskill_pretrain_qwen3_8b/

tar -xzf checkpoints/latentskill_sft_qwen3_8b/train.tar.gz \
  -C checkpoints/latentskill_sft_qwen3_8b/

Intended Use

These checkpoints are intended for reproducing the LatentSkill training and evaluation pipeline described in the paper. They are used with the LatentSkill codebase and the Qwen3-8B backbone.

The checkpoints are not standalone conversational models. Please load them through the project code and follow the paths documented in the GitHub README.

Download Statistics

The repository includes a top-level config.json metadata file so Hugging Face can count model downloads through the model download-statistics query file. The file is included in the download command above and is not used as a standalone Transformers runtime configuration.

Citation

bibtex
@article{yu2026latentskillincontexttextualskills,
      title={LatentSkill: From In-Context Textual Skills to In-Weight Latent Skills for LLM Agents},
      author={Aofan Yu and Chenyu Zhou and Tianyi Xu and Zihan Guo and Rong Shan and Zhihui Fu and Jun Wang and Weiwen Liu and Yong Yu and Weinan Zhang and Jianghao Lin},
      year={2026},
      eprint={2606.06087},
      archivePrefix={arXiv},
      primaryClass={cs.CL},
      url={https://arxiv.org/abs/2606.06087},
}