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yangyz1230/Prism
Prism is a machine learning model from yangyz1230. Use it for the machine learning task on the model card, and read the license before you ship it in a product. It is set up for pytorch.
Prism provides pretrained checkpoints for gene expression prediction by integrating genomic sequence and multimodal signals.
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Updated Feb 27, 2026
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.ckpt71.9 MB · 100%
From the Hugging Face model README
Prism provides pretrained checkpoints for gene expression prediction by integrating genomic sequence and multimodal signals.
This repository is the model release for:
Extending Sequence Length is Not All You Need: Effective Integration of Multimodal Signals for Gene Expression Prediction (ICLR 2026)
K562 and GM128782, 22, 222, 2222, 22222Prism follows the same dataset setting as Seq2Exp (xingyusu/GeneExp).
Download checkpoints:
pip install huggingface_hub
python -c "from huggingface_hub import snapshot_download; snapshot_download(repo_id='yangyz1230/Prism', repo_type='model', local_dir='./ckpt')"
Run inference with the official code:
git clone https://github.com/yangzhao1230/Prism
cd Prism
pip install -r requirements.txt
DATA_ROOT=/path/to/data
bash test.sh $DATA_ROOT ./ckpt
@inproceedings{
yang2026extending,
title={Extending Sequence Length is Not All You Need: Effective Integration of Multimodal Signals for Gene Expression Prediction},
author={Zhao Yang and Yi Duan and Jiwei Zhu and Ying Ba and Chuan Cao and Bing Su},
booktitle={The Fourteenth International Conference on Learning Representations},
year={2026}
}