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xxxllz/ChemVLR-7B
ChemVLR-7B is a image-text-to-text model from xxxllz. Use it for the image-text-to-text task on the model card, and read the license before you ship it in a product. It is set up for transformers.
ChemVLR is a chemical Vision-Language Model (VLM) designed to prioritize reasoning within the perception process. Unlike conventional chemical VLMs that often function as "black-box" systems, ChemVLR analyzes visual i…
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From the Hugging Face model README
ChemVLR is a chemical Vision-Language Model (VLM) designed to prioritize reasoning within the perception process. Unlike conventional chemical VLMs that often function as "black-box" systems, ChemVLR analyzes visual inputs in a fine-grained manner by explicitly identifying granular chemical descriptors, such as functional groups, prior to generating answers. This approach ensures the production of explicit and interpretable reasoning paths for complex visual chemical problems.
ChemVLR-7B is built upon the Qwen2.5-VL-7B backbone and trained using a three-stage framework to systemically build perception and reasoning capacity. It utilizes a curated dataset of 760k high-quality samples across molecular and reaction tasks.
@misc{zhao2026chemvlrprioritizingreasoningperception,
title={ChemVLR: Prioritizing Reasoning in Perception for Chemical Vision-Language Understanding},
author={Xuanle Zhao and Xinyuan Cai and Xiang Cheng and Xiuyi Chen and Bo Xu},
year={2026},
eprint={2604.06685},
archivePrefix={arXiv},
primaryClass={cs.CL},
url={https://arxiv.org/abs/2604.06685},
}
ChemVLR is built upon Qwen2.5-VL and Qwen3-VL. We thank these teams for open-sourcing their work!