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vllm serve lightonai/OriOn-Mistral (see Serving below).| Model / checkpoint | VA | LCA | MMLBD-C | MMLB 128K | SlideVQA | Helmet | LongBench v2 | DUDE |
|---|---|---|---|---|---|---|---|---|
| OriOn-Qwen (LongPO) | 94.6 | 93.1 | 56.4 | 75.6 | 75.5 | 62.9 | 42.0 | 56.0 |
| OriOn-Mistral (Plain Distill) | 84.9 | 83.0 | 47.4 | 65.7 | 71.2 | 53.1 | 38.0 | 54.0 |
| Mistral 3.1 Small (24B) | 80.2 | 76.7 | 41.4 | 66.4 | 67.8 | 37.0 | 39.0 | 52.8 |
vllm serve lightonai/OriOn-Mistral -tp 2 --quantization fp81@misc{orion_longdoc_vlm_2026,
2 title={How to Train Your Long-Context Visual Document Model},
3 author={Austin Veselka},
4 year={2026},
5 eprint={2602.15257},
6 archivePrefix={arXiv},
7 primaryClass={cs.CV},
8 url={https://arxiv.org/abs/2602.15257},
9}
10@misc{mistral31small,
11 title={Mistral Small 3.1},
12 year={2025},
13 author={MistralAI},
14}
15@misc{mmlbd,
16 title={MMLongBench-Doc: Benchmarking Long-context Document Understanding with Visualizations},
17 author={Yubo Ma and Yuhang Zang and Liangyu Chen and Meiqi Chen and Yizhu Jiao and Xinze Li and Xinyuan Lu and Ziyu Liu and Yan Ma and Xiaoyi Dong and Pan Zhang and Liangming Pan and Yu-Gang Jiang and Jiaqi Wang and Yixin Cao and Aixin Sun},
18 year={2024},
19 eprint={2407.01523},
20 archivePrefix={arXiv},
21 primaryClass={cs.CV},
22 url={https://arxiv.org/abs/2407.01523},
23}