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--- |
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license: apache-2.0 |
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language: |
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- en |
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--- |
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#### π To the best of our knowledge, UAVBench is the first vision-language benchmark to assess low-altitude UAV image-level and region-level understanding and reasoning capabilities of MLLMs. |
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<div align="center"> |
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<img src="https://github.com/ZhanYang-nwpu/SkyEyeGPT/blob/main/images/UAVIT-1M.png?raw=true" width="20%"/> |
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</div> |
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### π’ News |
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This is an ongoing project. We will be working on improving it. |
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- π¦ Complete evaluation code coming soon! π |
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- π¦ Detailed low-altitude UAV MLLMs model inference tutorial coming soon! π |
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- [05/13/2025] π We release our UAVBench benchmark and UAVIT-1M instruct tunning data to huggingface. [UAVIT-1M](https://huggingface.co/datasets/ZhanYang-nwpu/UAVIT-1M) |
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- [05/13/2025] π We release 3 low-altitude UAV Multi-modal Large Language Model baselines. π€[LLaVA1.5-UAV](https://huggingface.co/ZhanYang-nwpu/LLaVA1.5-UAV), π€[MiniGPTv2-UAV](https://huggingface.co/ZhanYang-nwpu/MiniGPTv2-UAV), π€[GeoChat-UAV](https://huggingface.co/ZhanYang-nwpu/GeoChat-UAV) |
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### π UAVBench Benchmark |
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To evaluate existing MLLMsβ abilities in low-altitude UAV vision-language tasks, we introduce the UAVBench Benchmark. |
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The UAVBench comprises about **966k high-quality data samples** and **43 test units**, across **10 tasks** at the image-level and region-level, covering **261k multi-spatial resolution and multi-scene images**. |
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### π UAVIT-1M Instruct Tuning Dataset |
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UAVIT-1M consists of approximately **1.24 million diverse instructions**, covering **789k multi-scene low-altitude UAV images** and about **2,000 types of spatial resolutions** with **11 distinct tasks**. |
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UAVBench and UAVIT-1M feature pure real-world visual images and rich weather conditions, and involve manual sampling verification to ensure high quality. |
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For more information, please refer to our π [Homepage](https://). |
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### π¨ Contact |
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If you have any questions about this project, please feel free to contact zhanyangnwpu@gmail.com. |