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README.md
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<div style="display: flex; align-items: center;">
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<img src="https://huggingface.co/datasets/likaixin/MMCode/resolve/main/logo.png" alt="MMCode Logo" style="width: 50px;margin-right: 20px;"/>
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<div style="display: flex; align-items: center; font-size: 40px; font-weight: bold;">MMCode
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</div>
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🚀 **MMCode is actively under development! If you find it useful and are interested in making it better and joining our team, please [drop an email](mailto:[email protected]). We'd love to hear from you!**
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## Dataset Description
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MMCode is a multi-modal code generation dataset designed to evaluate the problem-solving skills of code language models in visually rich contexts (i.e. images).
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It contains 3,548 questions paired with 6,
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The dataset emphasizes the extreme demand for reasoning abilities, the interwoven nature of textual and visual contents, and the occurrence of questions containing multiple images.
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## Languages
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## Key Features
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- **Multi-Modal Challenges**: MMCode is the first work towards code generation combining textual and visual information, requiring models to interpret and integrate both modalities of data for problem-solving.
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- **Rich Diversity**: With 3,548 questions paired with 6,
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- **Detailed Annotations**: The dataset includes detailed annotations for images, categorizing them into types `Data Structure`, `Geometry`, `3D`, `Demonstration`, `Math`, `Table`, `Pseudocode`, and `Others`, which allows for a detailed analysis of model performance across different visual information types.
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Please cite our work if you find it useful:
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```
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@misc{li2024MMCode,
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author = {Kaixin, Li and Yuchen, Tian and Qisheng, Hu},
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title = {MMCode: Evaluating Multi-Modal Code Language Models with Visually Rich Programming Problems},
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year = {2024},
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howpublished = {\url{https://github.com/Happylkx/MMCode}},
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<div style="display: flex; align-items: center;">
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<img src="https://huggingface.co/datasets/likaixin/MMCode/resolve/main/logo.png" alt="MMCode Logo" style="width: 50px;margin-right: 20px;"/>
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<div style="display: flex; align-items: center; font-size: 40px; font-weight: bold;">MMCode</div>
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</div>
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## Dataset Description
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MMCode is a multi-modal code generation dataset designed to evaluate the problem-solving skills of code language models in visually rich contexts (i.e. images).
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It contains 3,548 questions paired with 6,620 images, derived from real-world programming challenges across 10 code competition websites, with Python solutions and tests provided.
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The dataset emphasizes the extreme demand for reasoning abilities, the interwoven nature of textual and visual contents, and the occurrence of questions containing multiple images.
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## Languages
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## Key Features
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- **Multi-Modal Challenges**: MMCode is the first work towards code generation combining textual and visual information, requiring models to interpret and integrate both modalities of data for problem-solving.
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- **Rich Diversity**: With 3,548 questions paired with 6,620 images, sourced from 10 different coding competition websites, the dataset offers a diverse range of real-world programming challenges.
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- **Detailed Annotations**: The dataset includes detailed annotations for images, categorizing them into types `Data Structure`, `Geometry`, `3D`, `Demonstration`, `Math`, `Table`, `Pseudocode`, and `Others`, which allows for a detailed analysis of model performance across different visual information types.
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Please cite our work if you find it useful:
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```
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@misc{li2024MMCode,
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author = {Kaixin, Li and Yuchen, Tian and Qisheng, Hu and Ziyang Luo and Wee Sun Lee},
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title = {MMCode: Evaluating Multi-Modal Code Language Models with Visually Rich Programming Problems},
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year = {2024},
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howpublished = {\url{https://github.com/Happylkx/MMCode}},
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logo.png
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