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# Dataset Card for Dataset Name
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### Dataset Description
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<!-- Provide a longer summary of what this dataset is. -->
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- **Funded by [optional]:** [More Information Needed]
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- **Shared by [optional]:** [More Information Needed]
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- **Language(s) (NLP):** [More Information Needed]
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- **License:** [More Information Needed]
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### Dataset Sources [optional]
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- **Repository:** [More Information Needed]
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- **Paper [optional]:** [More Information Needed]
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- **Demo [optional]:** [More Information Needed]
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## Uses
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### Direct Use
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[More Information Needed]
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### Out-of-Scope Use
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<!-- This section addresses misuse, malicious use, and uses that the dataset will not work well for. -->
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[More Information Needed]
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## Dataset Structure
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<!-- This section provides a description of the dataset fields, and additional information about the dataset structure such as criteria used to create the splits, relationships between data points, etc. -->
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[More Information Needed]
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## Dataset Creation
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### Curation Rationale
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<!-- Motivation for the creation of this dataset. -->
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[More Information Needed]
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### Source Data
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<!-- This section describes the source data (e.g. news text and headlines, social media posts, translated sentences, ...). -->
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#### Data Collection and Processing
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<!-- This section describes the data collection and processing process such as data selection criteria, filtering and normalization methods, tools and libraries used, etc. -->
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[More Information Needed]
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#### Who are the source data producers?
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<!-- This section describes the people or systems who originally created the data. It should also include self-reported demographic or identity information for the source data creators if this information is available. -->
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[More Information Needed]
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### Annotations [optional]
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<!-- If the dataset contains annotations which are not part of the initial data collection, use this section to describe them. -->
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[More Information Needed]
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#### Personal and Sensitive Information
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<!-- State whether the dataset contains data that might be considered personal, sensitive, or private (e.g., data that reveals addresses, uniquely identifiable names or aliases, racial or ethnic origins, sexual orientations, religious beliefs, political opinions, financial or health data, etc.). If efforts were made to anonymize the data, describe the anonymization process. -->
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[More Information Needed]
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## Bias, Risks, and Limitations
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<!-- This section is meant to convey both technical and sociotechnical limitations. -->
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[More Information Needed]
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### Recommendations
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<!-- This section is meant to convey recommendations with respect to the bias, risk, and technical limitations. -->
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Users should be made aware of the risks, biases and limitations of the dataset. More information needed for further recommendations.
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## Citation [optional]
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<!-- If there is a paper or blog post introducing the dataset, the APA and Bibtex information for that should go in this section. -->
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**BibTeX:**
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<!-- If relevant, include terms and calculations in this section that can help readers understand the dataset or dataset card. -->
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[More Information Needed]
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## More Information [optional]
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[More Information Needed]
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## Dataset Card Authors [optional]
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[More Information Needed]
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## Dataset Card Contact
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[More Information Needed]
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# Dataset Card for Dataset Name
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Visual caption benchmark Repo: CAPability
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[[π Project Page](https://capability-bench.github.io/)] [[π ArXiv Paper](https://arxiv.org/pdf/2502.14914)] [[π§βπ» Github Repo](https://github.com/ali-vilab/CAPability)] [[π Leaderboard](https://capability-bench.github.io/#leaderboard)]
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## Dataset Details
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Visual captioning benchmarks have become outdated with the emergence of modern MLLMs, as the brief ground-truth sentences and traditional metrics fail to assess detailed captions effectively. While recent benchmarks attempt to address this by focusing on keyword extraction or object-centric evaluation, they remain limited to vague-view or object-view analyses and incomplete visual element coverage. We introduce CAPability, a comprehensive multi-view benchmark for evaluating visual captioning across 12 dimensions spanning six critical views. We curate nearly 11K human-annotated images and videos with visual element annotations to evaluate the generated captions. CAPability stably assesses both the correctness and thoroughness of captions using F1-score. By converting annotations to QA pairs, we further introduce a heuristic metric, *know but cannot tell* ($K\bar{T}$), indicating a significant performance gap between QA and caption capabilities. Our work provides the first holistic analysis of MLLMs' captioning abilities, as we identify their strengths and weaknesses across various dimensions, guiding future research to enhance specific aspects of capabilities.
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## Uses
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### Direct Use
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You can directly download the `data` folder, unzip all `zip` files, and put the `data` under in the same root of [Github Repo](https://github.com/ali-vilab/CAPability). Then you can follow the instruction in Github to run the inference and the evaluation.
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### Use with lmms-eval
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We have supported [lmms-eval](https://github.com/EvolvingLMMs-Lab/lmms-eval/pull/656) to run inference and evaluation for convience.
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## Copyright
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CAPability is only used for academic research. Commercial use in any form is prohibited.
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The copyright of all images and videos belongs to the media owners.
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If there is any infringement in CAPability, please email liuzhihang@mail.ustc.edu.cn and we will remove it immediately.
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Without prior approval, you cannot distribute, publish, copy, disseminate, or modify CAPability in whole or in part.
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You must strictly comply with the above restrictions.
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## Citation
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**BibTeX:**
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```bibtex
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@article{liu2025good,
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title={What Is a Good Caption? A Comprehensive Visual Caption Benchmark for Evaluating Both Correctness and Thoroughness},
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author={Liu, Zhihang and Xie, Chen-Wei and Wen, Bin and Yu, Feiwu and Chen, Jixuan and Zhang, Boqiang and Yang, Nianzu and Li, Pandeng and Li, Yinglu and Gao, Zuan and Zheng, Yun and Xie, Hongtao},
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journal={arXiv preprint arXiv:2502.14914},
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year={2025}
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}
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```
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