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MSC: A Marine Wildlife Video Dataset with Grounded Segmentation and Clip-Level Captioning
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针对海洋视频理解难题,提出两阶段海洋对象导向视频描述流程,构建视频理解基准,提高海洋视频理解和生成能力。

arXiv:2508.04549v1 Announce Type: cross Abstract: Marine videos present significant challenges for video understanding due to the dynamics of marine objects and the surrounding environment, camera motion, and the complexity of underwater scenes. Existing video captioning datasets, typically focused on generic or human-centric domains, often fail to generalize to the complexities of the marine environment and gain insights about marine life. To address these limitations, we propose a two-stage marine object-oriented video captioning pipeline. We introduce a comprehensive video understanding benchmark that leverages the triplets of video, text, and segmentation masks to facilitate visual grounding and captioning, leading to improved marine video understanding and analysis, and marine video generation. Additionally, we highlight the effectiveness of video splitting in order to detect salient object transitions in scene changes, which significantly enrich the semantics of captioning content. Our dataset and code have been released at https://msc.hkustvgd.com.

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海洋视频理解 视频描述模型 视频生成
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