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Exquisitor at the Video Browser Showdown 2020

机译:视频浏览器摊牌2020的精致托盘

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When browsing large video collections, human-in-the-loop systems are essential. The system should understand the semantic information need of the user and interactively help formulate queries to satisfy that information need based on data-driven methods. Full synergy between the interacting user and the system can only be obtained when the system learns from the user interactions while providing immediate response. Doing so with dynamically changing information needs for large scale multimodal collections is a challenging task. To push the boundary of current methods, we propose to apply the state of the art in interactive multimodal learning to the complex multimodal information needs posed by the Video Browser Showdown (VBS). To that end we adapt the Exquisitor system, a highly scalable interactive learning system. Exquisitor combines semantic features extracted from visual content and text to suggest relevant media items to the user, based on user relevance feedback on previously suggested items. In this paper, we briefly describe the Exquisitor system, and its first incarnation as a VBS entrant.
机译:在浏览大型视频集合时,LOOM-IN-LOOK系统是必不可少的。该系统应该了解用户的语义信息,并且交互方式有助于制定基于数据驱动方法来满足该信息需求的查询。只有在提供立即响应的同时从用户交互中学习时,才能获得交互用户和系统之间的完全协同作用。这样做,随着动态改变的信息需要大规模的多模式集合是一个具有挑战性的任务。为了推动当前方法的边界,我们建议将互动多媒体学习中的技术应用于视频浏览器摊牌(VBS)所带来的复杂多模式信息。为此,我们适应精致的系统,一个高度可扩展的互动学习系统。 Exquisitor将从视觉内容中提取的语义特征与文本组合到向用户提出相关媒体项,基于先前建议的项目的用户相关性反馈。在本文中,我们简要介绍了精致的系统,以及作为vbs参赛者的第一个化身。

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