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EASEL: Easy Automatic Segmentation Event Labeler

机译:画架:易于自动分段事件贴标程序

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Video annotation is a vital part of research examining gestural and multimodal interaction as well as computer vision, machine learning, and interface design. However, annotation is a difficult, time-consuming task that requires high cognitive effort. Existing tools for labeling and annotation still require users to manually label most of the data, limiting the tools' helpfulness. In this paper, we present the Easy Automatic Segmentation Event Labeler (EASEL), a tool supporting gesture analysis. EASEL streamlines the annotation process by introducing assisted annotation, using automatic gesture segmentation and recognition to automatically annotate gestures. To evaluate the efficacy of assisted annotation, we conducted a user study with 24 participants and found that assisted annotation decreased the time needed to annotate videos with no difference in accuracy compared with manual annotation. The results of our study demonstrate the benefit of adding computational intelligence to video and audio annotation tasks.
机译:视频注释是研究手势和多模式交互以及计算机视觉,机器学习和界面设计的重要组成部分。然而,注释是一种难以耗时的任务,需要高认知努力。标签和注释的现有工具仍然要求用户手动标记大多数数据,限制了“乐于助人”的工具。在本文中,我们介绍了易于自动分割事件贴标程序(画架),该工具支持手势分析。画架通过引入辅助注释来简化注释过程,使用自动手势分割和识别来自动注释手势。为了评估辅助注释的功效,我们用24名参与者进行了一项用户学习,发现辅助注释减少了与手动注释相比无差异的录音所需的时间。我们的研究结果证明了向视频和音频注释任务添加计算智能的好处。

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