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Implicit hybrid video emotion tagging by integrating video content and users' multiple physiological responses

机译:通过集成视频内容和用户的多种生理反应来隐式混合视频情感标签

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The intrinsic interactions among a video's emotion tag, its content, and a user's spontaneous response while consuming the video can be leveraged to improve video emotion tagging, but this capability has not been thoroughly exploited yet. In this paper, we propose an implicit hybrid video emotion tagging approach by integrating video content and users' multiple physiological responses, which are only required during training. Specifically, multiple physiological signals during training construct a better emotion tagging model from video content. We add similarity constraints on the classifier mapping functions during training to capture the relationships among different kinds of features. We modify the traditional support vector machine with these constraints to improve video emotion tagging. Efficient learning algorithms of the proposed model are also developed. Experiments on three benchmark databases demonstrate the effectiveness and superior performance of our proposed method for implicitly integrating multiple physiological responses to improve video emotion tagging.
机译:视频的情感标签,其内容以及用户在使用视频时的自发响应之间的内在交互可以用来改善视频情感标签,但是此功能尚未得到充分利用。在本文中,我们通过整合视频内容和用户的多种生理反应,提出了一种隐式的混合视频情感标记方法,这仅在训练过程中才需要。具体来说,训练期间的多个生理信号会根据视频内容构建更好的情感标签模型。在训练过程中,我们在分类器映射函数上添加了相似性约束,以捕获不同特征之间的关系。我们使用这些约束条件修改了传统的支持向量机,以改善视频情感标签。还开发了所提出模型的有效学习算法。在三个基准数据库上进行的实验证明了我们提出的方法的有效性和优越性能,该方法可隐式集成多种生理反应以改善视频情感标签。

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