首页> 外文会议>2007 International Conference on Computational Intelligence and Security(CIS 2007): Proceedings >Extraction of Semantic Keyframes Based on Visual Attention and Affective Models
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Extraction of Semantic Keyframes Based on Visual Attention and Affective Models

机译:基于视觉注意力和情感模型的语义关键帧提取

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摘要

The Extraction of video keyframe is convenient for browsing and retrieving of video content.However,since the "keyframe" is a subjective concept which involves in vision and psychology,it is difficult to be described by low-level features of video.In this paper,we propose a method of keyframe extraction based on visual attention and affective models.To be concrete,film elements such as character,lighting and camera motion,crucial to human attention,are fused into a visual attention model and the film is segmented into scenes according to a short-time memory model.The "scene importance" is then computed by using the affective arousal which determines audience's excitability in the 2D emotion space.Finally,according to the attention model and the scene importance,scene keyframes are extracted Experimental results indicate that keyframes extracted by our approach are coincident with human perception,and would be in favor of further semantic analysis.
机译:视频关键帧的提取方便了视频内容的浏览和检索。但是,由于“关键帧”是一个涉及视觉和心理学的主观概念,因此很难用视频的低级特征来描述。我们提出了一种基于视觉注意力和情感模型的关键帧提取方法。具体而言,将对人眼至关重要的角色,灯光和摄像机运动等电影元素融合到视觉注意力模型中,并将电影分割成场景然后根据情感唤醒来确定观众在2D情感空间中的兴奋性。然后,根据注意力模型和场景重要性,提取场景关键帧的实验结果。表明我们的方法提取的关键帧与人类感知一致,并且有利于进一步的语义分析。

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