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首页> 外文期刊>Journal of visual communication & image representation >Key frame extraction based on visual attention model
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Key frame extraction based on visual attention model

机译:基于视觉注意力模型的关键帧提取

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摘要

Key frame extraction is an important technique in video summarization, browsing, searching and understanding. In this paper, we propose a novel approach to extract the most attractive key frames by using a saliency-based visual attention model that bridges the gap between semantic interpretation of the video and low-level features. First, dynamic and static conspicuity maps are constructed based on motion, color and texture features. Then, by introducing suppression factor and motion priority schemes, the conspicuity maps are fused into a saliency map that includes only true attention regions to produce attention curve. Finally, after time-constraint cluster algorithm grouping frames with similar content, the frames with maximum saliency value are selected as key-frames. Experimental results demonstrate the effectiveness of our approach for video summarization by retrieving the meaningful key frames.
机译:关键帧提取是视频摘要,浏览,搜索和理解中的一项重要技术。在本文中,我们提出了一种新颖的方法,该方法通过使用基于显着性的视觉注意模型来提取最吸引人的关键帧,该模型弥合了视频的语义解释与低级特征之间的鸿沟。首先,基于运动,颜色和纹理特征构造动态和静态显着性贴图。然后,通过引入抑制因子和运动优先级方案,将显眼图融合到仅包含真正关注区域的显着图中,以生成关注曲线。最后,在对内容相似的帧进行时间约束聚类算法分组后,将显着性值最大的帧选为关键帧。实验结果通过检索有意义的关键帧证明了我们的视频摘要方法的有效性。

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