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Spatiotemporal saliency detection using border connectivity

机译:使用边界连接的时空显着性检测

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This paper proposes a border connectivity-based spatiotemporal saliency model for videos with complicated motion and complex scenes. Based on the superpixel segmentation results of video frames, feature extraction is performed to obtain the three features, including motion orientation histogram, motion amplitude histogram and color histogram. Then the border connectivity is exploited to evaluate the importance of three features for distance fusion. Finally the background weighted contrast and saliency optimization are utilized to generate superpixel-level spatiotemporal saliency maps. Experimental results on a public benchmark dataset demonstrate that the proposed model outperforms the state-of-the-art saliency models on saliency detection performance.
机译:针对运动和场景复杂的视频,提出了一种基于边界连通性的时空显着性模型。根据视频帧的超像素分割结果,进行特征提取以获得运动方向直方图,运动幅度直方图和颜色直方图这三个特征。然后利用边界连通性来评估三个特征对距离融合的重要性。最后,利用背景加权对比度和显着性优化来生成超像素级时空显着性图。在公共基准数据集上的实验结果表明,所提出的模型在显着性检测性能方面优于最新的显着性模型。

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