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首页> 外文期刊>Journal of visual communication & image representation >Saliency model-based face segmentation and tracking in head-and-shoulder video sequences
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Saliency model-based face segmentation and tracking in head-and-shoulder video sequences

机译:头肩视频序列中基于显着性模型的人脸分割和跟踪

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摘要

In this paper, a novel face segmentation algorithm is proposed based on facial saliency map (FSM) for head-and-shoulder type video application. This method consists of three stages. The first stage is to generate the saliency map of input video image by our proposed facial attention model. In the second stage, a geometric model and an eye-map built from chrominance components are employed to localize the face region according to the saliency map. The third stage involves the adaptive boundary correction and the final face contour extraction. Based on the segmented result, an effective boundary saliency map (BSM) is then constructed, and applied for the tracking based segmentation of the successive frames. Experimental evaluation on test sequences shows that the proposed method is capable of segmenting the face area quite effectively.
机译:本文针对头肩型视频应用提出了一种基于面部显着图(FSM)的面部分割算法。该方法包括三个阶段。第一步是通过我们提出的面部注意力模型生成输入视频图像的显着性图。在第二阶段,根据显着图,使用几何模型和由色度分量构建的眼图来定位面部区域。第三阶段涉及自适应边界校正和最终人脸轮廓提取。基于分割的结果,然后构造有效的边界显着图(BSM),并将其应用于连续帧的基于跟踪的分割。对测试序列的实验评估表明,该方法能够有效地分割人脸区域。

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