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首页> 外文期刊>Pattern Analysis and Machine Intelligence, IEEE Transactions on >Human Pose Estimation Using Consistent Max Covering
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Human Pose Estimation Using Consistent Max Covering

机译:使用一致的最大覆盖量进行人体姿势估计

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摘要

A novel consistent max-covering method is proposed for human pose estimation. We focus on problems in which a rough foreground estimation is available. Pose estimation is formulated as a jigsaw puzzle problem in which the body part tiles maximally cover the foreground region, match local image features, and satisfy body plan and color constraints. This method explicitly imposes a global shape constraint on the body part assembly. It anchors multiple body parts simultaneously and introduces hyperedges in the part relation graph, which is essential for detecting complex poses. Using multiple cues in pose estimation, our method is resistant to cluttered foregrounds. We propose an efficient linear method to solve the consistent max-covering problem. A two-stage relaxation finds the solution in polynomial time. Our experiments on a variety of images and videos show that the proposed method is more robust than previous locally constrained methods.
机译:提出了一种新颖的一致最大覆盖方法用于人体姿态估计。我们关注的是可以进行粗略前景估计的问题。姿势估计被公式化为一个拼图难题,其中身体部位的瓷砖最大程度地覆盖了前景区域,匹配了局部图像特征,并满足了身体计划和颜色约束。该方法将明确的全局形状约束强加在身体部位组件上。它同时锚固多个身体部位,并在部位关系图中引入超边缘,这对于检测复杂的姿势至关重要。在姿势估计中使用多个提示,我们的方法可以抵抗混乱的前景。我们提出了一种有效的线性方法来解决一致的最大覆盖问题。两步松弛法可以在多项式时间内找到解。我们在各种图像和视频上的实验表明,所提出的方法比以前的局部约束方法更健壮。

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