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Hand tracking and segmentation via graph cuts and dynamic model in sign language videos

机译:通过手语视频中的图形切割和动态模型进行手部跟踪和分割

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摘要

In this paper, we propose a new method for hands tracking and segmentation based on augmented graph cuts and dynamic model in sign language videos. We focus on resolving three problems which are fast hand motion capture, hand over face and hand occlusions. At first, an effective dynamic model for state prediction is used. This dynamic model can correctly predict the location of hand which has a rapid movement and quick shape deformation. Then, new energy terms are augmented into the energy function in graph cuts. The additional terms are inspired by multi cues, such as color, motion and spatial-temporal information. Finally, we construct the graph and achieve the hand segmentation in successive frames using min-cut/max-flow algorithm. We evaluate our algorithm in a real American Sign Language video from Purdue ASL Database. Besides, our method can be easily extended to track objects with similar color.
机译:在本文中,我们提出了一种基于增强图割和手语视频动态模型的手部跟踪和分割的新方法。我们专注于解决三个问题,即快速的手部动作捕捉,移交的脸部和手部遮挡。首先,使用有效的状态预测动态模型。该动态模型可以正确地预测具有快速运动和快速形状变形的手的位置。然后,将新的能量项扩展到图形切割中的能量函数中。其他术语受多种提示的启发,例如颜色,运动和时空信息。最后,我们构造图形并使用最小割/最大流算法在连续帧中实现手分割。我们在来自Purdue ASL数据库的真实美国手语视频中评估了我们的算法。此外,我们的方法可以轻松扩展为跟踪具有相似颜色的对象。

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