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Left/right hand segmentation in egocentric videos

机译:以自我为中心的视频中的左/右手分割

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摘要

Wearable cameras allow people to record their daily activities from a user-centered (First Person Vision) perspective. Due to their favorable location, wearable cameras frequently capture the hands of the user, and may thus represent a promising user-machine interaction tool for different applications. Existent First Person Vision methods handle hand segmentation as a background-foreground problem, ignoring two important facts: i) hands are not a single “skin-like” moving element, but a pair of interacting cooperative entities, ii) close hand interactions may lead to hand-to-hand occlusions and, as a consequence, create a single hand-like segment. These facts complicate a proper understanding of hand movements and interactions. Our approach extends traditional background-foreground strategies, by including a hand-identification step (left-right) based on a Maxwell distribution of angle and position. Hand-to-hand occlusions are addressed by exploiting temporal superpixels. The experimental results show that, in addition to a reliable left/right hand-segmentation, our approach considerably improves the traditional background-foreground hand-segmentation.
机译:穿戴式摄像机使人们可以从以用户为中心(第一人称视觉)的角度记录他们的日常活动。由于其有利的位置,可穿戴式相机经常会抓住用户的手,因此可能代表了针对不同应用的有前途的用户机交互工具。现有的第一人称视觉方法将手的分割作为背景-前景问题来处理,而忽略了两个重要的事实:i)手不是单个的“皮肤状”运动元素,而是一对相互作用的协作实体,ii)紧密的手相互作用可能导致进行手动遮挡,从而创建单个手状段。这些事实使对手的动作和相互作用的正确理解变得复杂。我们的方法通过包括基于角度和位置的麦克斯韦分布的手识别步骤(左右),扩展了传统的背景前景策略。通过利用时间超像素解决了手动遮挡。实验结果表明,除了可靠的左/右手分割外,我们的方法还大大改善了传统的背景-前景手分割。

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