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Face Commands - User-Defined Facial Gestures for Smart Glasses

机译:面部命令 - 智能眼镜的用户定义面部手势

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We propose the use of face-related gestures involving the movement of the face, eyes, and head for augmented reality (AR). This technique allows us to use computer systems via hands-free, discreet interactions. In this paper, we present an elicitation study to explore the proper use of facial gestures for daily tasks in the context of a smart home. We used Amazon Mechanical Turk to conduct this study (N=37). Based on the proposed gestures, we report usage scenarios and complexity, proposed associations between gestures/tasks, a user-defined gesture set, and insights from the participants. We also conducted a technical feasibility study (N=13) with participants using smart eyewear to consider their uses in daily life. The device has 16 optical sensors and an inertial measurement unit (IMU). We can potentially integrate the system into optical see-through displays or other smart glasses. The results demonstrate that the device can detect eight temporal face-related gestures with a mean F1 score of 0.911 using a convolutional neural network (CNN). We also report the results of user-independent training and a one-hour recording of the experimenter testing two of the gestures.
机译:我们建议使用累及面部,眼睛,头部用于增强现实(AR)的运动面相关的手势。这种技术允许我们通过免提,谨慎的相互作用使用的计算机系统。在本文中,我们提出了一个启发研究,探讨正确使用在智能家居的背景下日常任务脸部表情。我们使用亚马逊土耳其机器人进行这项研究(N = 37)。基于提出的手势,我们报告的手势/任务,用户定义的姿势集,并从参与者的见解之间的使用场景和复杂性,提出了协会。我们还进行了技术可行性研究(N = 13),但以智能眼镜考虑他们在日常生活中应用的参与者。该器件具有16个的光学传感器和惯性测量单元(IMU)。我们可以将此系统可能集成到光学透视显示器或其他智能眼镜。该结果表明,该装置能够检测8时间面部相关的手势与使用卷积神经网络(CNN)的0.911的平均得分F1。我们还报告的用户无关的训练效果和实验者测试两个手势的一个小时的录音。

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