GhostAR: A Time-space Editor for Embodied Authoring of Human-Robot Collaborative Task with Augmented Reality

Yuanzhi Cao, Tianyi Wang, Xun Qian, P. S. Rao, M. Wadhawan, Ke Huo, K. Ramani
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引用次数: 37

Abstract

We present GhostAR, a time-space editor for authoring and acting Human-Robot-Collaborative (HRC) tasks in-situ. Our system adopts an embodied authoring approach in Augmented Reality (AR), for spatially editing the actions and programming the robots through demonstrative role-playing. We propose a novel HRC workflow that externalizes user's authoring as demonstrative and editable AR ghost, allowing for spatially situated visual referencing, realistic animated simulation, and collaborative action guidance. We develop a dynamic time warping (DTW) based collaboration model which takes the real-time captured motion as inputs, maps it to the previously authored human actions, and outputs the corresponding robot actions to achieve adaptive collaboration. We emphasize an in-situ authoring and rapid iterations of joint plans without an offline training process. Further, we demonstrate and evaluate the effectiveness of our workflow through HRC use cases and a three-session user study.
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GhostAR:基于增强现实的人机协作任务具体化创作的时空编辑器
我们提出了GhostAR,一个时空编辑器,用于在现场创作和执行人机协作(HRC)任务。我们的系统采用了增强现实(AR)中的具体化创作方法,通过示范角色扮演对机器人进行空间编辑和编程。我们提出了一种新的HRC工作流,将用户的创作外部化为演示和可编辑的AR幽灵,允许空间定位的视觉参考,逼真的动画模拟和协作行动指导。提出了一种基于动态时间规整(DTW)的协作模型,该模型将实时捕获的动作作为输入,将其映射到先前编写的人类动作,并输出相应的机器人动作,以实现自适应协作。我们强调在没有线下培训过程的情况下,现场编写和快速迭代联合计划。此外,我们通过HRC用例和三个会话的用户研究来演示和评估我们工作流程的有效性。
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