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Using Random Forests for the Estimation of Multiple Users' Visual Focus of Attention from Head Pose

机译:使用随机森林从头姿势估计多个用户的视觉注意焦点

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When interacting with a group of people, a robot requires the ability to compute people's visual focus of attention in order to regulate the turn-taking, to determine attended objects, as well as to estimate the degree of users' engagement. This work aims at evaluating the possibility of computing real-time multiple users' focus of attention by combining a random forest approach for head pose estimation with the user's head joint tracking. The system has been tested both on single users and on couples of users interacting with a simple scenario designed to guide the user attention towards a specific space region. The aim is to highlight the possible requirements and problems arising when dealing with the presence of multiple users. Results show that while the approach is promising, datasets that are different from the ones available in the literature are required in order to improve performance.
机译:与一群人互动时,机器人需要能够计算人们的视觉注意力焦点,以便调节转弯,确定有人参与的对象以及估计用户的参与程度。这项工作旨在通过将随机森林方法进行头姿势估计与用户的头部关节跟踪相结合,来评估计算实时多个用户关注的焦点的可能性。该系统已经在单用户和成对的用户上进行了测试,并与一个简单的场景进行了交互,该场景旨在将用户的注意力引向特定的空间区域。目的是强调在处理多个用户的情况下可能出现的要求和问题。结果表明,尽管该方法很有希望,但仍需要与文献中提供的数据集不同的数据集,以提高性能。

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