首页> 外文会议>Multimodal Technologies for Perception of Humans; Lecture Notes in Computer Science; 4122 >Head Pose Tracking and Focus of Attention Recognition Algorithms in Meeting Rooms
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Head Pose Tracking and Focus of Attention Recognition Algorithms in Meeting Rooms

机译:会议室中的头部姿势跟踪和注意力识别算法的焦点

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摘要

The paper presents an evaluation of both head pose and visual focus of attention (VFOA) estimation algorithms in a meeting room environment. Head orientation is estimated using a Rao-Blackwellized mixed state particle filter to achieve joint head localization and pose estimation. The output of this tracker is exploited in an Hidden Markov Model (HMM) to estimate people's VFOA. Contrarily to previous studies on the topic, in our set-up, the potential VFOA of people is not restricted to other meeting participants only, but includes environmental targets (table, slide screen), which renders the task more difficult due to more ambiguity between VFOA target directions. By relying on a corpus of 8 meetings of 8 minutes on average featuring 4 persons involved in the discussion of statements projected on a slide screen, and for which head orientation ground truth was obtained using magnetic sensor devices, we thoroughly assess the performance of the above algorithms, demonstrating the validity of our approaches and pointing out to further research directions.
机译:本文介绍了在会议室环境中对头部姿势和视觉注意力焦点(VFOA)估计算法的评估。使用Rao-Blackwellized混合状态粒子滤波器估计头部方向,以实现联合头部定位和姿势估计。该跟踪器的输出用于隐马尔可夫模型(HMM)中,以估算人们的VFOA。与以前有关该主题的研究相反,在我们的设置中,潜在的VFOA不仅限于其他会议参与者,还包括环境目标(桌子,幻灯片),这使任务更加困难,因为它们之间存在更多的歧义。 VFOA目标方向。通过依靠平均8分钟的8个会议的语料库,其中有4个人参与了幻灯片投影投影讨论的讨论,并且使用磁传感器设备获得了头部定向的地面真相,我们可以全面评估上述内容的性能算法,证明了我们方法的有效性,并指出了进一步的研究方向。

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