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Perceiving user's intention-for-interaction: A probabilistic multimodal data fusion scheme

机译:感知用户的交互意图:一种概率多模态数据融合方案

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Understanding people's intention, be it action or thought, plays a fundamental role in establishing coherent communication amongst people, especially in non-proactive robotics, where the robot has to understand explicitly when to start an interaction in a natural way. In this work, a novel approach is presented to detect people's intention-for-interaction. The proposed detector fuses multimodal cues, including estimated head pose, shoulder orientation and vocal activity detection, using a probabilistic discrete state Hidden Markov Model. The multimodal detector achieves up to 80% correct detection rates improving purely audio and RGB-D based variants.
机译:理解人们的意图(无论是行动还是思想)在建立人们之间的连贯沟通中起着根本作用,尤其是在非主动机器人中,在这种情况下,机器人必须明确地理解何时以自然方式开始互动。在这项工作中,提出了一种新颖的方法来检测人们的互动意图。所提出的检测器使用概率离散状态隐马尔可夫模型融合了多模态线索,包括估计的头部姿势,肩膀方位和声音活动检测。多模式检测器可实现高达80%的正确检测率,从而改善纯音频和基于RGB-D的变量。

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