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End-effectors trajectories: An efficient low-dimensional characterization of affective-expressive body motions

机译:最终效果轨迹:有效的低尺寸表征情感富有情感的身体运动

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Virtual characters capable of showing emotional content are considered as more believable and engaging. However, in spite of the numerous psychological studies and machine learning applications trying to decode the most salient features in the expression and perception of affect, there is still no common understanding about how affect is conveyed through body motions. Based on findings reported by the psychology research community and quantitative results obtained in the computer animation domain during the last years, we propose to represent affective bodily movement through a low-dimensional parameterization consisting of the spatio-temporal trajectories of eight main joints in the human body (hands, head, feet, elbows and pelvis). Using a combined evaluation protocol, we show that this low-dimensional parameterization and the features derived from it are a compact and sufficient representation of affective motions that can be used for automatic recognition of affect and the generation of new affective-expressive motions.
机译:能够显示情绪内容的虚拟字符被视为更可信和吸引力。然而,尽管众多心理学研究和机器学习应用程序试图在表达和对情绪的感知中解码最大的特征,但仍然没有常见的了解如何通过身体运动传达的影响。基于心理学研究界报告的调查结果以及在过去几年中计算机动画领域获得的定量结果,我们建议通过由人类中八个主要关节的时空轨迹组成的低维参数化来表示情感体内运动身体(手,头部,脚,肘部和骨盆)。使用组合评估协议,我们表明,这种低维参数化和来自它的特征是一种紧凑且充分的情感运动表示,可用于自动识别影响和新的情感表达动作的产生。

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