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Towards Semantic Segmentation of Human Motion Sequences

机译:朝向人类运动序列的语义分割

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In robotics research is an increasing need for knowledge about human motions. However humans tend to perceive motion in terms of discrete motion primitives. Most systems use data-driven motion segmentation to retrieve motion primitives. Besides that the actual intention and context of the motion is not taken into account. In our work we propose a procedure for segmenting motions according to their functional goals, which allows a structuring and modeling of functional motion primitives. The manual procedure is the first step towards an automatic functional motion representation. This procedure is useful for applications such as imitation learning and human motion recognition. We applied the proposed procedure on several motion sequences and built a motion recognition system based on manually segmented motion capture data. We got a motion primitive error rate of 0.9% for the marker-based recognition. Consequently the proposed procedure yields motion primitives that are suitable for human motion recognition.
机译:在机器人研究中,越来越需要了解人类运动的知识。然而,人类倾向于在离散运动原语方面感知运动。大多数系统使用数据驱动的运动分段来检索运动基元。此外,没有考虑实际意图和行动的背景。在我们的工作中,我们提出了根据其功能目标进行分割动作的程序,这允许具有功能性运动原语的结构和建模。手动程序是朝向自动功能运动表示的第一步。此过程对诸如仿制学习和人类运动识别的应用是有用的。我们在多个动作序列上应用了所提出的程序,并基于手动分段运动捕获数据构建运动识别系统。对于基于标记的识别,我们的运动原始错误率为0.9%。因此,所提出的程序产生适合人类运动识别的运动原语。

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