Accurate online alignment of human motor performances

Felix Hülsmann, S. Kopp, Andreas Richter, M. Botsch
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引用次数: 2

Abstract

Many approaches for motion processing or motion analysis employ Dynamic Time Warping (DTW) for temporally aligning an input movement with a reference movement. DTW, however, does not work online since it requires the complete input trajectory. Its online extension Open-End DTW can lead to poor alignments. In this paper we propose Weight-Optimized Open-End DTW, which combines path-length weighting and joint weights optimized from training data. We demonstrate our method to work online and to outperform Open-End DTW in terms of alignment quality.
人体运动性能的精确在线校准
许多运动处理或运动分析的方法都采用动态时间翘曲(DTW)来暂时地将输入运动与参考运动对齐。然而,DTW不能在线工作,因为它需要完整的输入轨迹。它的在线扩展开放式DTW可能导致对准不良。在本文中,我们提出了一种权重优化的开放式DTW算法,它结合了路径长度加权和从训练数据中优化的关节权重。我们演示了我们的在线工作方法,并在对齐质量方面优于开放式DTW。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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