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Quaternion statistics applied to the classification of motion capture data

机译:季度统计应用于运动捕获数据的分类

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Unit quaternions give quite new possibilities in an analysis of motion capture data. They provide a compact, holistic axis-angle representation of 3D rotations. An application of descriptive statistics - measures of location and dispersion - is common in numerous problems related to an assessment of joint movements. For those reasons, the paper proposes new approaches to the extraction of motion descriptors on the basis of descriptive statistics of 3D rotations represented by unit quaternions as well as the appropriate classification schemes operating on motion descriptors. Mean and median values and standard deviations are calculated for time series with raw rotational data as well as angular velocities and accelerations. The problem of human gait identification is addressed in the numerical validation of the introduced methods and highly precise marker-based motion capture data are utilized. The results obtained - the accuracy of gait recognition - are compared to the ones achieved by descriptive statistics calculated for time series of Euler angles. The general conclusion is that unit quaternions are effective in the calculation of descriptive statistics. They preserve robust discriminative features of joint movements and they can be applied in numerous challenges of expert and intelligent systems.
机译:单位四元数在运动捕获数据的分析中具有相当多的可能性。它们提供3D旋转的紧凑,整体轴角表示。描述性统计学的应用 - 地理位置和分散措施 - 在与对联合运动的评估相关的许多问题中是常见的。出于这些原因,本文提出了基于单位四元数表示的3D旋转的描述性统计来提取运动描述符的新方法以及在运动描述符上运行的适当分类方案。计算具有原始旋转数据的时间序列以及角速度和加速度的时间序列和标准偏差。在引入的方法的数值验证中解决了人体步态识别问题,并且利用了高精度的基于标记的运动捕获数据。获得的结果 - 将步态识别的准确性与通过计算欧拉角度的时间序列计算的描述性统计所达到的结果进行比较。一般结论是单位四元数在计算描述性统计数据方面是有效的。它们保留了联合运动的强大歧视特征,它们可以应用于专家和智能系统的许多挑战。

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