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Analysis of Big Data in Gait Biomechanics: Current Trends and Future Directions

机译:步态生物力学中的大数据分析:当前趋势和未来方向

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摘要

The increasing amount of data in biomechanics research has greatly increased the importance of developing advanced multivariate analysis and machine learning techniques, which are better able to handle “big data”. Consequently, advances in data science methods will expand the knowledge for testing new hypotheses about biomechanical risk factors associated with walking and running gait-related musculoskeletal injury. This paper begins with a brief introduction to an automated three-dimensional (3D) biomechanical gait data collection system: 3D GAIT, followed by how the studies in the field of gait biomechanics fit the quantities in the 5 V’s definition of big data: volume, velocity, variety, veracity, and value. Next, we provide a review of recent research and development in multivariate and machine learning methods-based gait analysis that can be applied to big data analytics. These modern biomechanical gait analysis methods include several main modules such as initial input features, dimensionality reduction (feature selection and extraction), and learning algorithms (classification and clustering). Finally, a promising big data exploration tool called “topological data analysis” and directions for future research are outlined and discussed.
机译:生物力学研究中越来越多的数据量大大提高了开发先进的多元分析和机器学习技术的重要性,这些技术能够更好地处理“大数据”。因此,数据科学方法的进步将扩展有关测试与行走和跑步步态相关的肌肉骨骼损伤相关的生物力学危险因素的新假设的知识。本文首先简要介绍了自动三维(3D)生物力学步态数据收集系统:3D GAIT,然后是步态生物力学领域的研究如何适应5V大数据定义中的数量:体积,速度,多样性,准确性和价值。接下来,我们将对基于多元和机器学习方法的步态分析的最新研究进展进行综述,该步态分析可应用于大数据分析。这些现代的生物力学步态分析方法包括几个主要模块,例如初始输入特征,降维(特征选择和提取)和学习算法(分类和聚类)。最后,概述并讨论了一种有前途的大数据探索工具,称为“拓扑数据分析”以及未来研究的方向。

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