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Markerless gait analysis based on a single RGB camera

机译:基于单个RGB相机的无标记步态分析

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Gait analysis is an important tool for monitoring and preventing injuries as well as to quantify functional decline in neurological diseases and elderly people. In most cases, it is more meaningful to monitor patients in natural living environments with low-end equipment such as cameras and wearable sensors. However, inertial sensors cannot provide enough details on angular dynamics. This paper presents a method that uses a single RGB camera to track the 2D joint coordinates with state-of-the-art vision algorithms. Reconstruction of the 3D trajectories uses sparse representation of an active shape model. Subsequently, we extract gait features and validate our results in comparison with a state-of-the-art commercial multi-camera tracking system. Our results are comparable to those from the current literature based on depth cameras and optical markers to extract gait characteristics.
机译:步态分析是监测和预防伤害以及量化神经系统疾病和老年人功能下降的重要工具。在大多数情况下,使用低端设备(例如摄像头和可穿戴传感器)在自然生活环境中监视患者更为有意义。但是,惯性传感器无法提供足够的角度动力学细节。本文提出了一种使用单个RGB相机通过最新视觉算法跟踪2D关节坐标的方法。 3D轨迹的重建使用活动形状模型的稀疏表示。随后,我们提取步态特征并与最先进的商用多摄像机跟踪系统进行比较,验证我们的结果。我们的结果与基于深度相机和光学标记提取步态特征的现有文献的结果相当。

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