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Video-based Tracking and Quantified Assessment of Spontaneous Limb Movements in Neonates

机译:基于视频的跟踪和新生儿自发肢体运动的量化评估

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Central nervous system dysfunction in infants may be manifested through inconsistent, rigid and abnormal limb movements. Detection and quantification of these movements in infants from videos are hence desirable for providing useful information to clinicians. This could lead to computer-aided diagnosis of dysfunctions where early treatment may improve infant development. In this paper, we propose a scheme for detecting and quantifying qualitative aspects of limb movement through multiple tracking and state space motion modeling on videos. The main novelties of the paper include: (a) An enhanced detection method for effectively detection small weak marker points from video; (b) Bayesian estimation and nearest neighbor searching for selecting new observation in individual tracker and for tracking marker trajectories on limbs; (c) A criterion for anomaly detection based on the frequency and duration of abrupt changes in limb movement, using window averaged prominent residual powers. The proposed method has been tested on videos of neonates, results show that the proposed method is promising for tracking and quantifying the movement of neonate limbs for helping medical diagnostics.
机译:婴儿的中枢神经系统功能障碍可以通过不一致,刚性和异常的肢体运动来表现出来。因此,来自视频的婴儿的这些运动的检测和定量是为了向临床医生提供有用的信息。这可能导致计算机辅助诊断功能障碍,早期治疗可能会改善婴儿开发。在本文中,我们提出了一种通过在视频上的多个跟踪和状态空间运动建模来检测和定量肢体运动的定性方面的方案。本文的主要新奇人物包括:(a)增强的检测方法,用于从视频中有效地检测小弱标记点; (b)贝叶斯估计和最近的邻居搜索在各个跟踪器中选择新的观察以及跟踪肢体上的标记轨迹; (c)使用窗口平均突出的残余功率基于肢体运动突然变化的频率和持续时间的异常检测标准。该方法已经测试了新生儿的视频,结果表明,该方法是对跟踪和量化新生四肢的运动来帮助医疗诊断的运动。

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