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3D limb movement tracking and analysis for neurological dysfunctions of neonates using multi-camera videos

机译:使用多摄像机视频对新生儿的神经功能障碍进行3D肢体运动跟踪和分析

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Central nervous system dysfunction in infants may be manifested through inconsistent, rigid and abnormal limb movements. Detection of limb movement anomalies associated with such neurological dysfunctions in infants is the first step towards early treatment for improving infant development. This paper addresses the issue of detecting and quantifying limb movement anomalies in infants through non-invasive 3D image analysis methods using videos from multiple camera views. We propose a novel scheme for tracking 3D time trajectories of markers on infant's limbs by video analysis techniques. The proposed scheme employ videos captured from three camera views. This enables us to detect a set of enhanced 3D markers through cross-view matching and to effectively handle marker self-occlusions by other body parts. We track a set of 3D trajectories of limb movements by a set of particle filters in parallel, enabling more robust 3D tracking of markers, and use the 3D model errors for quantifying abrupt limb movements. The proposed work makes a significant advancement to the previous work in [1] through employing tracking in 3D space, and hence overcome several main barriers that hinder real applications by using single camera-based techniques. To the best of our knowledge, applying such a multi-view video analysis approach for assessing neurological dysfunctions of infants through 3D time trajectories of markers on limbs is novel, and could lead to computer-aided tools for diagnosis of dysfunctions where early treatment may improve infant development. Experiments were conducted on multi-view neonate videos recorded in a clinical setting and results have provided further support to the proposed method.
机译:婴儿的中枢神经系统功能障碍可能通过肢体运动不一致,僵硬和异常而表现出来。与婴儿的这种神经功能障碍相关的肢体运动异常的检测是改善婴儿发育的早期治疗的第一步。本文探讨了通过非侵入式3D图像分析方法,使用来自多个摄像机视角的视频来检测和量化婴儿肢体运动异常的问题。我们提出了一种通过视频分析技术跟踪婴儿肢体上标记的3D时间轨迹的新颖方案。提议的方案使用从三个摄像机视图捕获的视频。这使我们能够通过交叉视图匹配来检测一组增强的3D标记,并有效地处理其他身体部位的标记自遮挡。我们通过一组粒子过滤器并行跟踪一组肢体运动的3D轨迹,从而可以更可靠地对标记进行3D跟踪,并使用3D模型错误来量化突然的肢体运动。拟议的工作通过在3D空间中采用跟踪技术,对[1]中的先前工作进行了重大改进,因此通过使用基于单个摄像头的技术克服了几个阻碍实际应用的主要障碍。据我们所知,采用这种多视点视频分析方法通过四肢标记物的3D时间轨迹来评估婴儿的神经功能障碍是新颖的,并且可能会导致用于诊断功能障碍的计算机辅助工具,从而改善早期治疗婴儿发育。在临床环境中录制的多视图新生儿视频上进行了实验,结果为所提出的方法提供了进一步的支持。

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