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Automated tracking in digitized videofluoroscopy sequences for spine kinematic analysis

机译:自动跟踪数字化荧光透视序列,进行脊柱运动学分析

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Spine kinematic analysis provides useful information to aid understanding of the segmental motion of the vertebrae. Digitized videofluoroscopy (DVF) is the existing practical modality to image spine motion for kinematic data acquisition. However, obtaining kinematic parameters from DVF sequence requires manual landmarking which is a laborious process and can be subjective and error prone.rnThis work develops an automated spine motion tracking algorithm for DVF sequences within a Bayes-ian framework. By utilizing the anatomical relationships between vertebrae, a dynamic Bayesian network with a particle filter at each node is constructed. The proposed algorithm overcomes the dimensionality problem in a regular particle filter and has more efficient and robust performance. It can provide results of about 1° and 2 pixels (0.2 mm) variability in rotation and translation estimation, respectively, during repeated initialization analysis on sequences from simulation and in vivo healthy human subject studies.
机译:脊柱运动分析提供有用的信息,以帮助理解椎骨的节段运动。数字化视频荧光检查(DVF)是现有的实用模式,用于脊柱运动的运动学数据采集。然而,从DVF序列获得运动学参数需要人工标记,这是一个费力的过程,并且可能是主观的并且容易出错。这项工作为贝叶斯框架内的DVF序列开发了一种自动的脊柱运动跟踪算法。通过利用椎骨之间的解剖关系,构建了在每个节点处都具有粒子过滤器的动态贝叶斯网络。所提出的算法克服了常规粒子滤波器的维数问题,具有更高效,更鲁棒的性能。在对来自模拟和体内健康人类受试者研究的序列进行重复初始化分析期间,它可以分别提供约1°和2个像素(0.2毫米)的变化的旋转和平移估计结果。

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