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A model‐based tracking method for measuring 3D dynamic joint motion using an alternating biplane x‐ray imaging system

机译:一种基于模型的跟踪方法,用于测量3D动态关节运动使用交替的双向X射线成像系统

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Purposes To propose a new model‐based tracking method for measuring three‐dimensional (3D) dynamic joint kinematics using a clinical alternating biplane x‐ray imaging system; and to quantify in?vitro its errors in measuring ankle and knee motions at different motion speeds. Methods A new model‐based tracking method based on motion component partition and interpolation (MCPI) was developed for measuring 3D dynamic joint kinematics based on a clinical alternating biplane x‐ray imaging system. Two detectors of the biplane imaging system placed perpendicular to each other were operated to collect alternating fluoroscopic images of the targeted joint during tasks. The CT data of the joint were also acquired for the reconstruction of volumetric and surface models of each of the associated bones. The CT‐based models of the bones were first registered to the alternating images using a model‐to‐single‐plane fluoroscopic image registration method, and the resulting bone poses were then refined using a two‐level optimization with motion component partition and model vertex trajectory interpolation. The MCPI method was evaluated in?vitro for measurement errors for an ankle and a knee specimen moving at different speeds against a standard reference provided by a highly accurate motion capture system. The positional and rotational errors of the measured bone poses were quantified in terms of the bias, precision, and root‐mean‐squared errors (RMSE), as well as the mean target registration error (mTRE), a final mTRE less than 2.5?mm indicating a successful registration. Results The new method was found to have RMSE of bone pose measurements of less than 0.18?mm for translations and 0.72° for rotations for the ankle, and 0.33?mm and 0.74° for the knee with a high successful registration rate (97%), and did not appear to be affected by joint motion speeds. Given the same alternating fluoroscopic images, the MCPI method outperformed the typical biplane analysis method assuming zero time offset between the two fluoroscopic views. The differences in performance between the methods were increased with increased joint motion speed. With the accurate bone pose data, the new method enabled talocrural, subtalar, and tibiofemoral kinematics measurements with submillimeter and subdegree accuracy, except for an RMSE of 1.04° for the internal/external rotation of the talocrural joint. Conclusions A new model‐based tracking method based on MCPI has been developed for measuring dynamic joint motions using an alternating biplane x‐ray imaging system widely available in medical centers. The MCPI method has been demonstrated in?vitro to be highly accurate in determining the 3D kinematics of the bones of both the ankle joint complex and the knee. The current results suggest that the MCPI method would be an effective approach for measuring in?vivo 3D kinematics of dynamic joint motion in a clinical setting equipped with an alternating biplane x‐ray imaging system.
机译:目的提出一种新型基于模型的跟踪方法,用于使用临床交替的双X射线成像系统测量三维(3D)动态关节运动学的测量方法;并在不同运动速度测量踝关节和膝关节运动中的误差中的误差。方法采用基于运动组件分区和插值(MCPI)的新型基于模型的跟踪方法,用于基于临床交替的双X射线成像系统测量3D动态关节运动学。操作彼此垂直置于彼此的双向成像系统的两个探测器,以在任务期间收集靶向关节的交替荧光透视图像。还获得了关节的CT数据,用于重建每个相关骨骼的体积和表面模型。骨骼的基于CT的模型首先使用模型 - 单面荧光透视图像配准法登记到交替图像,然后使用与运动组件分区和模型顶点的两级优化改进所得到的骨姿势轨迹插值。在体外评估MCPI方法,用于踝关节的测量误差,并且以高精度运动捕获系统提供的标准参考以不同速度移动的膝关节标本。测量骨姿势的位置和旋转误差在偏置,精度和根平均平方误差(RMSE)方面被定量,以及平均目标登记误差(MTRE),最终MTRE小于2.5? mm表示成功注册。结果发现新方法具有小于0.18Ω·mm的骨姿势测量的RMSE,用于踝关节的转换和0.72°,膝关节为0.33Ωmm和0.74°,具有高成功的登记速率(& 97 %),并且似乎没有受到关节运动速度的影响。鉴于相同的交替荧光透视图像,MCPI方法优于典型的双透视视图之间零时间偏移的典型双膜分析方法。通过增加的关节运动速度增加了方法之间的性能的差异。凭借精确的骨姿势数据,新方法使双层,子间隙和胫粒剂和胫骨型高精度测量,除了对三角杆关节内部/外部旋转的RMSE为1.04°。结论已经开发了一种基于MCPI的基于模型的跟踪方法,用于使用医疗中心广泛使用的交替的双X射线成像系统测量动态关节运动。已经证明了MCPI方法在确定踝关节复合物和膝关节的骨骼的3D运动学方面是高度准确的。目前的结果表明,MCPI方法将是一种有效的测量动态关节运动中动态关节运动中的有效方法,其临床环境配备有交替的双速X射线成像系统。

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