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CAT & MAUS: A novel system for true dynamic motion measurement of underlying bony structures with compensation for soft tissue movement

机译:CAT& 毛斯:一种新型系统,用于底层骨架结构的真正动态运动,用于软组织运动补偿

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Abstract Optoelectronic motion capture systems are widely employed to measure the movement of human joints. However, there can be a significant discrepancy between the data obtained by a motion capture system (MCS) and the actual movement of underlying bony structures, which is attributed to soft tissue artefact. In this paper, a computer-aided tracking and motion analysis with ultrasound (CAT & MAUS) system with an augmented globally optimal registration algorithm is presented to dynamically track the underlying bony structure during movement. The augmented registration part of CAT & MAUS was validated with a high system accuracy of 80%. The Euclidean distance between the marker-based bony landmark and the bony landmark tracked by CAT & MAUS was calculated to quantify the measurement error of an MCS caused by soft tissue artefact during movement. The average Euclidean distance between the target bony landmark measured by each of the CAT & MAUS system and the MCS alone varied from 8.32mm to 16.87mm in gait. This indicates the discrepancy between the MCS measured bony landmark and the actual underlying bony landmark. Moreover, Procrustes analysis was applied to demonstrate that CAT & MAUS reduces the deformation of the body segment shape modeled by markers during motion. The augmented CAT & MAUS system shows its potential to dynamically detect and locate actual underlying bony landmarks, which reduces the MCS measurement error caused by soft tissue artefact during movement.
机译:摘要光电运动捕获系统被广泛用于测量人类关节的运动。然而,通过运动捕获系统(MCS)获得的数据和底层结构的实际运动可以存在显着的差异,其归因于软组织人工制品。在本文中,提出了一种具有增强全局最佳登记算法的超声(CAT和MAUS)系统的计算机辅助跟踪和运动分析,以在运动期间动态地跟踪底层骨结构。 Cat&Maus的增强登记部分被验证,高系统精度为80%。计算基于标记的骨骼地标和CAT&Maus跟踪的骨骼地标之间的欧几里德距离,以量化运动期间软组织伪距引起的MCS的测量误差。每个CAT&MAUS系统测量的目标骨骼地标之间的平均欧几里德距离和单独的MCS在步态中的8.32mm变化至16.87mm。这表明MCS测量的骨牌地标和实际底层骨牌地标之间的差异。此外,应用了促进分析来证明CAT&Maus在运动期间减少了由标记建模的体段形状的变形。增强的Cat&Maus系统显示其动态检测和定位实际底层骨骼地标,这减少了在运动期间软组织艺术品引起的MCS测量误差。

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