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首页> 外文期刊>Annals of Biomedical Engineering: The Journal of the Biomedical Engineering Society >A Fast, Accurate, and Reliable Reconstruction Method of the Lumbar Spine Vertebrae Using Positional MRI
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A Fast, Accurate, and Reliable Reconstruction Method of the Lumbar Spine Vertebrae Using Positional MRI

机译:使用位置MRI的快速,准确和可靠的腰椎椎骨重建方法

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摘要

In vivo measurement of lumbar spine configuration is useful for constructing quantitative biomechanical models. Positional magnetic resonance imaging (MRI) accommodates a larger range of movement in most joints than conventional MRI and does not require a supine position. However, this is achieved at the expense of image resolution and contrast. As a result, quantitative research using positional MRI has required long reconstruction times and is sensitive to incorrectly identifying the vertebral boundary due to low contrast between bone and surrounding tissue in the images. We present a semi-automated method used to obtain digitized reconstructions of lumbar vertebrae in any posture of interest. This method combines a high-resolution reference scan with a low-resolution postural scan to provide a detailed and accurate representation of the vertebrae in the posture of interest. Compared to a criterion standard, translational reconstruction error ranged from 0.7 to 1.6 mm and rotational reconstruction error ranged from 0.3 to 2.6A degrees. Intraclass correlation coefficients indicated high interrater reliability for measurements within the imaging plane (ICC 0.97-0.99). Computational efficiency indicates that this method may be used to compile data sets large enough to account for population variance, and potentially expand the use of positional MRI as a quantitative biomechanics research tool.
机译:腰椎构型的体内测量可用于构建定量生物力学模型。位置磁共振成像(MRI)与常规MRI相比,在大多数关节中可容纳更大范围的运动,并且不需要仰卧位。但是,这是以牺牲图像分辨率和对比度为代价的。结果,使用位置MRI进行定量研究需要较长的重建时间,并且由于图像中骨骼与周围组织之间的对比度较低而对错误识别椎骨边界敏感。我们提出了一种半自动化的方法,用于以任何感兴趣的姿势获得数字化的腰椎重建。此方法将高分辨率参考扫描与低分辨率姿势扫描相结合,以提供感兴趣姿势中椎骨的详细而准确的表示。与标准标准相比,平移重建误差范围为0.7至1.6 mm,旋转重建误差范围为0.3至2.6A度。类内相关系数表明成像平面内的测量具有较高的间质可靠性(ICC 0.97-0.99)。计算效率表明,该方法可用于编译足够大的数据集以解决总体差异,并有可能扩大位置MRI作为定量生物力学研究工具的用途。

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