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首页> 外文期刊>Journal of biomechanical engineering. >Three-Dimensional Local Measurements of Bone Strain and Displacement: Comparison of Three Digital Volume Correlation Approaches
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Three-Dimensional Local Measurements of Bone Strain and Displacement: Comparison of Three Digital Volume Correlation Approaches

机译:骨应变和位移的三维局部测量:三种数字体积相关方法的比较

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Different digital volume correlation (DVC) approaches are currently available or under development for bone tissue micromechanics. The aim of this study was to compare accuracy and precision errors of three DVC approaches for a particular three-dimensional (3D) zero-strain condition. Trabecular and cortical bone specimens were repeatedly scanned with a micro-computed tomography (CT). The errors affecting computed displacements and strains were extracted for a known virtual translation, as well as for repeated scans. Three DVC strategies were tested: two local approaches, based on fast-Fourier-transform (DaVis-FFT) or direct-correlation (DaVis-DC), and a global approach based on elastic registration and a finite element (FE) solver (ShIRT-FE). Different computation subvolume sizes were tested. Much larger errors were found for the repeated scans than for the virtual translation test. For each algorithm, errors decreased asymptotically for larger subvolume sizes in the range explored. Considering this particular set of images, ShIRT-FE showed an overall better accuracy and precision (a few hundreds microstrain for a subvolume of 50 voxels). When the largest subvolume (50-52 voxels) was applied to cortical bone, the accuracy error obtained for repeated scans with ShIRT-FE was approximately half of that for the best local approach (DaVis-DC). The difference was lower (250 microstrain) in the case of trabecular bone. In terms of precision, the errors shown by DaVis-DC were closer to the ones computed by ShIRT-FE (differences of 131 microstrain and 157 microstrain for cortical and trabecular bone, respectively). The multipass computation available for DaVis software improved the accuracy and precision only for the DaVis-FFT in the virtual translation, particularly for trabecular bone. The better accuracy and precision of ShIRT-FE, followed by DaVis-DC, were obtained with a higher computational cost when compared to DaVis-FFT. The results underline the importance of performing a quantitative comparison of DVC methods on the same set of samples by using also repeated scans, other than virtual translation tests only. ShIRT-FE provides the most accurate and precise results for this set of images. However, both DaVis approaches show reasonable results for large nodal spacing, particularly for trabecular bone. Finally, this study highlights the importance of using sufficiently large subvolumes, in order to achieve better accuracy and precision.
机译:对于骨组织微力学而言,目前有不同的数字体积相关性(DVC)方法可用或正在开发中。这项研究的目的是针对特定的三维(3D)零应变条件比较三种DVC方法的精度和精度误差。用微计算机断层扫描(CT)反复扫描小梁和皮质骨标本。对于已知的虚拟平移以及重复扫描,提取影响计算的位移和应变的误差。测试了三种DVC策略:基于快速傅里叶变换(DaVis-FFT)或直接相关(DaVis-DC)的两种局部方法,以及基于弹性配准和有限元(FE)求解器(ShIRT)的全局方法-FE)。测试了不同的计算子卷大小。发现重复扫描的错误比虚拟翻译测试大得多。对于每种算法,对于所探索范围内的较大子体积,误差渐近减小。考虑到这组特殊的图像,ShIRT-FE总体上显示出更高的准确性和精确度(对于50个体素的子体积,数百个微应变)。当最大的子体积(50-52体素)应用于皮质骨时,使用ShIRT-FE重复扫描获得的准确度误差大约是最佳局部方法(DaVis-DC)的一半。小梁骨的差异较小(250微应变)。在精度方面,DaVis-DC所显示的误差更接近于ShIRT-FE计算的误差(皮质骨和小梁骨分别为131微应变和157微应变)。 DaVis软件可用的多遍计算仅在虚拟平移中提高了DaVis-FFT的准确性和精确度,尤其是对于小梁骨。与DaVis-FFT相比,ShIRT-FE紧随其后的是DaVis-DC,具有更高的准确度和精度,但具有较高的计算成本。结果强调了通过使用重复扫描而不是仅虚拟翻译测试对同一组样本进行DVC方法定量比较的重要性。 ShIRT-FE可为这组图像提供最准确,最精确的结果。但是,对于较大的节距,尤其是对于小梁骨,这两种DaVis方法都显示出合理的结果。最后,这项研究强调了使用足够大的子体积的重要性,以便获得更好的精度和精确度。

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