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ACCURACY AND PRECISION OF DIGITAL VOLUME CORRELATION IN QUANTIFYING DISPLACEMENTS AND STRAINS IN TRABECULAR BONE

机译:量化小骨中位移和应变的数字量相关性的准确性和准确性

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摘要

Strain measurement is an essential tool in the study of trabecular bone structure-function relationships. Digital volume correlation (DVC) is a measurement technique that quantifies strains throughout the interior of a specimen, rather than simply those on the surface. DVC relies on tracking the movement of microstructural features, and as such, the accuracy and precision of this technique may depend on trabecular structure. This study quantified displacement and strain measurement errors in six types of trabecular bone that spanned a wide range of volume fraction and trabecular architecture. Accuracy and precision were compared across bone type and also across three DVC methods. Both simulated and real displacement fields were analyzed using micro-computed tomography images of specimens from the bovine distal femur, bovine proximal tibia, rabbit distal femur, rabbit proximal tibia, rabbit vertebra, and human vertebra. Differences as large as three-fold in accuracy and precision of the displacements and strains were found among DVC methods and among bone types. The displacement precision and the strain accuracy and precision were correlated with measures of trabecular structure such as structural model index. These results demonstrate that the performance of the DVC technique can depend on trabecular structure. Across all bone types, the displacement and strain errors ranged 1.86–3.39 μm and 345–794 με, respectively. For specimens from the human vertebra and bovine distal femur, the measurement errors were approximately twenty times smaller than the yield strain. In these cases, DVC is a viable technique for measuring pre- and post-yield strains throughout trabecular bone specimens and the trabecular compartment of whole bones.
机译:应变测量是研究小梁骨结构与功能关系的重要工具。数字体积相关性(DVC)是一种测量技术,可以量化整个样本内部的应变,而不是简单地量化表面应变。 DVC依赖于跟踪微结构特征的运动,因此,此技术的准确性和精确性可能取决于小梁结构。这项研究量化了六种类型的小梁骨的位移和应变测量误差,这些类型的小梁骨具有很大的体积分数和小梁结构。比较了不同骨类型以及三种DVC方法的准确性和精密度。使用微型计算机断层扫描图像分析了模拟位移场和实际位移场,这些图像来自牛股骨远端,牛胫骨近端,兔股骨远端,兔胫骨近端,兔椎骨和人椎骨。在DVC方法和骨骼类型之间,位移和应变的准确度和精确度差异高达三倍。位移精度,应变精度和精度与小梁结构的度量如结构模型指标相关。这些结果表明,DVC技术的性能可能取决于小梁结构。在所有骨骼类型中,位移和应变误差分别为1.86–3.39μm和345–794με。对于来自人类椎骨和牛股骨远端的标本,测量误差大约比屈服应变小二十倍。在这些情况下,DVC是一种用于测量整个小梁骨标本和整个骨骼的小梁腔的屈服前后应变的可行技术。

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