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MR Imaging and Osteoporosis: Fractal Lacunarity Analysis of Trabecular Bone

机译:MR成像和骨质疏松症:小梁骨的分形腔隙分析

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We develop a method of magnetic resonance (MR) image analysis able to provide parameter(s) sensitive to bone microarchitecture changes in aging, and to osteoporosis onset and progression. The method has been built taking into account fractal properties of many anatomic and physiologic structures. Fractal lacunarity analysis has been used to determine relevant parameter(s) to differentiate among three types of trabecular bone structure (healthy young, healthy perimenopausal, and osteoporotic patients) from lumbar vertebra MR images. In particular, we propose to approximate the lacunarity function by a hyperbola model function that depends on three coefficients,$alpha, beta$, and$gamma$, and to compute these coefficients as the solution of a least squares problem. This triplet of coefficients provides a model function that better represents the variation of mass density of pixels in the image considered. Clinical application of this preliminary version of our method suggests that one of the three coefficients,$beta$, may represent a standard for the evaluation of trabecular bone architecture and a potentially useful parametric index for the early diagnosis of osteoporosis.
机译:我们开发了一种磁共振(MR)图像分析方法,该方法能够提供对衰老的骨微体系结构变化以及骨质疏松症发作和进展敏感的参数。建立该方法时要考虑到许多解剖和生理结构的分形特性。分形腔隙分析已用于确定相关参数,以从腰椎MR图像中区分三种类型的小梁骨结构(健康的年轻,健康的围绝经期和骨质疏松的患者)。特别地,我们建议通过依赖于三个系数$ alpha,beta $和$ gamma $的双曲线模型函数来近似盲点函数,并将这些系数计算为最小二乘问题的解。该系数的三元组提供了一个模型函数,可以更好地表示所考虑图像中像素的质量密度的变化。这种方法的初步版本的临床应用表明,三个系数之一β可能代表骨小梁结构评估的标准和骨质疏松症早期诊断的潜在有用参数指标。

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