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Contextual Fibre Growth to Generate Realistic Axonal Packing for Diffusion MRI Simulation

机译:语境纤维生长为扩散MRI仿真产生现实轴突包装

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This paper presents ConFiG, a method for generating white matter (WM) numerical phantoms with more realistic orientation dispersion and packing density. Numerical phantoms are commonly used in the validation of diffusion MRI (dMRI) techniques so it is important that they are as realistic as possible. Current numerical phantoms either oversimplify the complex morphology of WM or are unable to produce realistic orientation dispersion at high packing density. The highest packing density and orientation dispersion achieved so far is only 20% at 10°. ConFiG takes advantage of a shift of paradigm: rather than 'packing fibres', our algorithm 'grows fibres' contextually and efficiently, attempting to produce a substrate with desired morphological priors (orientation dispersion, packing density and diameter distribution), whilst avoiding intersection between fibres. The potential of ConFiG is demonstrated by reaching the highest packing density and orientation dispersion ever, to our knowledge (25% at 35°). The algorithm is compared with a 'brute force' growth approach showing that it is much more efficient, being O(n) compared to the O(n~2) brute-force method. The application of the method to dMRI is demonstrated with simulations of diffusion-weighted MR signal in three example substrates with differing orientation-dispersions, packing-densities and permeabilities.
机译:本文呈现Config,一种用于产生具有更现实的取向分散和包装密度的白质(WM)数值模糊的方法。数值幽灵通常用于扩散MRI(DMRI)技术的验证,因此重要的是它们尽可能逼真。当前数值模仔还是超薄WM的复杂形态,或者不能以高填充密度产生现实的取向分散。到目前为止所实现的最高的填充密度和取向分散仅为10°的20%。 Config利用范例的偏移:而不是“包装纤维”,我们的算法上下文和有效地增长光纤,试图产生具有所需形态学(定向分散,填充密度和直径分布)的基板,同时避免之间的交叉点纤维。通过达到最高的包装密度和方向分散来证明配置的潜力,以我们的知识(35°在35°)。将该算法与“蛮力”的生长方法进行比较,表明它更有效,与O(n)相比,与O(n〜2)鼻力法相比。用不同的取向分散体,包装密度和渗透率的三个示例基板中的扩散加权MR信号进行了对DMRI的应用。

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