论文标题

配置:上下文纤维生长以生成逼真的轴突填料,用于扩散MRI模拟

ConFiG: Contextual Fibre Growth to generate realistic axonal packing for diffusion MRI simulation

论文作者

Callaghan, Ross, Alexander, Daniel C., Palombo, Marco, Zhang, Hui

论文摘要

本文介绍了上下文纤维生长(配置),这是一种通过模仿天然纤维创世纪来生成白质数值幻象的方法。配置遵循由真实轴突指导机制激励的简单规则,一对一地生长纤维。这些简单的规则使配置能够通过生长纤维来生成具有可调微结构特征的幻象,同时试图满足形态学靶标,例如用户指定的密度和方向分布。我们通过在一系列纤维配置中生成幻象,包括跨纤维束和方向分散剂,将配置与基于包装纤维的最新方法进行比较。结果表明,配置会产生比最新的幻象高达20%的幻象,尤其是在具有交叉纤维的复杂配置中。我们还表明,配置幻像的显微结构形态与真实组织相当,从真实组织产生直径和方向分布,并从真实组织和捕获复杂的纤维横截面。从配置幻象模拟的信号匹配真实扩散MRI数据,这表明配置幻像可用于生成逼真的扩散MRI数据。这证明了配置为生成现实的合成扩散MRI数据的可行性,用于开发和验证微观结构建模方法。

This paper presents Contextual Fibre Growth (ConFiG), an approach to generate white matter numerical phantoms by mimicking natural fibre genesis. ConFiG grows fibres one-by-one, following simple rules motivated by real axonal guidance mechanisms. These simple rules enable ConFiG to generate phantoms with tuneable microstructural features by growing fibres while attempting to meet morphological targets such as user-specified density and orientation distribution. We compare ConFiG to the state-of-the-art approach based on packing fibres together by generating phantoms in a range of fibre configurations including crossing fibre bundles and orientation dispersion. Results demonstrate that ConFiG produces phantoms with up to 20% higher densities than the state-of-the-art, particularly in complex configurations with crossing fibres. We additionally show that the microstructural morphology of ConFiG phantoms is comparable to real tissue, producing diameter and orientation distributions close to electron microscopy estimates from real tissue as well as capturing complex fibre cross sections. Signals simulated from ConFiG phantoms match real diffusion MRI data well, showing that ConFiG phantoms can be used to generate realistic diffusion MRI data. This demonstrates the feasibility of ConFiG to generate realistic synthetic diffusion MRI data for developing and validating microstructure modelling approaches.

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