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Track Orientation Density Imaging (TODI) and Track Orientation Distribution (TOD) based tractography

机译:基于轨迹方向密​​度成像(TODI)和基于轨迹方向分布(TOD)的放射线照相术

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摘要

Ever since the introduction of the concept of fiber tractography, methods to generate better and more plausible tractograms have become available. Many modern methods can handle complex fiber architecture and take on a probabilistic approach to account for different sources of uncertainty. The resulting tractogram from any such method typically represents a finite random sample from a complex distribution of possible tracks. Generating a higher amount of tracks allows for a more accurate depiction of the underlying distribution. The recently proposed method of track-density imaging (TDI) allows to capture the spatial distribution of a tractogram. In this work, we propose an extension of TDI towards the 5D spatio-angular domain, which we name track orientation density imaging (TODI). The proposed method aims to capture the full track orientation distribution (TOD). Just as the TDI map, the TOD is amenable to spatial super-resolution (or even sub-resolution), but in addition also to angular super-resolution. Through experiments on in vivo human subject data, an in silico numerical phantom and a challenging tractography phantom, we found that the TOD presents an increased amount of regional spatio-angular consistency, as compared to the fiber orientation distribution (FOD) from constrained spherical deconvolution (CSD). Furthermore, we explain how the amplitude of the TOD of a short-tracks distribution (t.e. where the track length is limited) can be interpreted as a measure of track-like local support (TLS). This in turn motivated us to explore the idea of TOD-based fiber tractography. In such a setting, the short-tracks TOD is able to guide a track along directions that are more likely to correspond to continuous structure over a longer distance. This powerful concept is shown to greatly robustify targeted as well as whole-brain tractography. We conclude that the TOD is a versatile tool that can be cast in many different roles and scenarios in the expanding domain of fiber tractography based methods and their applications.
机译:自从引入纤维弹力描记术的概念以来,就产生了产生更好和更合理的弹力描记图的方法。许多现代方法可以处理复杂的光纤体系结构,并采用概率方法来解决不确定性的不同来源。通过任何此类方法得到的tractogram通常代表来自可能轨迹的复杂分布的有限随机样本。生成更多的轨道可以更准确地描述基础分布。最近提出的径迹密度成像(TDI)方法允许捕获硬皮层图的空间分布。在这项工作中,我们建议将TDI扩展到5D时空角域,我们将其命名为轨道方向密度成像(TODI)。所提出的方法旨在捕获完整的轨道方向分布(TOD)。就像TDI地图一样,TOD不仅适用于空间超分辨率(甚至是子分辨率),而且还适用于角度超分辨率。通过对体内人类受试者数据,计算机模拟体模和有挑战性的体模学体模的实验,我们发现,与受约束的球形反褶积产生的纤维取向分布(FOD)相比,TOD呈现出更多的区域时空角一致性。 (CSD)。此外,我们解释了如何将短轨道分布(即轨道长度受限制的地方)的TOD幅度解释为类似轨道的本地支持(TLS)的量度。反过来,这激发了我们探索基于TOD的纤维束照相术的想法。在这样的设置中,短轨道TOD能够沿着更可能对应于较长距离上的连续结构的方向引导轨道。事实证明,这种强大的概念可以极大地增强目标性以及全脑束成像。我们得出的结论是,TOD是一种多功能工具,可以在基于纤维束摄影的方法及其应用的扩展领域中扮演许多不同的角色和场景。

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