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Mitigating gyral bias in cortical tractography via asymmetric fiber orientation distributions

机译:通过不对称纤维取向分布缓解皮质牵引中的血晶偏压

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Diffusion tractography in brain connectomics often involves tracing axonal trajectories across gray-white, matter boundaries in gyral blades of complex cortical convolutions. To date, gyral bias is observed in most tractography algorithms with streamlines predominantly terminating at gyral crowns instead of sulcal banks. This work demonstrates that asymmetric fiber orientation distribution functions (AFODFs), computed via a multi-tissue global estimation framework, can mitigate the effects of gyral bias, enabling fiber streamlines at gyral blades to make sharper turns into the cortical gray matter. We use ex-vivo data of an adult rhesus macaque and in-vivo data from the Human Connectome Project (HCP) to show that the fiber streamlines given by AFODFs bend more naturally into the cortex than the conventional symmetric FODFs in typical gyral blades. We demonstrate that AFODF tractography improves cortico-cortical connectivity and provides highly consistent outcomes between two different field strengths (3T and 7T). (C) 2019 Elsevier B.V. All rights reserved.
机译:脑筋声中的扩散牵引术往往涉及横跨灰白色的轴突轨迹,复杂皮质卷曲的古代叶片中的轴承界限。迄今为止,在大多数牵引算法中观察到陀螺偏压,其流线型主要终止于古尔冠而不是硫群。这项工作表明,经由多组织全球估计框架计算的不对称纤维取向分布函数(AFODFS)可以减轻陀螺偏压的影响,使Gyral叶片的光纤流动线变得更加倾向于皮质灰质。我们使用来自人类连接项目(HCP)的成年恒河猕猴和体内数据的前体内数据(HCP)来表明AFODFS给出的光纤流弯曲更自然地进入皮层,而不是典型的陀螺刀片中的传统对称FODF。我们证明了AFODF牵引力改善了皮质皮质连接,并在两个不同场强(3T和7T)之间提供高度一致的结果。 (c)2019年Elsevier B.V.保留所有权利。

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