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Beyond Crossing Fibers: Bootstrap Probabilistic Tractography Using Complex Subvoxel Fiber Geometries

机译:超越交叉纤维:使用复杂的亚体素纤维几何形状的自举概率术

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摘要

Diffusion magnetic resonance imaging fiber tractography is a powerful tool for investigating human white matter connectivity in vivo. However, it is prone to false positive and false negative results, making interpretation of the tractography result difficult. Optimal tractography must begin with an accurate description of the subvoxel white matter fiber structure, includes quantification of the uncertainty in the fiber directions obtained, and quantifies the confidence in each reconstructed fiber tract. This paper presents a novel and comprehensive pipeline for fiber tractography that meets the above requirements. The subvoxel fiber geometry is described in detail using a technique that allows not only for straight crossing fibers but for fibers that curve and splay. This technique is repeatedly performed within a residual bootstrap statistical process in order to efficiently quantify the uncertainty in the subvoxel geometries obtained. A robust connectivity index is defined to quantify the confidence in the reconstructed connections. The tractography pipeline is demonstrated in the human brain.
机译:扩散磁共振成像纤维束成像是用于研究体内人类白质连接性的强大工具。然而,容易产生假阳性和假阴性结果,使得难以解释超声检查结果。最佳束线照相术必须从对体素下白质纤维结构的准确描述开始,包括量化获得的纤维方向的不确定度,并量化每个重建纤维束的置信度。本文提出了一种满足上述要求的新颖而全面的纤维束成像管道。使用不仅允许直线交叉的纤维而且允许弯曲和张开的纤维的技术详细描述亚体素纤维的几何形状。为了有效地量化所获得的亚体素几何形状中的不确定性,在残余自举统计过程中重复执行此技术。定义了健壮的连接性索引,以量化重建连接中的置信度。在人脑中证实了束线描记术。

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