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张量编码扩散 MRI 的梯度波形设计。

Gradient waveform design for tensor-valued encoding in diffusion MRI.

机构信息

Radiology, Brigham and Women's Hospital, Boston, MA, United States; Harvard Medical School, Boston, MA, United States; Clinical Sciences, Lund University, Lund, Sweden.

Radiology, Brigham and Women's Hospital, Boston, MA, United States; Harvard Medical School, Boston, MA, United States.

出版信息

J Neurosci Methods. 2021 Jan 15;348:109007. doi: 10.1016/j.jneumeth.2020.109007. Epub 2020 Nov 23.

Abstract

Diffusion encoding along multiple spatial directions per signal acquisition can be described in terms of a b-tensor. The benefit of tensor-valued diffusion encoding is that it unlocks the 'shape of the b-tensor' as a new encoding dimension. By modulating the b-tensor shape, we can control the sensitivity to microscopic diffusion anisotropy which can be used as a contrast mechanism; a feature that is inaccessible by conventional diffusion encoding. Since imaging methods based on tensor-valued diffusion encoding are finding an increasing number of applications we are prompted to highlight the challenge of designing the optimal gradient waveforms for any given application. In this review, we first establish the basic design objectives in creating field gradient waveforms for tensor-valued diffusion MRI. We also survey additional design considerations related to limitations imposed by hardware and physiology, potential confounding effects that cannot be captured by the b-tensor, and artifacts related to the diffusion encoding waveform. Throughout, we discuss the expected compromises and tradeoffs with an aim to establish a more complete understanding of gradient waveform design and its impact on accurate measurements and interpretations of data.

摘要

在每个信号采集的多个空间方向上进行扩散编码可以用 b 张量来描述。张量值扩散编码的好处是,它将“b 张量的形状”解锁为一个新的编码维度。通过调制 b 张量的形状,我们可以控制对微观扩散各向异性的敏感性,这可以作为一种对比机制;这是传统扩散编码无法实现的功能。由于基于张量值扩散编码的成像方法的应用越来越多,我们被提示要突出设计任何给定应用的最佳梯度波形的挑战。在这篇综述中,我们首先建立了为张量值扩散 MRI 创建场梯度波形的基本设计目标。我们还调查了与硬件和生理学限制、不能用 b 张量捕捉的潜在混杂效应以及与扩散编码波形相关的伪影相关的其他设计考虑因素。在整个过程中,我们讨论了预期的妥协和权衡,目的是建立对梯度波形设计及其对数据准确测量和解释的影响的更全面理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7ad5/8443151/257c47152506/nihms-1735622-f0001.jpg

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