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首页> 外文期刊>Magnetic resonance in medicine: official journal of the Society of Magnetic Resonance in Medicine >Single-shot echo-planar imaging with Nyquist ghost compensation: Interleaved dual echo with acceleration (IDEA) echo-planar imaging (EPI)
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Single-shot echo-planar imaging with Nyquist ghost compensation: Interleaved dual echo with acceleration (IDEA) echo-planar imaging (EPI)

机译:奈奎斯特重影补偿的单次回波平面成像:带加速度的交错双回波(IDEA)回波平面成像(EPI)

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摘要

Echo planar imaging (EPI) is most commonly used for blood oxygen level-dependent fMRI, owing to its sensitivity and acquisition speed. A major problem with EPI is Nyquist (N/2) ghosting, most notably at high field. EPI data are acquired under an oscillating readout gradient and hence vulnerable to gradient imperfections such as eddy current delays and off-resonance effects, as these cause inconsistencies between odd and even k-space lines after time reversal. We propose a straightforward and pragmatic method herein termed "interleaved dual echo with acceleration (IDEA) EPI": two k-spaces (echoes) are acquired under the positive and negative readout lobes, respectively, by performing phase encoding blips only before alternate readout gradients. From these two k-spaces, two almost entirely ghost free images per shot can be constructed, without need for phase correction. The doubled echo train length can be compensated by parallel imaging and/or partial Fourier acquisition. The two k-spaces can either be complex averaged during reconstruction, which results in near-perfect cancellation of residual phase errors, or reconstructed into separate images. We demonstrate the efficacy of IDEA EPI and show phantom and in vivo images at both 3 T and 7 T. Magn Reson Med, 2013.
机译:由于其敏感度和采集速度,回波平面成像(EPI)最常用于依赖血氧水平的fMRI。 EPI的主要问题是奈奎斯特(N / 2)重影,最明显的是在高场。 EPI数据是在振荡的读数梯度下采集的,因此容易受到梯度缺陷的影响,例如涡流延迟和失谐效应,因为它们会导致时间反转后奇数和偶数k空间线之间的不一致。我们提出了一种简单实用的方法,在本文中将其称为“带加速度的交错式双回波(IDEA)EPI”:通过仅在交替的读出梯度之前执行相位编码blip,分别在正和负读出波瓣下获取两个k空间(回波) 。从这两个k空间中,可以在无需相位校正的情况下,每次拍摄可以构建两个几乎完全没有重影的图像。可以通过并行成像和/或部分傅立叶采集来补偿加倍的回波列长度。可以在重建过程中对两个k空间进行复数平均,从而几乎完全消除残留相位误差,也可以将其重建成单独的图像。我们展示了IDEA EPI的功效,并在3 T和7 T上显示了幻像和体内图像。MagnReson Med,2013年。

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