Center for Scientific Computation in Imaging, San Diego, CA 92103, USA.
Neuroimage. 2010 Jan 15;49(2):1510-23. doi: 10.1016/j.neuroimage.2009.09.010. Epub 2009 Sep 22.
We present an acquisition and reconstruction method designed to acquire high resolution 3D fast spin echo diffusion tensor images while mitigating the major sources of artifacts in DTI-field distortions, eddy currents and motion. The resulting images, being 3D, are of high SNR, and being fast spin echoes, exhibit greatly reduced field distortions. This sequence utilizes variable density spiral acquisition gradients, which allow for the implementation of a self-navigation scheme by which both eddy current and motion artifacts are removed. The result is that high resolution 3D DTI images are produced without the need for eddy current compensating gradients or B(0) field correction. In addition, a novel method for fast and accurate reconstruction of the non-Cartesian data is employed. Results are demonstrated in the brains of normal human volunteers.
我们提出了一种采集和重建方法,旨在获取高分辨率的 3D 快速自旋回波扩散张量图像,同时减轻 DTI 领域失真、涡流和运动的主要伪影源。生成的图像为 3D 图像,具有高信噪比,并且由于是快速自旋回波,因此场失真大大降低。该序列利用可变密度螺旋采集梯度,允许实施一种自导航方案,通过该方案可以去除涡流和运动伪影。结果是,在不需要涡流补偿梯度或 B(0) 场校正的情况下生成了高分辨率的 3D DTI 图像。此外,还采用了一种新颖的方法来快速准确地重建非笛卡尔数据。结果在正常人类志愿者的大脑中得到了验证。