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在配备高性能梯度插入件的临床前 MRI 扫描仪上校正螺旋轨迹。

On the correction of spiral trajectories on a preclinical MRI scanner with a high-performance gradient insert.

机构信息

Department of Diagnostic and Interventional Radiology, University Hospital Würzburg, Würzburg, Germany.

Comprehensive Heart Failure Center, University Hospital Würzburg, Würzburg, Germany.

出版信息

NMR Biomed. 2024 Dec;37(12):e5249. doi: 10.1002/nbm.5249. Epub 2024 Sep 12.

Abstract

This study aimed to examine different trajectory correction methods for spiral imaging on a preclinical scanner with high-performance gradients with respect to image quality in a phantom and in vivo. The gold standard method of measuring the trajectories in a separate experiment is compared to an isotropic delay-correction, a correction using the gradient system transfer function (GSTF), and a combination of the two. Three different spiral trajectories, with 96, 16, and three interleaves, are considered. The best image quality is consistently achieved when determining the trajectory in a separate phantom measurement. However, especially for the spiral with 96 interleaves, the other correction methods lead to almost comparable results. Remaining imperfections in the corrected gradient waveforms and trajectories are attributed to asymmetrically occurring undulations in the actual, generated gradients, suggesting that the underlying assumption of linearity is violated. In conclusion, images of sufficient quality can be acquired on preclinical small-animal scanners using spiral k-space trajectories without the need to carry out separate trajectory measurements each time. Depending on the trajectory, a simple isotropic delay-correction or a GSTF-based correction can provide images of similar quality.

摘要

本研究旨在针对高性能梯度的临床前扫描仪上的螺旋成像,检查不同的轨迹校正方法,以评估在体模和体内的图像质量。将标准的轨迹测量方法与各向同性延迟校正、梯度系统传递函数(GSTF)校正和两者的组合进行比较。考虑了三种不同的螺旋轨迹,分别有 96、16 和三个交织。在单独的体模测量中确定轨迹时,始终可以获得最佳的图像质量。然而,特别是对于 96 个交织的螺旋,其他校正方法导致几乎可比的结果。校正后的梯度波形和轨迹中的剩余不完美归因于实际产生的梯度中出现的非对称波动,这表明线性的基本假设被违反了。总之,可以使用没有每次都进行单独的轨迹测量的螺旋 k 空间轨迹在临床前小动物扫描仪上获取具有足够质量的图像。根据轨迹的不同,简单的各向同性延迟校正或基于 GSTF 的校正可以提供相似质量的图像。

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