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Single echo acquisition magnetic resonance imaging.

机译:单回波采集磁共振成像。

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The dramatic improvement in magnetic resonance imaging (MRI) scan time over the past fifteen years through gradient-based methods that sample k-space more efficiently and quickly cannot be sustained, as thresholds regarding hardware and safety limitations are already being approached. Parallel imaging methods (using multiple receiver coils to partially encode k-space) have offered some relief in the efforts and are rapidly becoming the focus of current endeavors to decrease scan time. Ideally, for some applications, phase encoding would be eliminated completely, replaced with array coil encoding instead, and the entire image formed in a single echo.; The primary objective of this work was to explore that acceleration limit---to implement and investigate the methodology of single echo acquisition magnetic resonance imaging (SEA MRI). The initial evaluation of promising array coil designs is described, based on parameters determined by the ability to enable the imaging method. The analyses of field patterns, decoupling, and signal-to-noise ratio (SNR) that led to the final 64-channel array coil design are presented, and the fabrication and testing of coils designed for 4.7T and 1.5T are described. A detailed description of the obtainment of the first SEA images---64xNreadout images, acquired in a single echo---is provided with an evaluation of those images and highly accelerated images (through parallel imaging techniques) based on SNR and artifact power. Finally, the development of methodologies for various MR applications is described: applications that would particularly benefit from the speed of the imaging method, or those to which the method or the tool (array coil) lends itself. These applications include, but are not limited to, 3D imaging (phase encode in the slice select direction), resolution-enhanced imaging, large-scale (field-of-view) microscopy, and conformal surface imaging. Finally, using the primary enablement of the method---the ability to obtain complete MR images at speeds limited only by the time it takes to acquire a single echo---is presented with a discussion of extremely high frame rate imaging. The contribution to the field of medical imaging is the first implementation, characterization, and demonstration of applications for the acquisition of MR images in a single echo.
机译:在过去的十五年中,通过基于梯度的方法可以更有效,更快速地对k空间进行采样,磁共振成像(MRI)扫描时间的显着改善无法持续,因为已经接近有关硬件和安全限制的阈值。并行成像方法(使用多个接收器线圈对k空间进行部分编码)在工作上有所缓解,并迅速成为当前减少扫描时间的工作重点。理想情况下,对于某些应用,相位编码将被完全消除,取而代之的是阵列线圈编码,整个图像形成为单个回波。这项工作的主要目的是探索加速度极限,以实现和研究单回波采集磁共振成像(SEA MRI)的方法。基于通过启用成像方法的能力所确定的参数,对有前途的阵列线圈设计进行了初步评估。给出了导致最终64通道阵列线圈设计的场模式,去耦和信噪比(SNR)的分析,并描述了针对4.7T和1.5T设计的线圈的制造和测试。通过SNR和伪像功率对第一张SEA图像-以单次回波获取的64xNreadout图像的获取的详细说明提供了对这些图像和高度加速的图像的评估(通过并行成像技术)。最后,描述了针对各种MR应用的方法学的发展:特别受益于成像方法速度的应用,或者该方法或工具(阵列线圈)适合自己的应用。这些应用程序包括但不限于3D成像(在切片选择方向上进行相位编码),分辨率增强的成像,大规模(视野)显微镜和保形表面成像。最后,在讨论极高帧频成像的过程中,提出了使用该方法的主要实现方法-以仅受获取单个回声所需时间限制的速度获得完整MR图像的能力。对医学成像领域的贡献是单次回波中MR图像采集应用的首次实现,表征和演示。

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