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Suppl 1: High-Field fMRI for Human Applications: An Overview of Spatial Resolution and Signal Specificity

机译:增刊1:适用于人类的高场功能磁共振成像:空间分辨率和信号特异性概述

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摘要

In the last decade, dozens of 7 Tesla scanners have been purchased or installed around the world, while 3 Tesla systems have become a standard. This increased interest in higher field strengths is driven by a demonstrated advantage of high fields for available signal-to-noise ratio (SNR) in the magnetic resonance signal. Functional imaging studies have additional advantages of increases in both the contrast and the spatial specificity of the susceptibility based BOLD signal. One use of this resultant increase in the contrast to noise ratio (CNR) for functional MRI studies at high field is increased image resolution. However, there are many factors to consider in predicting exactly what kind of resolution gains might be made at high fields, and what the opportunity costs might be. The first part of this article discusses both hardware and image quality considerations for higher resolution functional imaging. The second part draws distinctions between image resolution, spatial specificity, and functional specificity of the fMRI signals that can be acquired at high fields, suggesting practical limitations for attainable resolutions of fMRI experiments at a given field, given the current state of the art in imaging techniques. Finally, practical resolution limitations and pulse sequence options for studies in human subjects are considered.
机译:在过去的十年中,全球已购买或安装了数十台7台Tesla扫描仪,而3台Tesla系统已成为标准配置。对高磁场强度的这种日益增长的兴趣是由高磁场对磁共振信号中可用信噪比(SNR)的已证明优势推动的。功能成像研究还具有其他优势,可以提高基于敏感性的BOLD信号的对比度和空间特异性。这种在高场下进行功能性MRI研究的对比度与噪声比(CNR)的增加的用途是提高图像分辨率。但是,要准确预测在高场可能获得哪种分辨率提高以及机会成本可能有很多因素需要考虑。本文的第一部分讨论了高分辨率功能成像的硬件和图像质量考虑。第二部分绘制了可以在高磁场下获取的fMRI信号的图像分辨率,空间特异性和功能特异性之间的区别,考虑到当前的成像技术现状,提出了在给定视野下fMRI实验可获得的分辨率的实际限制。技术。最后,考虑了在人类受试者中进行研究的实际分辨率限制和脉冲序列选项。

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