Department of Biomedical Engineering, Yale University, New Haven, Connecticut, USA; email:
Department of Radiology and Biomedical Imaging, Yale School of Medicine, New Haven, Connecticut, USA.
Annu Rev Biomed Eng. 2024 Jul;26(1):67-91. doi: 10.1146/annurev-bioeng-110122-022903. Epub 2024 Jun 20.
Low-field magnetic resonance imaging (MRI) has recently experienced a renaissance that is largely attributable to the numerous technological advancements made in MRI, including optimized pulse sequences, parallel receive and compressed sensing, improved calibrations and reconstruction algorithms, and the adoption of machine learning for image postprocessing. This new attention on low-field MRI originates from a lack of accessibility to traditional MRI and the need for affordable imaging. Low-field MRI provides a viable option due to its lack of reliance on radio-frequency shielding rooms, expensive liquid helium, and cryogen quench pipes. Moreover, its relatively small size and weight allow for easy and affordable installation in most settings. Rather than replacing conventional MRI, low-field MRI will provide new opportunities for imaging both in developing and developed countries. This article discusses the history of low-field MRI, low-field MRI hardware and software, current devices on the market, advantages and disadvantages, and low-field MRI's global potential.
低场磁共振成像(MRI)最近经历了一次复兴,这在很大程度上归因于 MRI 领域的众多技术进步,包括优化的脉冲序列、并行接收和压缩感知、改进的校准和重建算法,以及机器学习在图像后处理中的应用。对低场 MRI 的新关注源于传统 MRI 难以获得以及对经济实惠的成像技术的需求。由于低场 MRI 不依赖于射频屏蔽室、昂贵的液氦和低温淬火管,因此它是一种可行的选择。此外,其相对较小的尺寸和重量使其易于在大多数环境中进行安装,且成本低廉。低场 MRI 将不会取代传统 MRI,而是为发展中国家和发达国家的成像提供新的机会。本文讨论了低场 MRI 的历史、低场 MRI 的硬件和软件、市场上现有的设备、优点和缺点,以及低场 MRI 的全球潜力。