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利用深度学习技术探索0.2T低场非屏蔽磁共振成像扫描仪的潜在性能。

Exploring the potential performance of 0.2 T low-field unshielded MRI scanner using deep learning techniques.

作者信息

Li Lei, He Qingyuan, Wei Shufeng, Wang Huixian, Wang Zheng, Yang Wenhui

机构信息

Institute of Electrical Engineering, Chinese Academy of Sciences, Beijing, China.

University of Chinese Academy of Sciences, Beijing, China.

出版信息

MAGMA. 2025 Apr;38(2):253-269. doi: 10.1007/s10334-025-01234-6. Epub 2025 Feb 18.

Abstract

OBJECTIVE

Using deep learning-based techniques to overcome physical limitations and explore the potential performance of 0.2 T low-field unshielded MRI in terms of imaging quality and speed.

METHODS

First, fast and high-quality unshielded imaging is achieved using active electromagnetic shielding and basic super-resolution. Then, the speed of basic super-resolution imaging is further improved by reducing the number of excitations. Next, the feasibility of using cross-field super-resolution to map low-field low-resolution images to high-field ultra-high-resolution images is analyzed. Finally, by cascading basic and cross-field super-resolution, the quality of the low-field low-resolution image is improved to the level of the high-field ultra-high-resolution image.

RESULTS

Under unshielded conditions, our 0.2 T scanner can achieve image quality comparable to that of a 1.5 T scanner (acquisition resolution of 512 × 512, spatial resolution of 0.45 mm), and a single-orientation imaging time of less than 3.3 min.

DISCUSSION

The proposed strategy overcomes the physical limitations of the hardware and rapidly acquires images close to the high-field level on a low-field unshielded MRI scanner. These findings have significant practical implications for the advances in MRI technology, supporting the shift from conventional scanners to point-of-care imaging systems.

摘要

目的

运用基于深度学习的技术克服物理限制,从成像质量和速度方面探索0.2 T低场非屏蔽磁共振成像(MRI)的潜在性能。

方法

首先,利用有源电磁屏蔽和基本超分辨率实现快速且高质量的非屏蔽成像。然后,通过减少激发次数进一步提高基本超分辨率成像的速度。接下来,分析使用交叉场超分辨率将低场低分辨率图像映射至高场超高分辨率图像的可行性。最后,通过级联基本超分辨率和交叉场超分辨率,将低场低分辨率图像的质量提升至高场超高分辨率图像的水平。

结果

在非屏蔽条件下,我们的0.2 T扫描仪能够实现与1.5 T扫描仪相当的图像质量(采集分辨率为512×512,空间分辨率为0.45 mm),且单方向成像时间少于3.3分钟。

讨论

所提出的策略克服了硬件的物理限制,并在低场非屏蔽MRI扫描仪上快速获取接近高场水平的图像。这些发现对MRI技术的进步具有重要的实际意义,支持从传统扫描仪向床旁成像系统的转变。

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