GRASPNET: Fast spatiotemporal deep learning reconstruction of golden‐angle radial data for free‐breathing dynamic contrast‐enhanced magnetic resonance imaging

计算机科学 人工智能 对比度(视觉) 迭代重建 深度学习 抓住 动态增强MRI 卷积神经网络 计算机视觉 压缩传感 维数(图论) 磁共振成像 模式识别(心理学) 算法 数学 放射科 医学 程序设计语言 纯数学
作者
Ramin Jafari,Richard Kinh Gian,Maria D. LaGratta,Maggie Fung,Ersin Bayram,Ty Cashen,Ricardo Otazo
出处
期刊:NMR in Biomedicine [Wiley]
卷期号:36 (3): e4861-e4861 被引量:12
标识
DOI:10.1002/nbm.4861
摘要

The purpose of the current study was to develop a deep learning technique called Golden‐angle RAdial Sparse Parallel Network (GRASPnet) for fast reconstruction of dynamic contrast‐enhanced 4D MRI acquired with golden‐angle radial k‐space trajectories. GRASPnet operates in the image‐time space and does not use explicit data consistency to minimize the reconstruction time. Three different network architectures were developed: (1) GRASPnet‐2D: 2D convolutional kernels (x,y) and coil and contrast dimensions collapsed into a single combined dimension; (2) GRASPnet‐3D: 3D kernels (x,y,t); and (3) GRASPnet‐2D + time: two 3D kernels to first exploit spatial correlations (x,y,1) followed by temporal correlations (1,1,t). The networks were trained using iterative GRASP reconstruction as the reference. Free‐breathing 3D abdominal imaging with contrast injection was performed on 33 patients with liver lesions using a T1‐weighted golden‐angle stack‐of‐stars pulse sequence. Ten datasets were used for testing. The three GRASPnet architectures were compared with iterative GRASP results using quantitative and qualitative analysis, including impressions from two body radiologists. The three GRASPnet techniques reduced the reconstruction time to about 13 s with similar results with respect to iterative GRASP. Among the GRASPnet techniques, GRASPnet‐2D + time compared favorably in the quantitative analysis. Spatiotemporal deep learning enables reconstruction of dynamic 4D contrast‐enhanced images in a few seconds, which would facilitate translation to clinical practice of compressed sensing methods that are currently limited by long reconstruction times.

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