计算机科学
迭代重建
奇异值分解
采样(信号处理)
成像体模
图像质量
数据一致性
人工智能
计算机视觉
k-空间
一致性(知识库)
校准
算法
图像(数学)
磁共振成像
数学
物理
光学
统计
滤波器(信号处理)
医学
放射科
操作系统
作者
Xinlin Zhang,Di Guo,Yiman Huang,Ying Chen,Liansheng Wang,Feng Huang,Xiaobo Qu
标识
DOI:10.48550/arxiv.1909.02846
摘要
Parallel magnetic resonance imaging has served as an effective and widely adopted technique for accelerating scans. The advent of sparse sampling offers aggressive acceleration, allowing flexible sampling and better reconstruction. Nevertheless, faithfully reconstructing the image from limited data still poses a challenging task. Recent low-rank reconstruction methods exhibit superiority in providing a high-quality image. However, none of them employ the routinely acquired calibration data for improving image quality in parallel magnetic resonance imaging. In this work, an image reconstruction approach named STDLR-SPIRiT was proposed to explore the simultaneous two-directional low-rankness (STDLR) in the k-space data and to mine the data correlation from multiple receiver coils with the iterative self-consistent parallel imaging reconstruction (SPIRiT). The reconstruction problem was then solved with a singular value decomposition-free numerical algorithm. Experimental results of phantom and brain imaging data show that the proposed method outperforms the state-of-the-art methods in terms of suppressing artifacts and achieving the lowest error. Moreover, the proposed method exhibits robust reconstruction even when the auto-calibration signals are limited in parallel imaging. Overall the proposed method can be exploited to achieve better image quality for accelerated parallel magnetic resonance imaging.
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