压缩传感
扫描仪
定量磁化率图
正规化(语言学)
反演(地质)
磁化率加权成像
滤波器(信号处理)
计算机科学
模式识别(心理学)
核磁共振
算法
数学
人工智能
物理
计算机视觉
磁共振成像
地质学
医学
古生物学
构造盆地
放射科
作者
Bing Wu,Wei Li,Arnaud Guidon,Chunlei Liu
摘要
Abstract The derivation of susceptibility from image phase is hampered by the ill‐conditioned filter inversion in certain k ‐space regions. In this article, compressed sensing is used to compensate for the k ‐space regions where direct filter inversion is unstable. A significantly lower level of streaking artifacts is produced in the resulting susceptibility maps for both simulated and in vivo data sets compared to outcomes obtained using the direct threshold method. It is also demonstrated that the compressed sensing based method outperforms regularization based methods. The key difference between the regularized inversions and compressed sensing compensated inversions is that, in the former case, the entire k ‐space spectrum estimation is affected by the ill‐conditioned filter inversion in certain k ‐space regions, whereas in the compressed sensing based method only the ill‐conditioned k ‐space regions are estimated. In the susceptibility map calculated from the phase measurement obtained using a 3T scanner, not only are the iron‐rich regions well depicted, but good contrast between white and gray matter interfaces that feature a low level of susceptibility variations are also obtained. The correlation between the iron content and the susceptibility levels in iron‐rich deep nucleus regions is studied, and strong linear relationships are observed which agree with previous findings. Magn Reson Med, 2011. © 2011 Wiley‐Liss, Inc.
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