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Fast magnetic susceptibility reconstruction using L0 norm of gradient

机译:使用梯度L0范数快速重建磁化率

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There is a growing interest in quantifying tissue susceptibility in MRI. However, the zeros in the dipole kernel makes the calculation of the magnetic susceptibility from the measured field to be an ill-posed problem. Recently, Bayesian regularization approaches have been utilized to enable accurate quantitative susceptibility mapping(QSM), such as L2 norm gradient minimization and TV. In this work, we propose an efficient QSM method by using a sparsity promoting regularization which called L0 norm of gradient to reconstruct susceptibility map. The use of L0 norm allows us to yield high quality image and prevent penalizing salient edges. Since the L0 minimization is an NP-hard problem, a special alternating optimization strategy by introducing an auxiliary variable is adopted to solve the problem and it only takes 1–2 mins to reconstruct the whole 3D susceptibility data. Both numerical phantom simulations and human brain tests are performed to demonstrate the superior performance of the proposed method compared with previous methods.
机译:人们对在MRI中量化组织敏感性的兴趣日益浓厚。然而,偶极核中的零使从被测场计算磁化率成为一个不适定的问题。最近,贝叶斯正则化方法已被用于实现准确的定量磁化率映射(QSM),例如L2范数梯度最小化和TV。在这项工作中,我们提出了一种利用稀疏性促进正则化的有效QSM方法,该方法称为梯度L0范数来重建磁化率图。 L0范数的使用使我们能够产生高质量的图像并防止对显着边缘进行惩罚。由于L0最小化是一个NP难题,因此采用了一种特殊的交替优化策略,即通过引入辅助变量来解决该问题,并且仅花费1-2分钟即可重建整个3D磁化率数据。数值幻影模拟和人脑测试都可以证明与以前的方法相比,该方法的优越性能。

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