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JIGSAW:基于全局分段组装的联合非均匀性估计的水脂分离。

JIGSAW: Joint Inhomogeneity estimation via Global Segment Assembly for Water-fat separation.

机构信息

School of Electrical and Electronic Engineering, Nanyang Technological University, Singapore.

出版信息

IEEE Trans Med Imaging. 2011 Jul;30(7):1417-26. doi: 10.1109/TMI.2011.2122342. Epub 2011 Mar 3.

DOI:10.1109/TMI.2011.2122342
PMID:21382765
Abstract

Water-fat separation in magnetic resonance imaging (MRI) is of great clinical importance, and the key to uniform water-fat separation lies in field map estimation. This work deals with three-point field map estimation, in which water and fat are modelled as two single-peak spectral lines, and field inhomogeneities shift the spectrum by an unknown amount. Due to the simplified spectrum modelling, there exists inherent ambiguity in forming field maps from multiple locally feasible field map values at each pixel. To resolve such ambiguity, spatial smoothness of field maps has been incorporated as a constraint of an optimization problem. However, there are two issues: the optimization problem is computationally intractable and even when it is solved exactly, it does not always separate water and fat images. Hence, robust field map estimation remains challenging in many clinically important imaging scenarios. This paper proposes a novel field map estimation technique called JIGSAW. It extends a loopy belief propagation (BP) algorithm to obtain an approximate solution to the optimization problem. The solution produces locally smooth segments and avoids error propagation associated with greedy methods. The locally smooth segments are then assembled into a globally consistent field map by exploiting the periodicity of the feasible field map values. In vivo results demonstrate that JIGSAW outperforms existing techniques and produces correct water-fat separation in challenging imaging scenarios.

摘要

磁共振成像(MRI)中的水脂分离具有重要的临床意义,而实现均匀水脂分离的关键在于磁场图估计。本研究针对三点磁场图估计展开,该方法将水和脂肪建模为两个单峰谱线,磁场不均匀会使谱线发生未知的偏移。由于谱线模型简化,在每个像素处,从多个局部可行的磁场图值中形成磁场图存在固有歧义。为了解决这种歧义,将磁场图的空间平滑性作为优化问题的约束条件。然而,存在两个问题:优化问题计算上难以处理,即使精确求解,也不一定能实现水脂图像的分离。因此,在许多临床重要的成像场景中,稳健的磁场图估计仍然具有挑战性。本文提出了一种名为 JIGSAW 的新型磁场图估计技术。它扩展了一个环信念传播(BP)算法,以获得优化问题的近似解。该解产生局部平滑段,避免了与贪婪方法相关的误差传播。然后,通过利用可行磁场图值的周期性,将局部平滑段组装成全局一致的磁场图。体内实验结果表明,JIGSAW 优于现有技术,并在具有挑战性的成像场景中实现了正确的水脂分离。

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引用本文的文献

1
Magnitude-intrinsic water-fat ambiguity can be resolved with multipeak fat modeling and a multipoint search method.幅度-内禀水脂混杂可以通过多峰脂肪模型和多点搜索方法来解决。
Magn Reson Med. 2019 Jul;82(1):460-475. doi: 10.1002/mrm.27728. Epub 2019 Mar 15.
2
Recovery of chemical estimates by field inhomogeneity neighborhood error detection (REFINED): fat/water separation at 7 tesla.基于场非均匀性邻域误差检测的化学位移估计值恢复(REFINED):7 特斯拉下的脂肪/水分离。
J Magn Reson Imaging. 2013 May;37(5):1247-53. doi: 10.1002/jmri.23826. Epub 2012 Sep 28.
3
Robust multipoint water-fat separation using fat likelihood analysis.
基于脂肪可能性分析的稳健多点水脂分离。
Magn Reson Med. 2012 Apr;67(4):1065-76. doi: 10.1002/mrm.23087. Epub 2011 Aug 12.
4
A fast iterated conditional modes algorithm for water-fat decomposition in MRI.一种用于 MRI 水脂分解的快速迭代条件模式算法。
IEEE Trans Med Imaging. 2011 Aug;30(8):1480-92. doi: 10.1109/TMI.2011.2125980. Epub 2011 Mar 10.
5
k-space water-fat decomposition with T2* estimation and multifrequency fat spectrum modeling for ultrashort echo time imaging.采用 T2* 估计和多频脂肪频谱模型的 k 空间水脂分解技术用于超短回波时间成像。
J Magn Reson Imaging. 2010 Apr;31(4):1027-34. doi: 10.1002/jmri.22121.