Department of Biomedical Engineering, University of Rochester, Rochester, NY 14627, USA.
IEEE Trans Med Imaging. 2010 Jun;29(6):1297-309. doi: 10.1109/TMI.2010.2046673. Epub 2010 Apr 1.
We introduce a novel algorithm to address the challenges in magnetic resonance (MR) spectroscopic imaging. In contrast to classical sequential data processing schemes, the proposed method combines the reconstruction and postprocessing steps into a unified algorithm. This integrated approach enables us to inject a range of prior information into the data processing scheme, thus constraining the reconstructions. We use high resolution, 3-D estimate of the magnetic field inhomogeneity map to generate an accurate forward model, while a high resolution estimate of the fat/water boundary is used to minimize spectral leakage artifacts. We parameterize the spectrum at each voxel as a sparse linear combination of spikes and polynomials to capture the metabolite and baseline components, respectively. The constrained model makes the problem better conditioned in regions with significant field inhomogeneity, thus enabling the recovery even in regions with high field map variations. To exploit the high resolution MR information, we formulate the problem as an anatomically constrained total variation optimization scheme on a grid with the same spacing as the magnetic resonance imaging data. We analyze the performance of the proposed scheme using phantom and human subjects. Quantitative and qualitative comparisons indicate a significant improvement in spectral quality and lower leakage artifacts.
我们介绍了一种新的算法来解决磁共振(MR)波谱成象中的挑战。与传统的顺序数据处理方案不同,所提出的方法将重建和后处理步骤结合到一个统一的算法中。这种集成的方法使我们能够将各种先验信息注入数据处理方案中,从而约束重建。我们使用高分辨率、3-D 估计的磁场不均匀性图来生成精确的正向模型,而高分辨率的脂肪/水边界估计则用于最小化谱泄漏伪影。我们将每个体素的光谱参数化为尖峰和多项式的稀疏线性组合,分别捕获代谢物和基线分量。约束模型使具有显著磁场不均匀性的区域中的问题条件更好,从而即使在磁场图变化较大的区域也能够进行恢复。为了利用高分辨率的 MR 信息,我们在与磁共振成像数据间距相同的网格上制定了一个基于解剖约束的全变差优化方案。我们使用幻影和人体受试者来分析所提出的方案的性能。定量和定性比较表明,谱质量有了显著提高,泄漏伪影也更低。