Department of Medical Biophysics, University of Toronto, Toronto, Ontario, Canada.
Schulich Heart Research Program and Physical Sciences Platform, Sunnybrook Research Institute, Toronto, Ontario, Canada.
Magn Reson Med. 2017 Aug;78(2):598-610. doi: 10.1002/mrm.26402. Epub 2016 Sep 8.
To enable robust reconstruction for highly accelerated three-dimensional multicontrast late enhancement imaging to provide improved MR characterization of myocardial infarction with isotropic high spatial resolution.
A new method using compressed sensing with low rank and spatially varying edge-preserving constraints (CS-LASER) is proposed to improve the reconstruction of fine image details from highly undersampled data. CS-LASER leverages the low rank feature of the multicontrast volume series in MR relaxation and integrates spatially varying edge preservation into the explicit low rank constrained compressed sensing framework using weighted total variation. With an orthogonal temporal basis pre-estimated, a multiscale iterative reconstruction framework is proposed to enable the practice of CS-LASER with spatially varying weights of appropriate accuracy.
In in vivo pig studies with both retrospective and prospective undersamplings, CS-LASER preserved fine image details better and presented tissue characteristics with a higher degree of consistency with histopathology, particularly in the peri-infarct region, than an alternative technique for different acceleration rates. An isotropic resolution of 1.5 mm was achieved in vivo within a single breath-hold using the proposed techniques.
Accelerated three-dimensional multicontrast late enhancement with CS-LASER can achieve improved MR characterization of myocardial infarction with high spatial resolution. Magn Reson Med 78:598-610, 2017. © 2016 International Society for Magnetic Resonance in Medicine.
实现对高度加速的三维多对比晚期增强成像的稳健重建,提供各向同性高空间分辨率的心肌梗死的改良磁共振特征。
提出了一种新的方法,使用具有低秩和空间变化边缘保持约束的压缩感知(CS-LASER),以从高度欠采样数据中改善精细图像细节的重建。CS-LASER 利用磁共振弛豫多对比度体积序列的低秩特征,并使用加权全变分将空间变化的边缘保持集成到显式低秩约束压缩感知框架中。通过预估计正交时间基,提出了一种多尺度迭代重建框架,能够以适当的精度实践具有空间变化权重的 CS-LASER。
在具有回顾性和前瞻性欠采样的体内猪研究中,CS-LASER 比替代技术更好地保留了精细的图像细节,并呈现出与组织病理学更高一致性的组织特征,特别是在梗死周边区域,对于不同的加速率。在使用所提出的技术时,在单次屏气中可以在体内实现 1.5 毫米的各向同性分辨率。
使用 CS-LASER 的加速三维多对比晚期增强可以实现具有高空间分辨率的心肌梗死的改良磁共振特征。磁共振医学 78:598-610,2017。© 2016 国际磁共振学会。