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首页> 外文期刊>Journal of land use science >Optimized 3D co-registration of ultra-low-field and high-field magnetic resonance images
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Optimized 3D co-registration of ultra-low-field and high-field magnetic resonance images

机译:优化的3D共同登记超低场和高场磁共振图像

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The prototypes of ultra-low-field (ULF) MRI scanners developed in recent years represent new, innovative, cost-effective and safer systems, which are suitable to be integrated in multi-modal (Magnetoencephalography and MRI) devices. Integrated ULF-MRI and MEG scanners could represent an ideal solution to obtain functional (MEG) and anatomical (ULF MRI) information in the same environment, without errors that may limit source reconstruction accuracy. However, the low resolution and signal-to-noise ratio (SNR) of ULF images, as well as their limited coverage, do not generally allow for the construction of an accurate individual volume conductor model suitable for MEG localization. Thus, for practical usage, a high-field (HF) MRI image is also acquired, and the HF-MRI images are co-registered to the ULF-MRI ones. We address here this issue through an optimized pipeline (SWIM-Sliding WIndow grouping supporting Mutual information). The co-registration is performed by an affine transformation, the parameters of which are estimated using Normalized Mutual Information as the cost function, and Adaptive Simulated Annealing as the minimization algorithm. The sub-voxel resolution of the ULF images is handled by a sliding-window approach applying multiple grouping strategies to down-sample HF MRI to the ULF-MRI resolution. The pipeline has been tested on phantom and real data from different ULF-MRI devices, and comparison with well-known toolboxes for fMRI analysis has been performed. Our pipeline always outperformed the fMRI toolboxes (FSL and SPM). The HF-ULF MRI co-registration obtained by means of our pipeline could lead to an effective integration of ULF MRI with MEG, with the aim of improving localization accuracy, but also to help exploit ULF MRI in tumor imaging.
机译:近年来超低场(ULF)MRI扫描仪的原型代表了新的,创新性,性价比和更安全的系统,适用于集成在多模态(磁性脑图和MRI)设备中。集成的ULF-MRI和MEG扫描仪可以代表一个理想的解决方案,以获得在同一环境中的功能(MEG)和解剖学(ULF MRI)信息,而不会限制源重建精度的错误。然而,ULF图像的低分辨率和信噪比(SNR)以及它们的有限覆盖通常不允许建造适合于MEG定位的精确的单个体积导体模型。因此,为了实际使用,还获取高场(HF)MRI图像,并且HF-MRI图像与ULF-MRI图像共登记。我们通过优化的管道(支持互信息支持游泳窗口分组)来解决此问题。通过仿射变换执行共同注册,其参数使用标准化的互信息作为成本函数估计,以及作为最小化算法的自适应模拟退火。 ULF图像的子体素分辨率由滑动窗口方法处理,将多个分组策略应用于向下样本HF MRI到ULF-MRI分辨率。管道已经在不同ULF-MRI器件的幻像和实际数据上进行了测试,并且已经进行了与用于FMRI分析的众所周知的工具箱进行比较。我们的管道总是超越FMRI工具箱(FSL和SPM)。通过我们的管道获得的HF-ULF MRI共同注册可能会导致ULF MRI与MEG的有效整合,目的是提高本地化准确性,而且还可以帮助利用肿瘤成像中的ULF MRI。

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