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Further Development in Anatomically Constrained MR Image Reconstruction: Application to Multimodal Imaging of Mouse Stroke

机译:解剖学监测的MR图像重建的进一步发展:施用对小鼠中风的多峰成像

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MR imaging can leverage a wide variety of intrinsic contrast mechanisms to provide detailed information regarding the anatomy, function, physiology, and metabolism of biological tissues. However, because of low sensitivity, many experiments that reveal higher-order structure and function have been limited due to inherent trade-offs between data acquisition time, signal-to-noise ratio, and resolution. This paper describes the further development of a statistical framework for MR image reconstruction which helps to mitigate these effects. Specifically, we advocate the collection of high-resolution multi-modal MR imaging data, and utilize the correlation between features in these different images to reduce noise while maintaining resolution. The proposed approach is illustrated with joint reconstruction of relaxometry and spectroscopic imaging data in a mouse model of stroke.
机译:MR成像可以利用各种内在的对比机制,提供有关生物组织的解剖学,功能,生理学和代谢的详细信息。然而,由于低灵敏度,由于数据采集时间,信噪比与分辨率之间的固有权衡,许多揭示了高阶结构和功能的实验。本文介绍了MR图像重建统计框架的进一步发展,这有助于减轻这些效果。具体地,我们倡导高分辨率多模态MR成像数据的集合,并利用这些不同图像中的特征之间的相关性来降低噪声,同时保持分辨率。所提出的方法是通过在冲程中的小鼠模型中的弛豫测量和光谱成像数据的联合重建来说明。

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