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Reconstruction from free-breathing cardiac MRI data using reproducing kernel Hilbert spaces

机译:使用可再生内核希尔伯特空间从自由呼吸的心脏MRI数据重建

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摘要

This paper describes a rigorous framework for reconstructing MR images of the heart, acquired continuously over the cardiac and respiratory cycle. The framework generalizes existing techniques, commonly referred to as retrospective gating, and is based on the properties of reproducing kernel Hilbert spaces. The reconstruction problem is formulated as a moment problem in a multidimensional reproducing kernel Hilbert spaces (a two-dimensional space for cardiac and respiratory resolved imaging). Several reproducing kernel Hilbert spaces were tested and compared, including those corresponding to commonly used interpolation techniques (sinc-based and splines kernels) and a more specific kernel allowed by the framework (based on a first-order Sobolev RKHS). The Sobolev reproducing kernel Hilbert spaces was shown to allow improved reconstructions in both simulated and real data from healthy volunteers, acquired in free breathing. Magn Reson Med, 2010. © 2009 Wiley-Liss, Inc.
机译:本文介绍了一种用于重建心脏MR图像的严格框架,该框架在整个心动周期和呼吸周期中不断获取。该框架归纳了通常称为回顾性门控的现有技术,并基于再现内核希尔伯特空间的特性。在多维再现核希尔伯特空间(用于心脏和呼吸分辨成像的二维空间)中,将重构问题表述为矩问题。测试并比较了几个可再生内核的希尔伯特空间,包括那些与常用插值技术相对应的(基于Sinc的和样条线的内核)以及框架允许的更特定的内核(基于一阶Sobolev RKHS)。研究表明,Sobolev复制核Hilbert空间可以改善自由呼吸中获得的健康志愿者的模拟和真实数据的重建。 Magn Reson Med,2010年。©2009 Wiley-Liss,Inc.。

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