首页> 外文期刊>Magnetic resonance in medicine: official journal of the Society of Magnetic Resonance in Medicine >Application of the fractional fourier transform to image reconstruction in MRI
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Application of the fractional fourier transform to image reconstruction in MRI

机译:分数阶傅里叶变换在MRI图像重建中的应用

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摘要

The classic paradigm for MRI requires a homogeneous B 0 field in combination with linear encoding gradients. Distortions are produced when the B 0 is not homogeneous, and several post-processing techniques have been developed to correct them. Field homogeneity is difficult to achieve, particularly for short-bore magnets and higher B 0 fields. Nonlinear magnetic components can also arise from concomitant fields, particularly in low-field imaging, or intentionally used for nonlinear encoding. In any of these situations, the second-order component is key, because it constitutes the first step to approximate higher-order fields. We propose to use the fractional Fourier transform for analyzing and reconstructing the object's magnetization under the presence of quadratic fields. The fractional fourier transform provides a precise theoretical framework for this. We show how it can be used for reconstruction and for gaining a better understanding of the quadratic field-induced distortions, including examples of reconstruction for simulated and in vivo data. The obtained images have improved quality compared with standard Fourier reconstructions. The fractional fourier transform opens a new paradigm for understanding the MR signal generated by an object under a quadratic main field or nonlinear encoding.
机译:MRI的经典范例需要结合线性编码梯度的均匀B 0场。当B 0不均匀时会产生失真,并且已经开发了几种后处理技术来校正它们。磁场均匀性很难实现,尤其是对于短径磁体和更高的B 0磁场。非线性磁性成分也可能来自伴随的场,特别是在低场成像中,或者有意用于非线性编码。在任何这些情况下,第二阶分量都是关键,因为它构成了逼近高阶字段的第一步。我们建议使用分数阶傅立叶变换来分析和重建存在二次磁场的物体的磁化强度。分数阶傅立叶变换为此提供了精确的理论框架。我们展示了如何将其用于重建以及更好地理解二次场诱发的畸变,包括重建模拟和体内数据的示例。与标准傅立叶重构相比,所获得的图像具有更高的质量。分数阶傅立叶变换为理解对象在二次主场或非线性编码下产生的MR信号开辟了新的范式。

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