自适应分析在磁共振成像中的应用

A. Asgharzadeh, R. Jordan, G. Abousleman, L. D. Canady, D. Koechner, R. Griffey
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引用次数: 1

摘要

演示了各种参数化建模技术在短复杂核磁共振(NMR)数据序列中的应用。这些技术具有在不受截断伪影影响的情况下识别信号频率簇的潜力。这些自适应算法与快速傅里叶变换(FFT)一样快,并且通常是FFT的实用替代方案,用于从只有16个复数点的时域数据序列生成磁共振图像。处理非平稳核磁共振数据有两种不同的方法,即块处理和递归处理。最小均方和修正最小均方算法是递归自适应过程的例子,而Yule-Walker和Burg方法是块处理的例子。应用自适应算法可以准确地表示短时域数据记录的固有信息内容。这些表示的分辨率与具有两倍样本数量的DFT分析相当。这种分辨率和信号精度的提高可以在不增加采集或处理时间的情况下获得。因此,该技术非常适合核磁共振仪器的临床应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Applications of adaptive analysis in magnetic resonance imaging
The application of a variety of parametric modeling techniques to short complex nuclear magnetic resonance (NMR) data sequences is demonstrated. These techniques have the potential of identifying frequency clusters of signals without being compromised by truncation artifacts. These adaptive algorithms are as rapid as the fast Fourier transform (FFT), and are often a practical alternative to the FFT for generating magnetic resonance images from time-domain data sequences with only 16 complex points. There are two distinct methods of processing nonstationary NMR data, i.e. block and recursive processing. Least-mean-square and modified-least-mean-square algorithms are examples of recursive adaptive procedures, while the Yule-Walker and Burg methods are examples of block processing. Application of the adaptive algorithms yields results where the inherent information content of short time-domain data records are accurately represented. The resolution of these representations is comparable to a DFT analysis with twice the number of samples. This increase in resolution and the accuracy of the signal can be obtained without any increase in acquisition or processing time. Hence, the techniques is well suited for clinical applications on NMR instruments.<>
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