首页> 外文会议>Engineering in Medicine and Biology Society, 2000. Proceedings of the 22nd Annual International Conference of the IEEE >Identification of nuclear magnetic resonance (NMR) spin systems by non-linear adaptive filtering
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Identification of nuclear magnetic resonance (NMR) spin systems by non-linear adaptive filtering

机译:通过非线性自适应滤波识别核磁共振(NMR)自旋系统

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Presents two new methods for identifying NMR spin systems. These methods are based on nonlinear adaptive filtering. The spin system is assumed to be time-invariant with memory. In the first method, the nonlinear relationship between excitation (input) and system response (output) is described by truncated discrete Volterra series. First-, second- and third-order kernels of this series are calculated by employing the least mean square (LMS) algorithm with variable adaptive gains. Three parallel filters then model the NMR spin system so that the system output is no more than simple convolution products between filters, coefficients and combinations of the input signal. In the second method, the nonlinear input-output relationship is governed by a recursive nonlinear difference equation with constant coefficients. The variable-gain LMS algorithm is used again to calculate the equation coefficients. The two methods are validated with a simulated NMR system model based on Bloch equations. The results and the performances of these methods are analysed and compared. It is shown that our methods permit a simple identification of NMR spin systems and that they may be useful for the real implementation of optimum NMR signal detection and processing systems, as well as for accurate NMR signal spectral analysis.
机译:介绍了两种识别NMR自旋系统的新方法。这些方法基于非线性自适应滤波。假定自旋系统随存储时间不变。在第一种方法中,激励(输入)与系统响应(输出)之间的非线性关系由截断的离散Volterra级数描述。该系列的一阶,二阶和三阶内核是通过采用具有可变自适应增益的最小均方(LMS)算法来计算的。然后,三个并行滤波器对NMR自旋系统建模,以便系统输出仅是滤波器,系数和输入信号组合之间的简单卷积。在第二种方法中,非线性输入输出关系由具有恒定系数的递归非线性差分方程控制。可变增益LMS算法再次用于计算方程系数。两种方法均通过基于Bloch方程的NMR模拟系统模型进行了验证。分析并比较了这些方法的结果和性能。结果表明,我们的方法允许简单地识别NMR自旋系统,并且它们可能对实际实现最佳NMR信号检测和处理系统以及精确的NMR信号光谱分析有用。

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