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从噪声 FT NMR 光谱中进行贝叶斯信号提取。

Bayesian signal extraction from noisy FT NMR spectra.

机构信息

Département de Chimie et de Synthèse Organique, Ecole Polytechnique, F-91128, Palaiseau, France.

出版信息

J Biomol NMR. 1994 Jul;4(4):505-18. doi: 10.1007/BF00156617.

Abstract

The statistical interpretation of the histogram representation of NMR spectra is described, leading to an estimation of the probability density function of the noise. The white-noise and Gaussian hypotheses are discussed, and a new estimator of the noise standard deviation is derived from the histogram strategy. The Bayesian approach to NMR signal detection is presented. This approach homogeneously combines prior knowledge, obtained from the histogram strategy, together with the posterior information resulting from the test of presence of a set of reference shapes in the neighbourhood of each data point. This scheme leads to a new strategy in the local detection of NMR signals in 2D and 3D spectra, which is illustrated by a complete peak-picking algorithm.

摘要

本文描述了 NMR 谱图直方图表示的统计解释,从而可以估计噪声的概率密度函数。讨论了白噪声和高斯假设,并从直方图策略推导出噪声标准差的新估计器。还介绍了 NMR 信号检测的贝叶斯方法。这种方法将来自直方图策略的先验知识与来自每个数据点附近的一组参考形状存在性检验的后验信息均匀地结合在一起。该方案为二维和三维谱图中 NMR 信号的局部检测提供了一种新策略,并通过完整的峰提取算法进行了说明。

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