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Denoising Raman spectra by Wiener estimation with a numerical calibration dataset

机译:使用数字校准数据集通过维纳估计对拉曼光谱进行消噪

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摘要

Most denoising methods that are currently used in the processing of Raman spectra require significant user interaction in order to optimize their performance across a range of signal-to-noise ratios. In this study, we proposed a method based on the principle of spectral integration followed by Wiener estimation using a numerical calibration dataset, which eliminates the need of experimental measurements for calibration as in the previous Wiener estimation based denoising method. The new method was tested on three types of samples, including a phantom sample, human fingernail and leukemia cells. Compared to two common denoising methods, i.e. moving-average filtering and Savitzky-Golay filtering, the performance of the proposed method is significantly less sensitive to the choices of parameters. Moreover, this method provides comparable or even better denoising performance in the cases with low signal-to-noise ratios.
机译:当前在拉曼光谱处理中使用的大多数降噪方法需要大量的用户交互作用,以优化其在一系列信噪比范围内的性能。在这项研究中,我们提出了一种基于频谱积分原理的方法,然后使用数字校准数据集进行维纳估计,从而消除了像以前基于维纳估计的去噪方法那样需要进行校准的实验测量。在三种类型的样本上测试了该新方法,包括幻像样本,人指甲和白血病细胞。与移动平均滤波和Savitzky-Golay滤波这两种常见的降噪方法相比,该方法的性能对参数选择的敏感度明显降低。此外,在低信噪比的情况下,该方法可提供相当甚至更好的降噪性能。

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