首页> 外文期刊>Microscopy and microanalysis: The official journal of Microscopy Society of America, Microbeam Analysis Society, Microscopical Society of Canada >Improved background removal method using principal components analysis for spatially resolved electron energy loss spectroscopy
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Improved background removal method using principal components analysis for spatially resolved electron energy loss spectroscopy

机译:基于主成分分析的改进背景去除方法用于空间分辨电子能量损失谱

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摘要

Principal components analysis (PCA) factor filtering is implemented for the improvement of background removal in noisy spectra. When PCA is used as a method for filtering before background removal in electron energy loss spectroscopy elemental maps, an improvement in the accuracy of the background fit with very short fitting intervals is achieved, leading to improved quality of elemental maps from noisy spectra. This opens the possibility to use shorter exposure times for elemental mapping, leading to fewer problems with, for example, drift and beam damage.
机译:执行主成分分析(PCA)因子滤波可改善噪声光谱中的背景去除。当将PCA用作在电子能量损失光谱元素图的背景去除之前进行滤波的方法时,可以在非常短的拟合间隔内实现背景拟合的精度的提高,从而提高了来自噪声光谱的元素图的质量。这提供了使用较短的曝光时间进行元素映射的可能性,从而减少了诸如漂移和光束损坏的问题。

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