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首页> 外文期刊>Analytical chemistry >Multiorder Correction Algorithms to Remove Image Distortions from Mass Spectrometry Imaging Data Sets
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Multiorder Correction Algorithms to Remove Image Distortions from Mass Spectrometry Imaging Data Sets

机译:用于消除质谱成像数据集中图像失真的多阶校正算法

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摘要

Time-of-flight secondary ion mass spectrometry imaging is a rapidly evolving technology. Its main application is the study of the distribution of small molecules on biological tissues. The sequential image acquisition process remains susceptible to measurement distortions that can render imaging data less analytically useful. Most of these artifacts show a repetitive nature from tile to tile. Here we statistically describe these distortions and derive two different algorithms to correct them. Both a generalized linear model approach and the linear discriminant analysis approach are able to increase image quality for negative and positive ion mode data sets. Additionally, performing simulation studies with repetitive and nonrepetitive tiling error we show that both algorithms are only removing repetitive distortions. It is further shown that the spectral component of the data set is not altered by the use of these correction methods. Both algorithms presented in this work greatly increase the image quality and improve the analytical usefulness of distorted images dramatically.
机译:飞行时间二次离子质谱成像是一项快速发展的技术。它的主要应用是研究小分子在生物组织中的分布。顺序图像采集过程仍然容易受到测量失真的影响,这些失真会使成像数据的分析用途减少。这些文物中的大多数在瓷砖之间显示出重复性。在这里,我们从统计学角度描述这些失真,并推导两种不同的算法来纠正它们。广义线性模型方法和线性判别分析方法都能够提高负离子和正离子模式数据集的图像质量。此外,通过对重复和非重复切片误差进行仿真研究,我们发现两种算法都只能消除重复失真。进一步表明,使用这些校正方法不会改变数据集的光谱分量。这项工作中提出的两种算法都极大地提高了图像质量,并大大提高了失真图像的分析实用性。

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