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A NEW METHOD OF PEAK DETECTION FOR ANALYSIS OF COMPREHENSIVE TWO-DIMENSIONAL GAS CHROMATOGRAPHY MASS SPECTROMETRY DATA

机译:二维二维气相色谱质谱数据分析中峰检测的新方法

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摘要

We develop a novel peak detection algorithm for the analysis of comprehensive two-dimensional gas chromatography time-of-flight mass spectrometry (GC×GC-TOF MS) data using normal-exponential-Bernoulli (NEB) and mixture probability models. The algorithm first performs baseline correction and denoising simultaneously using the NEB model, which also defines peak regions. Peaks are then picked using a mixture of probability distribution to deal with the co-eluting peaks. Peak merging is further carried out based on the mass spectral similarities among the peaks within the same peak group. The algorithm is evaluated using experimental data to study the effect of different cut-offs of the conditional Bayes factors and the effect of different mixture models including Poisson, truncated Gaussian, Gaussian, Gamma, and exponentially modified Gaussian (EMG) distributions, and the optimal version is introduced using a trial-and-error approach. We then compare the new algorithm with two existing algorithms in terms of compound identification. Data analysis shows that the developed algorithm can detect the peaks with lower false discovery rates than the existing algorithms, and a less complicated peak picking model is a promising alternative to the more complicated and widely used EMG mixture models.
机译:我们开发了一种新颖的峰值检测算法,用于使用正指数伯努利(NEB)模型和混合概率模型分析全面的二维气相色谱飞行时间质谱(GC×GC-TOF MS)数据。该算法首先使用NEB模型同时执行基线校正和去噪,该模型还定义了峰区域。然后使用混合概率分布来处理峰,以处理共洗脱峰。基于同一峰组内各峰之间的质谱相似性,进一步执行峰合并。使用实验数据对算法进行评估,以研究条件贝叶斯因子的不同截止点的影响以及泊松,截断高斯,高斯,伽玛和指数修正高斯(EMG)分布等不同混合模型的影响以及最优版本是使用试错法引入的。然后,在化合物识别方面,我们将新算法与两个现有算法进行比较。数据分析表明,与现有算法相比,所开发的算法能够以较低的误发现率检测出峰,并且较复杂且广泛使用的EMG混合模型具有更简单的峰选择模型。

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