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Analysis of Biomarker Features from a Differential Mobility Spectrometer for the Detection of Tuberculosis

机译:从差分迁移谱仪进行差分迁移光谱仪的分析

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In this article, we present an investigation of an approach to extract discriminating features from differential mobility spectrometer (DMS) signals generated from two sets of in vitro samples of headspace that contain volatile organic compounds. The two classes of signals we analyze are a strain of tuberculosis grown in media and the media alone. Our approach first preprocesses the DMS signals to recover a baselined signal and then applies a wavelet transform to obtain localized measures of chemical activity in the detector output. The approach then ranks the wavelet coefficients using a common measure of class separability to identify distinguishing wavelet coefficients. Our analysis indicates that the subsequent ranking can often identify areas of signal devoid of chemical structures and that when discriminating chemical features are identified, the constraints of the wavelet transform as a decompositional tool can result in mismatches between the main lobe of the wavelet basis function and the chemical peak. Techniques to mitigate these effects are also discussed, and considerations are made for how to track features across multiple experiments.
机译:在本文中,我们介绍了一种方法来提取从含有挥发性有机化合物的两组体外样品产生的差异迁移率光谱仪(DMS)信号中提取差异迁移光谱仪(DMS)信号的方法。我们分析的两类信号是培养基和培养基中生长的结核病菌株。我们的方法首先预处理DMS信号以恢复基线信号,然后施加小波变换,以获得检测器输出中的化学活动的局部测量。然后,该方法使用常规测量的类别可分离性来校准小波系数来识别区分小波系数。我们的分析表明,随后的排名通常可以识别没有化学结构的信号区域,并且当识别出化学特征时,小波变换作为分解工具的约束可以导致小波基函数的主叶之间的不匹配和化学峰。还讨论了减轻这些效果的技术,并且考虑了如何跟踪多个实验的特征。

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