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Comparison of species classification models of mass spectrometry data : kernel discriminant analysis vs. random forest : a case study of Afrormosia (Pericopsis elata (Harms) Meeuwen)

机译:质谱数据物种分类模型的比较:核判别分析与随机森林分析:一个案例研究:afrormosia(pericopsis elata(Harms)meeuwen)

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摘要

Rationale: The genus Pericopsis includes four tree species of which only Pericopsis elata (Harms) Meeuwen is of commercial interest. Enforcement officers might have difficulties discerning this CITES-listed species from some other tropical African timber species. Therefore, we tested several methods to separate and identify these species rapidly in order to enable customs officials to uncover illegal trade. In this study, two classification methods using Direct Analysis in Real Time (DART) ionization coupled with Time-of-Flight Mass Spectrometry (DART-TOFMS) data to discern between several species are presented. Methods: Metabolome profiles were collected using DART ionization coupled with TOFMS analysis of heartwood specimens of all four Pericopsis species and Haplormosia monophylla (Harms) Harms, Dalbergia melanoxylon Guill. & Perr. Harms, and Milicia excelsa (Welw.) C.C. Berg. In total, 95 specimens were analysed and the spectra evaluated. Kernel Discriminant Analysis (KDA) and Random Forest classification were used to discern the species. Results: DART-TOFMS spectra obtained from wood slivers and post-processing analysis using KDA and Random Forest classification separated Pericopsis elata from the other Pericopsis taxa and its lookalike timbers Haplormosia monophylla, Milicia excelsa, and Dalbergia melanoxylon. Only 50 ions were needed to achieve the highest accuracy. Conclusions: DART-TOFMS spectra of the taxa were reproducible and the results of the chemometric analysis provided comparable accuracy. Haplormosia monophylla was visually distinguished based on the heatmap and was excluded from further analysis. Both classification methods, KDA and Random Forest, were capable of distinguishing Pericopsis elata from the other Pericopsis taxa, Milicia excelsa, and Dalbergia melanoxylon, timbers that are commonly traded.
机译:理由:紫花菊属包括四种树种,其中只有Pericopsis elata(Harms)Meeuwen具有商业价值。执法人员可能很难区分该CITES所列物种与其他热带非洲木材物种。因此,我们测试了几种快速分离和识别这些物种的方法,以使海关官员能够发现非法贸易。在这项研究中,提出了两种使用实时直接电离(DART)电离结合飞行时间质谱(DART-TOFMS)数据来识别几种物种的分类方法。方法:采用DART电离,结合TOFMS分析所有四个百日草属的心材标本和Haplormosia monophylla(Harms)Harms,Dalbergia melanoxylon Guill,收集代谢组谱。 &Perr。危害和Milicia excelsa(Welw。)伯格总共分析了95个样品并评估了光谱。内核判别分析(KDA)和随机森林分类法用于识别物种。结果:从木条中获得的DART-TOFMS光谱以及使用KDA和随机森林分类进行的后处理分析从其他Pericopsis单元及其类似的木材Haplormosia monophylla,Milicia excelsa和Dalbergia melanoxylon中分离了Pericopsis elata。只需50个离子即可达到最高的精度。结论:该类群的DART-TOFMS光谱是可重现的,化学计量学分析的结果可提供相当的准确性。基于热图在视觉上区分出单核细胞单核细胞,并排除在进一步分析之外。两种分类方法(KDA和随机森林)都能够将Pericopsis elata与其他Pericopsis分类单元,Milicia excelsa和Dalbergia melanoxylon(通常交易的木材)区分开。

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