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Discrimination of polycyclic aromatic hydrocarbons based on fluorescence spectrometry coupled with CS-SVM

机译:基于荧光光谱法耦合CS-SVM的多环芳烃的区分

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A new approach for discrimination of polycyclic aromatic hydrocarbons (PAHs) in environment was proposed based on fluorescence coupled with CS-SVM. Two groups of experiments were carried out on PAHs with similar spectra. The first one was PAHs any two among benzo[k]fluoranthene (BkF), benzo[b]fluoranthene (BbF) and benzo[a]pyrene (BaP). The second one was naphthalene (NAP) and fluorene (FLU) with similar spectra. The BaP-BkF mixture, BaP-BbF mixture and BbF-BkF mixture with similar fluorescence properties, cuckoo search algorithm (CS) optimizing support vector machine (SVM) was used to discriminate these three mixtures. By comparison with the basic grid search algorithm (GS), genetic algorithm (GA) and particle swarm optimization algorithm (PSO) optimizing SVM, it was found that fitting degree of CS was the best and the convergence speed was also the fastest. The test sample classification accuracy of CS-SVM can reach 100%, which was higher than that of GS-SVM, GA-SVM and PSO-SVM. In order to verify the validity of the proposed approach, all the above methods were applied to discriminate NAP and FLU with extremely similar spectra. The test sample classification accuracy can reach 100%. The satisfying results indicated that the proposed approach had potential to be an alternative approach for discriminating PAHs in environment. (C) 2019 Published by Elsevier Ltd.
机译:提出了一种基于荧光与CS-SVM偶联的环境中多环芳烃(PAHS)辨别多环芳烃(PAH)的新方法。在具有相似光谱的PAHS上进行两组实验。第一个是PAHS中的任何两种苯并[K]氟(BKF),苯并[B]氟(BBF)和苯并[A]芘(BAP)。第二个是具有相似光谱的萘(午睡)和芴(流感)。使用具有类似荧光特性的BAP-BKF混合物,BAP-BBF混合物和BBF-BKF混合物,杜鹃搜索算法(CS)优化支持向量机(SVM)来区分这三种混合物。通过与基本网格搜索算法(GS),遗传算法(GA)和粒子群优化算法(PSO)优化SVM的比较,发现CS的拟合程度是最佳,收敛速度也是最快的。 CS-SVM的测试样品分类精度可达到100%,高于GS-SVM,GA-SVM和PSO-SVM。为了验证所提出的方法的有效性,应用了所有上述方法以鉴别午睡和流感,具有极其相似的光谱。测试样品分类精度可达100%。令人满意的结果表明,该方法有可能成为歧视环境中PAH的替代方法。 (c)2019年由elestvier有限公司出版

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