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首页> 外文期刊>Journal of chromatography, A: Including electrophoresis and other separation methods >Simultaneous optimization by neuro-genetic approach of a multiresidue method for determination of pesticides in Passiflora alata infuses using headspace solid phase microextraction and gas chromatography
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Simultaneous optimization by neuro-genetic approach of a multiresidue method for determination of pesticides in Passiflora alata infuses using headspace solid phase microextraction and gas chromatography

机译:顶空固相微萃取和气相色谱法同时测定多残留方法测定西番莲中农药的神经遗传方法同时优化

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摘要

A simultaneous optimization strategy based on neuro-genetic approach has been applied to a HS-SPME-GC-ECD (Headspace Solid Phase Microextraction coupled to Gas Chromatography with Electron Capture Detection) method for simultaneous determination of the pesticides chlorotalonil, methyl parathion, malathion, alpha-endosulfan and beta-endosulfan in herbal infusions of Passiflora alata (Dryander). Two types of extractive fibers were used: a home-made device coated by sol-gel process with polydimethylsiloxane-poly(vinyl alcohol) (PDMS/PVA) and a commercial PDMS. The effects of extraction parameters such as dilution of the infusion, extraction temperature and time, as well as sample ionic strength were evaluated through the Doehlert design. To find a model that could relate these extraction parameters with the extraction efficiency of all pesticide simultaneously, a Bayesian Regularized Artificial Neural Network (BRANN) approach was employed. Subsequently, Genetic Algorithm (GA) was applied to attain the optimum values from the model developed by the neural network. The use of the proposed approach allowed the determination of a single extraction condition that maximized the peak areas of all pesticides simultaneously, showing a promising and a suitable new procedure to the optimization process of complex analytical problems. (c) 2006 Elsevier B.V. All rights reserved.
机译:已将基于神经遗传方法的同步优化策略应用于HS-SPME-GC-ECD(顶空固相微萃取-气相色谱-电子捕获检测)方法,同时测定农药氯麦草定,甲基对硫磷,马拉硫磷,西番莲(Dryander)中草药注入中的α-硫丹和β-硫丹。使用两种类型的提取纤维:通过溶胶-凝胶法涂有聚二甲基硅氧烷-聚(乙烯醇)(PDMS / PVA)的自制设备和商用PDMS。通过Doehlert设计评估了提取参数的影响,例如稀释输液量,提取温度和时间以及样品离子强度。为了找到可以将这些提取参数与所有农药的提取效率同时关联的模型,采用了贝叶斯正则化人工神经网络(BRANN)方法。随后,应用遗传算法(GA)从神经网络开发的模型中获得最佳值。所提出方法的使用允许确定单一提取条件,该条件同时使所有农药的峰面积最大化,这为复杂分析问题的优化过程显示了一种有希望的且合适的新程序。 (c)2006 Elsevier B.V.保留所有权利。

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