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首页> 外文期刊>Chemometrics and Intelligent Laboratory Systems >How to search the experimental conditions that improve a Partial Least Squares calibration model. Application to a flow system with electrochemical detection for the determination of sulfonamides in milk
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How to search the experimental conditions that improve a Partial Least Squares calibration model. Application to a flow system with electrochemical detection for the determination of sulfonamides in milk

机译:如何搜索改善偏最小二乘校准模型的实验条件。在电化学检测流动系统中测定牛奶中的磺胺类药物

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This paper deals with the selection of experimental conditions and how the signals obtained in these conditions influence the fitted Partial Least Squares calibration model. The multivariate signals come from a flow analysis system with amperometric detection when determining sulfadiazine, sulfamerazine and sulfamethazine in milk. The solution (carrier plus analyte) was pumped through the system to provide a continuous supply of analyte to the cell. The detector was programmed for a scan mode operation being the multivariate signal the hydrodynamic voltammogram. To obtain an analytical signal of enough analytical quality, the Net Analyte Signal and its standard deviation have been optimised by using an experimental design. The conflicting behaviour of the two responses has been solved by estimating the Pareto-optimal front. The multivariate signals recorded in the optimal conditions found have been calibrated by Partial Least Squares regression and their figures of merit validated according to the criteria established in European Decision 2002/657/EC. In relation to the permitted limit, 100 (mu)g 1~(-1) in milk, for the total content of sulfonamides established in the Commission Regulation EC no. 281/96 the proposed method has a decision limit of 109.1 (mu)g 1~(-1) and the capability of detection is 117.9 (mu)g 1~(-1) for both probability of false non-compliance and of false compliance equal to 5percent. A recovery of 86.5percent+-2.4percent (n(velence)5) has been obtained.
机译:本文讨论了实验条件的选择以及在这些条件下获得的信号如何影响拟合的偏最小二乘校准模型。当确定牛奶中的磺胺嘧啶,磺胺嘧啶和磺胺二甲嘧啶时,多变量信号来自具有安培检测功能的流量分析系统。溶液(载体加分析物)被泵送通过系统,以向细胞提供连续的分析物。检测器被编程用于扫描模式操作,该操作是流体动力伏安图的多元信号。为了获得足够分析质量的分析信号,已通过实验设计优化了净分析物信号及其标准偏差。通过估计帕累托最优前沿,已经解决了两个响应的冲突行为。在发现的最佳条件下记录的多元信号已通过偏最小二乘回归进行了校准,其品质因数根据欧洲决策2002/657 / EC中建立的标准进行了验证。关于允许的限量,牛奶中的100μg1〜(-1)为委员会规例EC No.1中确定的磺酰胺总含量。 281/96提出的方法的判定极限为109.1μg1〜(-1),对于错误不合规和错误的概率,检测能力为117.9μg1〜(-1)。达标率为5%。回收率为86.5%+-2.4%(n(velence)5​​)。

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