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首页> 外文期刊>Talanta: The International Journal of Pure and Applied Analytical Chemistry >Chemometrics-assisted simultaneous voltammetric determination of ascorbic acid, uric acid, dopamine and nitrite: Application of non-bilinear voltammetric data for exploiting first-order advantage
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Chemometrics-assisted simultaneous voltammetric determination of ascorbic acid, uric acid, dopamine and nitrite: Application of non-bilinear voltammetric data for exploiting first-order advantage

机译:化学计量学同时测定抗坏血酸,尿酸,多巴胺和亚硝酸盐的伏安法:利用非双线性伏安法数据开发一阶优势

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摘要

For the first time, several multivariate calibration (MVC) models including partial least squares-1 (PLS-1), continuum power regression (CPR), multiple linear regress ion-successive projections algorithm (MLR- SPA),robust continuum regression (RCR),partial robust M-regress ion (PRM), polynomial-PLS (PLY-PLS), spline-PLS (SPL-PLS), radial basis function-PLS (RBF-PLS), least squares-support vector machines (LS-SVM), wavelet transform-artificial neural network (WT-ANN), discrete wavelet trans form-ANN (DWT-ANN), and back propagation-ANN (BP-ANN) have been constructed on the basis of non-bilinear first order square wave voltammetric (SWV) data for the simultaneous determination of ascorbic acid (AA), uric acid (UA), dopamine (DP) and nitrite (NT) at a glassy carbon electrode (GCE) to identify which technique offers the best predictions. The compositions of the calibration mixtures were selected according to a simplex lattice design (SLD) and validated with an external set of analytes' mixtures. An asymmetric least squares splines regression (AsLSSR) algorithm was applied for correcting the baselines. A correlation optimized warping (COW) algorithm was used to data alignment and lack of bilinearity was tackled by potential shift correction. The effects of several pre-processing techniques such as genetic algorithm (GA), orthogonal signal correction (OSC),mean centering (MC), robust median centering (RMC), wavelet denoising (WD), and Savitsky-Golay smoothing (SGS) on the predictive ability of the mentioned MVC models were examined. The best preprocessing technique was found for each model. According to the results obtained, the RBF-PLS was recommended to simultaneously assay the concentrations of AA, UA, DP and NT in human serum samples.
机译:首次有多个多元校正(MVC)模型,包括偏最小二乘-1(PLS-1),连续功率回归(CPR),多次线性回归离子成功投影算法(MLR-SPA),鲁棒连续回归(RCR) ),部分鲁棒M回归离子(PRM),多项式-PLS(PLY-PLS),样条-PLS(SPL-PLS),径向基函数-PLS(RBF-PLS),最小二乘支持向量机(LS- SVM),小波变换-人工神经网络(WT-ANN),离散小波变换ANN(DWT-ANN)和反向传播ANN(BP-ANN)已在非双线性一阶平方的基础上构建伏安(SWV)数据,用于同时测定玻璃碳电极(GCE)上的抗坏血酸(AA),尿酸(UA),多巴胺(DP)和亚硝酸盐(NT),以确定哪种技术可提供最佳预测。根据单纯形点阵设计(SLD)选择校准混合物的成分,并使用一组外部分析物的混合物进行验证。应用非对称最小二乘样条曲线回归(AsLSSR)算法校正基线。使用相关优化的翘曲(COW)算法进行数据对齐,并通过潜在的位移校正解决了双线性不足的问题。几种预处理技术的效果,例如遗传算法(GA),正交信号校正(OSC),平均居中(MC),鲁棒中值居中(RMC),小波去噪(WD)和Savitsky-Golay平滑(SGS)对上述MVC模型的预测能力进行了研究。对于每种模型,发现了最佳的预处理技术。根据获得的结果,建议使用RBF-PLS同时测定人血清样品中AA,UA,DP和NT的浓度。

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