首页> 美国卫生研究院文献>The Scientific World Journal >A Statistical Estimation Approach for Quantitative Concentrations of Compounds Lacking Authentic Standards/Surrogates Based on Linear Correlations between Directly Measured Detector Responses and Carbon Number of Different Functional Groups
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A Statistical Estimation Approach for Quantitative Concentrations of Compounds Lacking Authentic Standards/Surrogates Based on Linear Correlations between Directly Measured Detector Responses and Carbon Number of Different Functional Groups

机译:基于直接测量的检测器响应与不同官能团碳原子数之间的线性相关性的统计估计方法用于定量缺乏真实标准品/替代品的化合物

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摘要

A statistical approach was investigated to estimate the concentration of compounds lacking authentic standards/surrogates (CLASS). As a means to assess the reliability of this approach, the response factor (RF) of CLASS is derived by predictive equations based on a linear regression (LR) analysis between the actual RF (by external calibration) of 18 reference volatile organic compounds (VOCs) consisting of six original functional groups and their physicochemical parameters ((1) carbon number (CN), (2) molecular weight (MW), and (3) boiling point (BP)). If the experimental bias is estimated in terms of percent difference (PD) between the actual and projected RF, the least bias for 18 VOCs is found from CN (17.9 ± 19.0%). In contrast, the PD values against MW and BP are 40.6% and 81.5%, respectively. Predictive equations were hence derived via an LR analysis between the actual RF and CN for 29 groups: (1) one group consisting of all 18 reference VOCs, (2) three out of six original functional groups, and (3) 25 groups formed randomly from the six functional groups. The applicability of this method was tested by fitting these 29 equations into each of the six original functional groups. According to this approach, the mean PD for 18 compounds dropped as low as 5.60 ± 5.63%. This approach can thus be used as a practical tool to assess the quantitative data for CLASS.
机译:研究了一种统计方法来估计缺乏真实标准品/替代品(CL​​ASS)的化合物的浓度。作为评估此方法可靠性的一种方法,CLASS的响应因子(RF)通过基于18种参考挥发性有机化合物(VOC)的实际RF(通过外部校准)之间的线性回归(LR)分析的预测方程式得出。 )由六个原始官能团及其理化参数组成((1)碳数(CN),(2)分子量(MW)和(3)沸点(BP))。如果根据实际RF和预测RF之间的百分比差异(PD)估算实验偏差,则从CN中可以找到18个VOC的最小偏差(17.9±19.0%)。相比之下,针对MW和BP的PD值分别为40.6%和81.5%。因此,通过LR分析得出了29个组在实际RF和CN之间的预测方程:(1)由所有18个参考VOC组成的组;(2)六个原始功能组中的三个;以及(3)随机形成的25个组来自六个功能组。通过将这29个方程式拟合到六个原始功能组的每一个中,测试了该方法的适用性。按照这种方法,18种化合物的平均PD下降至5.60±5.63%。因此,该方法可以用作评估CLASS定量数据的实用工具。

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