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首页> 外文期刊>Chromatography >Estimating Detection Limits in Chromatography from Calibration Data: Ordinary Least Squares Regression vs. Weighted Least Squares
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Estimating Detection Limits in Chromatography from Calibration Data: Ordinary Least Squares Regression vs. Weighted Least Squares

机译:从校正数据估算色谱中的检出限:普通最小二乘回归与加权最小二乘

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It is necessary to determine the limit of detection when validating any analytical method. For methods with a linear response, a simple and low labor-consuming procedure is to use the linear regression parameters obtained in the calibration to estimate the blank standard deviation from the residual standard deviation ( s res ), or the intercept standard deviation ( s b 0 ). In this study, multiple experimental calibrations are evaluated, applying both ordinary and weighted least squares. Moreover, the analyses of replicated blank matrices, spiked at 2–5 times the lowest calculated limit values with the two regression methods, are performed to obtain the standard deviation of the blank. The limits of detection obtained with ordinary least squares, weighted least squares, the signal-to-noise ratio, and replicate blank measurements are then compared. Ordinary least squares, which is the simplest and most commonly applied calibration regression methodology, always overestimate the values of the standard deviations at the lower levels of calibration ranges. As a result, the detection limits are up to one order of magnitude greater than those obtained with the other approaches studied, which all gave similar limits.
机译:在验证任何分析方法时,有必要确定检测限。对于具有线性响应的方法,一种简单且耗时少的方法是使用在校准中获得的线性回归参数从残留标准偏差(s res)或截距标准偏差(sb 0)估算空白标准偏差。 )。在这项研究中,使用普通最小二乘法和加权最小二乘法对多个实验校准进行了评估。此外,使用两种回归方法对复制的空白矩阵进行分析,加标为最低计算极限值的2-5倍,从而获得了空白的标准偏差。然后比较使用普通最小二乘法,加权最小二乘,信噪比和重复空白测量获得的检测限。普通最小二乘法是最简单,最常用的校准回归方法,它总是在较低的校准范围内高估标准偏差的值。结果,检测限比其他研究方法获得的检测限高一个数量级,而其他方法均给出了相似的限度。

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