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Analysis of petroleum contaminated soils by spectral modeling and pure response profile recovery of n-hexane

机译:通过光谱建模和正己烷纯响应曲线恢复分析石油污染的土壤

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摘要

This pilot study compared penalized spline regression (PSR) and random forest (RF) regression using visible and near-infrared diffuse reflectance spectroscopy (VisNIR DRS) derived spectra of 164 petroleum contaminated soils after two different spectral pretreatments [first derivative (FD) and standard normal variate (SNV) followed by detrending] for rapid quantification of soil petroleum contamination. Additionally, a new analytical approach was proposed for the recovery of the pure spectral and concentration profiles of n-hexane present in the unresolved mixture of petroleum contaminated soils using multi-variate curve resolution alternating least squares (MCR-ALS). The PSR model using FD spectra (r~2 = 0.87, RMSE = 0.580 log_(10) mg kg~(-1), and residual prediction deviation = 2.78) outperformed all other models tested. Quantitative results obtained by MCR-ALS for n-hexane in presence of interferences (r~2 = 0.65 and RMSE 0.261 log_(10) mg kg~(-1)) were comparable to those obtained using FD (PSR) model. Furthermore, MCR ALS was able to recover pure spectra of n-hexane.
机译:这项先导研究使用两种不同的光谱预处理[一阶导数(FD)和标准],使用可见和近红外漫反射光谱(VisNIR DRS)衍生的164种石油污染土壤的光谱,比较了惩罚样条回归(PSR)和随机森林(RF)回归正态变量(SNV),然后进行去趋势分析],以快速量化土壤石油污染。另外,提出了一种新的分析方法,该方法使用多变量曲线分辨率交替最小二乘(MCR-ALS)来恢复存在于未溶解的石油污染土壤混合物中的正己烷的纯光谱和浓度分布。使用FD光谱(r〜2 = 0.87,RMSE = 0.580 log_(10)mg kg〜(-1),剩余预测偏差= 2.78)的PSR模型优于所有其他测试模型。 MCR-ALS在存在干扰(r〜2 = 0.65和RMSE 0.261 log_(10)mg kg〜(-1))下对正己烷的定量分析结果与使用FD(PSR)模型获得的结果相当。此外,MCR ALS能够回收正己烷的纯光谱。

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