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首页> 外文期刊>Applied Spectroscopy: Society for Applied Spectroscopy >Improved Modeling of In Vivo Confocal Raman Data Using Multivariate Curve Resolution (MCR) Augmentation of Ordinary Least Squares Models
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Improved Modeling of In Vivo Confocal Raman Data Using Multivariate Curve Resolution (MCR) Augmentation of Ordinary Least Squares Models

机译:使用普通最小二乘模型的多元曲线分辨率(MCR)增强对体内共聚焦拉曼数据进行改进的建模

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摘要

In vivo confocal Raman spectroscopy has become the measurement technique of choice for skin health and skin care related communities as a way of measuring functional chemistry aspects of skin that are key indicators for care and treatment of various skin conditions. Chief among these techniques are stratum corneum water content, a critical health indicator for severe skin condition related to dryness, and natural moisturizing factor components that are associated with skin protection and barrier health. In addition, in vivo Raman spectroscopy has proven to be a rapid and effective method for quantifying component penetration in skin for topically applied skin care formulations. The benefit of such a capability is that noninvasive analytical chemistry can be performed in vivo in a clinical setting, significantly simplifying studies aimed at evaluating product performance. This presumes, however, that the data and analysis methods used are compatible and appropriate for the intended purpose. The standard analysis method used by most researchers for in vivo Raman data is ordinary least squares (OLS) regression. The focus of work described in this paper is the applicability of OLS for in vivo Raman analysis with particular attention given to use for non-ideal data that often violate the inherent limitations and deficiencies associated with proper application of OLS. We then describe a newly developed in vivo Raman spectroscopic analysis methodology called multivariate curve resolution-augmented ordinary least squares (MCR-OLS), a relatively simple route to addressing many of the issues with OLS. The method is compared with the standard OLS method using the same in vivo Raman data set and using both qualitative and quantitative comparisons based on model fit error, adherence to known data constraints, and performance against calibration samples. A clear improvement is shown in each comparison for MCR-OLS over standard OLS, thus supporting the premise that the MCR-OLS method is better suited for general-purpose multicomponent analysis of in vivo Raman spectral data. This suggests that the methodology is more readily adaptable to a wide range of component systems and is thus more generally applicable than standard OLS.
机译:体内共聚焦拉曼光谱法已经成为皮肤健康和与皮肤护理相关的社区的一种选择的测量技术,作为一种测量皮肤功能化学方面的方法,这些方面是护理和治疗各种皮肤状况的关键指标。这些技术中最主要的是角质层水含量,与干燥有关的严重皮肤状况的关键健康指标以及与皮肤保护和屏障健康相关的天然保湿因子成分。另外,体内拉曼光谱已被证明是定量用于局部施用的皮肤护理制剂的皮肤中组分渗透的快速且有效的方法。这种功能的好处在于,可以在临床环境中在体内进行非侵入性分析化学,从而大大简化了旨在评估产品性能的研究。但是,这假定所使用的数据和分析方法兼容并且适合于预期目的。大多数研究人员用于体内拉曼数据的标准分析方法是普通最小二乘(OLS)回归。本文描述的工作重点是OLS在体内拉曼分析中的适用性,尤其要注意用于非理想数据的使用,这些数据经常违反与OLS正确应用相关的固有局限性和缺陷。然后,我们描述一种新开发的体内拉曼光谱分析方法,称为多变量曲线分辨率增强的普通最小二乘(MCR-OLS),这是解决OLS的许多问题的相对简单的方法。该方法与使用相同体内拉曼数据集的标准OLS方法进行了比较,并基于模型拟合误差,对已知数据约束的依从性以及针对校准样品的性能,使用了定性和定量比较。与标准OLS相比,MCR-OLS的每次比较均显示了明显的改进,从而支持了MCR-OLS方法更适合于体内拉曼光谱数据的通用多组分分析的前提。这表明该方法更容易适应各种组件系统,因此比标准OLS更适用。

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