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联合和独特的多块分析用于近红外仪器的集成和校准传递。

Joint and Unique Multiblock Analysis for Integration and Calibration Transfer of NIR Instruments.

机构信息

Computational Life Science Cluster (CLiC), Department of Chemistry , Umeå University , 901 81 Umeå , Sweden.

Department of Forest Biomaterials and Technology , Swedish University of Agricultural Sciences , 901 83 Umeå , Sweden.

出版信息

Anal Chem. 2019 Mar 5;91(5):3516-3524. doi: 10.1021/acs.analchem.8b05188. Epub 2019 Feb 21.

Abstract

In the present paper, we introduce an end-to-end workflow called joint and unique multiblock analysis (JUMBA), which allows multiple sources of data to be analyzed simultaneously to better understand how they complement each other. In near-infrared (NIR) spectroscopy, calibration models between NIR spectra and responses are used to replace wet-chemistry methods, and the models tend to be instrument-specific. Calibration-transfer techniques are used for standardization of NIR-instrumentation, enabling the use of one model on several instruments. The current paper investigates both the similarities and differences among a variety of NIR instruments using JUMBA. We demonstrate JUMBA on both a previously unpublished data set in which five NIR instruments measured mushroom substrate and a publicly available data set measured on corn samples. We found that NIR spectra from different instrumentation largely shared the same underlying structures, an insight we took advantage of to perform calibration transfer. The proposed JUMBA transfer displayed excellent calibration-transfer performance across the two analyzed data sets and outperformed existing methods in terms of both prediction accuracy and stability. When applied to a multi-instrument environment, JUMBA transfer can integrate all instruments in the same model and will ensure higher consistency among them compared with existing calibration-transfer methods.

摘要

在本文中,我们引入了一种端到端的工作流程,称为联合和独特的多块分析(JUMBA),它允许同时分析多个数据源,以更好地了解它们如何相互补充。在近红外(NIR)光谱学中,NIR 光谱和响应之间的校准模型用于替代湿法化学方法,并且模型往往是特定于仪器的。校准传递技术用于 NIR 仪器的标准化,使一个模型能够在多个仪器上使用。本文使用 JUMBA 研究了各种 NIR 仪器之间的相似性和差异性。我们在五个 NIR 仪器测量蘑菇基质的未发表数据集和一个公开可用的玉米样本数据集上演示了 JUMBA。我们发现,来自不同仪器的 NIR 光谱在很大程度上共享相同的底层结构,我们利用这一见解来进行校准传递。所提出的 JUMBA 转移在两个分析数据集上都表现出了出色的校准转移性能,在预测准确性和稳定性方面都优于现有方法。当应用于多仪器环境时,JUMBA 转移可以将所有仪器集成到同一个模型中,并确保它们之间的一致性更高,与现有校准转移方法相比。

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