Near Infrared Hyperspectral Imaging in Transmission Mode: Assessing the Weathering of Thin Wood Samples

IF 1.9 4区 化学 Q3 CHEMISTRY, APPLIED Journal of Near Infrared Spectroscopy Pub Date : 2016-12-01 DOI:10.1255/jnirs.1253
Knut Arne Smeland, K. H. Liland, J. Sandak, A. Sandak, L. R. Gobakken, T. Thiis, I. Burud
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引用次数: 15

Abstract

Untreated wooden surfaces degrade when exposed to natural weathering. In this study thin wood samples were studied for weather degradation effects utilising a hyperspectral camera in the near infrared wavelength range in transmission mode. Several sets of samples were exposed outdoors for time intervals from 0 days to 21 days, and one set of samples was exposed to ultraviolet (UV) radiation in a laboratory chamber. Spectra of earlywood and latewood were extracted from the hyperspectral image cubes using a principal component analysis-based masking algorithm. The degradation was modelled as a function of UV solar radiation with four regression techniques, partial least squares, principal component regression, Ridge regression and Tikhonov regression. It was found that all the techniques yielded robust prediction models on this dataset. The result from the study is a first step towards a weather dose model determined by temperature and moisture content on the wooden surface in addition to the solar radiation.
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近红外高光谱成像在传输模式:评估薄木材样品的风化
未经处理的木质表面暴露在自然风化下会退化。在本研究中,利用近红外波长范围的高光谱相机在透射模式下研究了薄木材样品的天气退化效应。几组样品在室外暴露0天至21天的时间间隔,其中一组样品在实验室室内暴露于紫外线(UV)辐射下。采用基于主成分分析的掩蔽算法,从高光谱图像立方体中提取了早期和晚期木材的光谱。利用偏最小二乘回归、主成分回归、Ridge回归和Tikhonov回归等4种回归技术对土壤的退化进行建模。研究发现,所有的技术都在这个数据集上产生了稳健的预测模型。这项研究的结果是向天气剂量模型迈出的第一步,该模型由木材表面的温度和水分含量以及太阳辐射决定。
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来源期刊
CiteScore
3.30
自引率
5.60%
发文量
35
审稿时长
6 months
期刊介绍: JNIRS — Journal of Near Infrared Spectroscopy is a peer reviewed journal, publishing original research papers, short communications, review articles and letters concerned with near infrared spectroscopy and technology, its application, new instrumentation and the use of chemometric and data handling techniques within NIR.
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