首页> 外文期刊>Forest Products Journal >Predicting moisture content of yellow-poplar (Liriodendron tulipifera L.) veneer using near infrared spectroscopy.
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Predicting moisture content of yellow-poplar (Liriodendron tulipifera L.) veneer using near infrared spectroscopy.

机译:使用近红外光谱法预测黄杨单板(Liriodendron tulipifera L.)单板的水分含量。

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摘要

On-line measurement of the moisture content (MC) of veneer sheets is paramount to process control in the veneer-based panel and engineered wood products industry. This study examined the feasibility of using near infrared (NIR) spectroscopy (800 to 2400 nm) combined with multivariate data analysis to predict MC of yellow-poplar veneer sheets. Multivariate data analysis employing principal component regression (PCR) and partial least squares regression (PLS1) analysis techniques indicated clustering of veneer samples of the same or close MC range with a clear distinction between samples of low and high MC. Both PCR and PLS1 veneer MC predictive models had correlations (R2) greater than 0.94. The spectra window, 1400 to 1900 nm, between the two moisture peaks (1450 and 1930 nm) gave correlation coefficients (R2) of 0.985 and 0.986 for PCR and PLS1, respectively. There is no clear distinction between the PCR and PLS1 models developed using the NIR spectra region of 1400 to 1940 nm. However, the PLS1 models with lower root mean square error of prediction (RMSEP), standard error of prediction (SEP) and Bias were better when compared to the PCR models developed using the whole NIR spectra region and restricted NIR spectra region not associated with the hydroxyl band.
机译:单板的水分含量(MC)的在线测量对于单板板和人造木制品行业的过程控制至关重要。这项研究检验了使用近红外(NIR)光谱(800至2400 nm)结合多元数据分析来预测黄杨单板的MC的可行性。使用主成分回归(PCR)和偏最小二乘回归(PLS1)分析技术进行的多变量数据分析表明,相同或接近MC范围的单板样本聚类,在低MC和高MC样本之间存在明显区别。 PCR和PLS1单板MC预测模型的相关性(R2)均大于0.94。两个水分峰(1450和1930 nm)之间的光谱窗口(1400至1900 nm)给出的PCR和PLS1的相关系数(R2)分别为0.985和0.986。使用1400至1940 nm的NIR光谱区域开发的PCR和PLS1模型之间没有明显区别。但是,与使用整个NIR光谱区域和受限NIR光谱区域不相关的PCR模型相比,具有较低的均方根预测误差(RMSEP),标准预测误差(SEP)和偏倚的PLS1模型更好。羟基带。

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