首页> 外文期刊>Biosystems Engineering >Evaluation of common pre-processing approaches for visible (VIS) and shortwave near infrared (SWNIR) spectroscopy in soluble solids content (SSC) assessment.
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Evaluation of common pre-processing approaches for visible (VIS) and shortwave near infrared (SWNIR) spectroscopy in soluble solids content (SSC) assessment.

机译:评估可见光(VIS)和短波近红外(SWNIR)光谱中常用的预处理方法的可溶性固体含量(SSC)评估。

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摘要

The number of visible (VIS) and shortwave near infrared (SWNIR) spectroscopic applications in fruit internal quality has grown rapidly in the last decade. Despite this widespread application, pre-processed spectral data used is often not well understood. The aims of this paper are (i) to compare the use of SWNIR and VIS-SWNIR spectral data, (ii) to investigate the effect of different Savitzky-Golay (SG) derivatives (i.e. zero order, first order and second order derivatives) with different filter length, and (iii) to evaluate the use of log (1/R) transformation in the soluble solids content (SSC) assessment via Monte Carlo cross-validation (MCCV). Findings indicate that a parsimonious principal component regression (PCR) with four principal components achieved the best accuracy (i.e. root mean square error of cross-validation (RMSECV)=0.81 degrees Brix and rcv=0.75) when (i) visible spectrum was excluded, (ii) second order SG derivative with the optimal filter length was used, and (iii) the log (1/R) transformation was avoided.
机译:在过去十年中,可见光(VIS)和短波近红外(SWNIR)光谱在水果内部质量中的应用数量迅速增长。尽管应用广泛,但对使用的预处理光谱数据通常还是不太了解。本文的目的是(i)比较SWNIR和VIS-SWNIR光谱数据的使用,(ii)研究不同Savitzky-Golay(SG)导数(即零阶,一阶和二阶导数)的影响(iii)通过Monte Carlo交叉验证(MCCV)评估对数(1 / R)转换在可溶性固形物(SSC)评估中的使用。研究结果表明,当具有四个主成分的简约主成分回归(PCR)达到最佳准确性时(即交叉验证的均方根误差(RMSECV)= 0.81度白利糖度和r cv = 0.75) (i)排除可见光谱,(ii)使用具有最佳滤波器长度的二阶SG导数,并且(iii)避免了log(1 / R)变换。

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