Nondestructive Detection of Moisture Content in Palm Oil by Using Portable Vibrational Spectroscopy and Optimal Prediction Algorithms.

IF 2.3 3区 化学 Q3 CHEMISTRY, ANALYTICAL Journal of Analytical Methods in Chemistry Pub Date : 2023-01-01 DOI:10.1155/2023/3364720
Ernest Teye, Charles L Y Amuah, Tai-Sheng Yeh, Regina Nyorkeh
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Abstract

Rapid and nondestructive measurement of moisture content in crude palm oil is essential for promoting the shelf-stability and quality. In this research, micro NIR spectrometer coupled with a multivariate calibration model was used to collect and analyse fingerprinted information from palm oil samples at different moisture contents. Several preprocessing methods such as standard normal variant (SNV), multiplicative scatter correction (MSC), Savitzky-Golay first derivative (SGD1), Savitzky-Golay second derivative (SGD2) together with partial least square (PLS) regression techniques, full PLS, interval PLS (iPLS), synergy interval PLS (SiPLS), genetic algorithm PLS (GAPLS), and successive projection algorithm PLS (SPA-PLS) were comparatively employed to construct an optimum quantitative prediction model for moisture content in crude palm oil. The models were evaluated according to the coefficient of determination and root mean square error in calibration (Rc and RMSEC) and prediction (Rp and RMSEC) set, respectively. The model SGD1 + SiPLS was the optimal novel algorithm obtained among the others with the performance of Rc = 0.968 and RMSEC = 0.468 in the calibration set and Rp = 0.956 and RMSEP = 0.361 in the prediction set. The results showed that rapid and nondestructive determination of moisture content in palm oil is feasible and this would go a long way to facilitating quality control of crude palm oil.

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便携式振动光谱和最优预测算法无损检测棕榈油中的水分含量。
快速、无损地测定粗棕榈油中的水分含量对提高其货架稳定性和质量至关重要。本研究采用微型近红外光谱仪结合多元校正模型,对不同含水率的棕榈油样品进行指纹信息采集和分析。几种预处理方法,如标准正态变(SNV),乘法散点校正(MSC), Savitzky-Golay一阶导数(SGD1), Savitzky-Golay二阶导数(SGD2),以及偏最小二乘(PLS)回归技术,全PLS,区间PLS (iPLS),协同区间PLS (SiPLS),遗传算法PLS (GAPLS),与逐次投影算法PLS (SPA-PLS)进行比较,构建了最优的棕榈油含水率定量预测模型。分别根据校正集(Rc和RMSEC)和预测集(Rp和RMSEC)的决定系数和均方根误差对模型进行评价。模型SGD1 + SiPLS是其中最优的新算法,在校准集的性能Rc = 0.968, RMSEC = 0.468,在预测集的性能Rp = 0.956, RMSEP = 0.361。结果表明,快速、无损地测定棕榈油中的水分含量是可行的,这将有助于对粗棕榈油的质量控制。
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来源期刊
Journal of Analytical Methods in Chemistry
Journal of Analytical Methods in Chemistry CHEMISTRY, ANALYTICAL-ENGINEERING, CIVIL
CiteScore
4.80
自引率
3.80%
发文量
79
审稿时长
6-12 weeks
期刊介绍: Journal of Analytical Methods in Chemistry publishes papers reporting methods and instrumentation for chemical analysis, and their application to real-world problems. Articles may be either practical or theoretical. Subject areas include (but are by no means limited to): Separation Spectroscopy Mass spectrometry Chromatography Analytical Sample Preparation Electrochemical analysis Hyphenated techniques Data processing As well as original research, Journal of Analytical Methods in Chemistry also publishes focused review articles that examine the state of the art, identify emerging trends, and suggest future directions for developing fields.
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