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A Model Based on Clusters of Similar Color and NIR to Estimate Oil Content of Single Olives

机译:一种基于类似颜色和NIR簇的模型来估算单橄榄油含量

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摘要

Lipid extraction using the traditional, destructive Soxhlet method is not able to measure oil content (OC) on a single olive. As the color and near infrared spectrum are key parameters to build an oil estimation model (EM), this study grouped olives with similar color and NIR for building EM of oil content obtained by Soxhlet from a cluster of similar olives. The objective was to estimate OC of individual olives, based on clusters of similar color and NIR in two seasons. This study was performed with Arbequina olives in 2016 and 2017. The descriptor of the cluster consisted of the three color channels of c1c2c3 color model plus 11 reflectance points between 1710 and 1735 nm of each olive, normalized with the Z-score index. Clusters of similar color and NIR spectrum were formed with the k-means++ algorithm, leaving a sufficient number of olives to perform the Soxhlet analysis of OC, as reference value of EM. The training of EM was based on Support Vector Machine. The test was performed with Leave One-Out Cross Validation in different training-testing combinations. The best EM predicted the OC with 6 and 13% deviation with respect to the real value when one season was tested with itself and with another season, respectively. The use of clustering in EM is discussed.
机译:使用传统的破坏性索氏法萃取脂质提取方法不能在单个橄榄中测量油含量(OC)。由于颜色和近红外光谱是构建石油估计模型(EM)的关键参数,这项研究将具有相似颜色和NIR的橄榄与来自类似橄榄簇通过SOXHLET获得的油含量的模拟。目标是基于两个赛季中类似颜色和德里尔的簇来估计单个橄榄的OC。本研究于2016年和2017年在Arbequina橄榄进行。群体的描述符由C1C2C3颜色模型的三种颜色通道组成,每个橄榄的1710和1735nm之间的11个反射点,与Z分数指数归一化。用K-Means ++算法形成类似颜色和NIR光谱的簇,留下足够数量的橄榄,以执行OC的SOXHLET分析,作为EM的参考值。 EM的培训基于支持向量机。在不同训练测试组合中留出一次性交叉验证进行该测试。最佳EM预测,当一个季节与另一个季节分别测试一个季节和另一个季节时,在实际价值方面偏离了6%和13%。讨论了在EM中使用聚类。

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