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Assessment of internal flesh browning in intact apple using visible-short wave near infrared spectroscopy

机译:可见-短波近红外光谱法对完整苹果内部果肉褐变的评估

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Certain cultivars of apple are prone to an internal flesh browning defect following extended controlled atmosphere storage. A number of (destructive) reference methods were assessed for scoring the severity of this defect in a fruit, including visual assessment, image analysis (% cross section area affected), International Commission on Illumination (CIE) chromameter Lab values of a cut surface and juice Abs(420), of which visual scoring on a 5 point scale and a colour index based on CIE Lab were recommended. Noninvasive detection of this disorder using three instruments operating in the visible-shortwave near infrared (NIR) but varying in optical geometry (interactance, partial transmission and full transmission) was attempted. Quantitative prediction of defect level was best assessed using visible-shortwave NIRS in a transmission optical geometry, with a typical partial least squares (PLS) regression model with correlation coefficient of determination, R-p(2) = 0.83 and root mean square of errors of prediction = 0.63 (5 point defect score scale). The binary classification approaches of linear discriminant analysis, PLS discriminant analysis, support vector machine approach and logistic regression were trialled for separation of acceptable fruit, with the best result achieved using the PLS discriminant analysis method, followed by linear discriminant analysis and support vector machine classification. Classification accuracy [(True Positive + True Negative)/(Positive + Negative)] on an independent validation population of > 95% and a false discovery rate [False Positive/(True Positive + False Positive)] of 2% was achieved. (C) 2016 Elsevier B.V. All rights reserved.
机译:某些苹果品种在延长的可控气氛储存后,容易出现内部果肉褐变的缺陷。评估了许多(破坏性)参考方法以评估水果中该缺陷的严重程度,包括视觉评估,图像分析(受影响的横截面积百分比),国际照明委员会(CIE)色度计的切面实验室值和建议使用Abs(420)果汁,其中5分制的视觉评分和基于CIE Lab的颜色指数。尝试使用在可见短波近红外(NIR)中运行但光学几何形状有所变化(相互作用,部分透射和完全透射)的三种仪器进行无创检测。缺陷水平的定量预测最好在透射光学几何中使用可见-短波NIRS进行评估,该模型具有典型的偏最小二乘(PLS)回归模型,其相关系数为Rp(2)= 0.83,预测误差的均方根= 0.63(5分缺陷评分量表)。尝试使用线性判别分析,PLS判别分析,支持向量机方法和逻辑回归的二元分类方法来分离可接受的水果,使用PLS判别分析方法获得最佳结果,然后进行线性判别分析和支持向量机分类。在> 95%的独立验证群体上实现的分类准确度[(正阳性+负阴性)/(正阳性+负)]和<2%的错误发现率[假阳性/(正阳性+假阳性)]。 (C)2016 Elsevier B.V.保留所有权利。

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