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Fast Determination of Lycopene Content and Soluble Solid Content of Cherry Tomatoes Using Metal Oxide Sensors Based Electronic Nose

机译:基于金属氧化物传感器的电子鼻快速测定番茄西红柿中番茄红素和可溶性固形物含量

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摘要

Lycopene content (LC) and soluble solid content (SSC) are important quality indicators for cherry tomatoes. This study attempted simultaneous analysis of inner quality of cherry tomato by Electronic nose (E-nose) using multivariate analysis. E-nose was used for data acquisition, the response signals were regressed by multiple linear regression (MLR) and partial least square regression (PLS) to build predictive models. The performances of the predictive models were tested according to root mean square and correlation coefficient (R) in the training set and prediction set. The results showed that MLR models were superior to PLS model, with higher value of R and lower values of for RMSE firmness, pH, SSC, and LC. Together with MLR, E-nose could be used to obtain firmness, pH, soluble solid and lycopene contents in cherry tomatoes.
机译:番茄红素含量(LC)和可溶性固形物含量(SSC)是樱桃番茄的重要质量指标。这项研究尝试使用多元分析通过电子鼻(E型鼻)同时分析樱桃番茄的内部质量。使用电子鼻进行数据采集,通过多元线性回归(MLR)和偏最小二乘回归(PLS)对响应信号进行回归,以建立预测模型。根据训练集和预测集中的均方根和相关系数(R)来测试预测模型的性能。结果表明,MLR模型优于PLS模型,RSE值,RMSE硬度,pH,SSC和LC的R值较高,而L值较低。 E-nose与MLR一起可用于获得樱桃番茄中的硬度,pH,可溶性固形物和番茄红素含量。

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