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Hyperspectral Imaging Coupled with Random Frog and Calibration Models for Assessment of Total Soluble Solids in Mulberries

机译:高光谱成像结合随机青蛙和校准模型评估桑Mul中的总可溶性固形物

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摘要

Chemometrics methods coupled with hyperspectral imaging technology in visible and near infrared (Vis/NIR) region (380–1030 nm) were introduced to assess total soluble solids (TSS) in mulberries. Hyperspectral images of 310 mulberries were acquired by hyperspectral reflectance imaging system (512 bands) and their corresponding TSS contents were measured by a Brix meter. Random frog (RF) method was used to select important wavelengths from the full wavelengths. TSS values in mulberry fruits were predicted by partial least squares regression (PLSR) and least-square support vector machine (LS-SVM) models based on full wavelengths and the selected important wavelengths. The optimal PLSR model with 23 important wavelengths was employed to visualise the spatial distribution of TSS in tested samples, and TSS concentrations in mulberries were revealed through the TSS spatial distribution. The results declared that hyperspectral imaging is promising for determining the spatial distribution of TSS content in mulberry fruits, which provides a reference for detecting the internal quality of fruits.
机译:引入了化学计量学方法和可见光和近红外(Vis / NIR)(380-1030nm)区域中的高光谱成像技术,以评估桑berries中的总可溶性固形物(TSS)。通过高光谱反射成像系统(512个波段)采集了310个桑树的高光谱图像,并用白利糖度计测量了其对应的TSS含量。随机青蛙(RF)方法用于从全波长中选择重要的波长。桑树果实中的TSS值是通过基于全波长和所选重要波长的偏最小二乘回归(PLSR)和最小二乘支持向量机(LS-SVM)模型预测的。采用具有23个重要波长的最优PLSR模型来可视化被测样品中TSS的空间分布,并通过TSS空间分布揭示桑树中TSS的浓度。结果表明,高光谱成像有望确定桑树果实中TSS含量的空间分布,为检测果实内部质量提供参考。

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