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首页> 外文期刊>Food and Bioproducts Processing. Transactions of the Institution of Chemical Engineers, Part C >Developing hyperspectral prediction model for investigating dehydrating and rehydrating mass changes of vacuum freeze dried grass carp fillets
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Developing hyperspectral prediction model for investigating dehydrating and rehydrating mass changes of vacuum freeze dried grass carp fillets

机译:开发高光谱预测模型,用于研究真空冻干草鲤鱼鱼片的脱水和再水化块状变化

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摘要

Vacuum freeze drying is a technique for producing dried food products with superior quality. The current study used Vis-NIR (400-1000 nm) hyperspectral imaging in tandem with chemometric analysis to investigate dehydrating and rehydrating mass changes of vacuum freeze dried grass carp fillets (Ctenopharyngodon idella). Mean, median and mode spectra of grass carp fillet samples were extracted and compared to build the best partial least squares regression (PLSR) model for predicting the sample dehydrating mass loss percentage and rehydrating mass gain percentage, together with spectral pre-treatments including multiplicative scatter correction (MSC), standard normal variate (SNV) and Savitzky-Golay (SG) smoothing. The effects of spectral pre-treatments and selection of wavelengths on the performance of the developed PLSR models were evaluated, and the PLSR model based on simplified mean spectra pre-treated by SG-smoothing (dehydration: R-P(2)=0.9325, RMSEP =5.34%; rehydration: R-P(2) = 0.8278, RMSEP =9.79%) was determined as the best prediction model, which was finally used to develop pixel wise visualization of the values of mass loss and gain percentages within the samples. (C) 2017 Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
机译:真空冷冻干燥是一种生产具有优质品质的干食品的技术。目前研究使用Vis-nir(400-1000nm)高光谱成像与化学计量分析,研究真空冷冻干草鲤鱼圆角的脱水和再水化质量变化(Ctenopharyngodon idella)。提取草鲤鱼叶片样品的平均值,中值和模式光谱,并与构建最佳的局部最小二乘回归(PLSR)模型,用于预测样品脱水质量损失百分比和再水化质量增加百分比,以及包括乘法散射的光谱预处理校正(MSC),标准正常变化(SNV)和Savitzky-Golay(SG)平滑。评估光谱预处理和波长选择对发育PLSR模型的性能的影响,并基于通过SG平滑预处理的简化平均光谱的PLSR模型(脱水:RP(2)= 0.9325,RMSEP = 5.34%;再水解:RP(2)= 0.8278,RMSEP = 9.79%)被确定为最佳预测模型,最终用于开发质量损失值的像素明智的可视化和样品内的增益百分比。 (c)2017年化学工程师机构。 elsevier b.v出版。保留所有权利。

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