At-line Prediction of Gelatinized Starch and Fiber Fractions in Extruded Dry Dog Food Using Different Near-Infrared Spectroscopy Technologies

利用不同近红外光谱技术在线预测挤压干狗粮中糊化淀粉和纤维组分

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Abstract

This study aimed to assess the feasibility of visible/near-infrared reflectance (Vis-NIR) and near-infrared transmittance (NIT) spectroscopy to predict total and gelatinized starch and fiber fractions in extruded dry dog food. Reference laboratory analyses were performed on 81 samples, and the spectrum of each ground sample was obtained through Vis-NIR and NIT spectrometers. Prediction equations for each instrument were developed by modified partial least squares regressions and validated by cross- (CrV) and external validation (ExV) procedures. All studied traits were better predicted by Vis-NIR than NIT spectroscopy. With Vis-NIR, excellent prediction models were obtained for total starch (residual predictive deviation; RPD(CrV) = 6.33; RPD(ExV) = 4.43), gelatinized starch (RPD(CrV) = 4.62; RPD(ExV) = 4.36), neutral detergent fiber (NDF; RPD(CrV) = 3.93; RPD(ExV) = 4.31), and acid detergent fiber (ADF; RPD(CrV) = 5.80; RPD(ExV) = 5.67). With NIT, RPD(CrV) ranged from 1.75 (ADF) to 2.61 (acid detergent lignin, ADL) and RPD(ExV) from 1.71 (ADL) to 2.16 (total starch). In conclusion, results of the present study demonstrated the feasibility of at-line Vis-NIR spectroscopy in predicting total and gelatinized starch, NDF, and ADF, with lower accuracy for ADL, whereas results do not support the applicability of NIT spectroscopy to predict those traits.

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