2020
DOI: 10.1111/ijfs.14775
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Rapid screening of DON contamination in whole wheat meals by Vis/NIR spectroscopy and computer vision coupling technology

Abstract: This work developed an online experimental system and evaluated the feasibility of Vis/NIR spectroscopy‐computer vision coupling technology for rapid screening of DON contamination in whole wheat meals.

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Cited by 9 publications
(4 citation statements)
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“…Computer vision and NIR were combined to measure freshness of fish storage, and based on BP-ANN model, the discrimination rate achieved 93.33% . After that, computer vision has cooperated with NIR or FTIR (Fourier Transform Infrared) spectra, and with the assistance of PCA, PLS-DA, and SVM, breakthroughs were obtained. The results have proved that a combination of CV and NIR improved the performance by 13%, which was prominent …”
Section: Sensor Combinations For Solid Waste Sorting Systemsmentioning
confidence: 96%
“…Computer vision and NIR were combined to measure freshness of fish storage, and based on BP-ANN model, the discrimination rate achieved 93.33% . After that, computer vision has cooperated with NIR or FTIR (Fourier Transform Infrared) spectra, and with the assistance of PCA, PLS-DA, and SVM, breakthroughs were obtained. The results have proved that a combination of CV and NIR improved the performance by 13%, which was prominent …”
Section: Sensor Combinations For Solid Waste Sorting Systemsmentioning
confidence: 96%
“…Wheat Fungal infection, DON, ergosterol DR, NIT (Beyer et al, 2010;De Girolamo et al, 2014;De Girolamo et al, 2009;Delwiche, 2003;Delwiche & Hareland, 2004;Dowell et al, 1999;Dvořáček et al, 2012;Peiris et al, 2017;Pettersson & Åberg, 2003;Rasch et al, 2010;Shen et al, 2019;Siuda et al, 2008;B. Zhang et al, 2021) Corn Ergosterol, DON, FUMs , AFLA B 1 , ZEN DR (Berardo et al, 2005;Darnell et al, 2018;Della Riccia Giacomo, 2013;Falade et al, 2017;Fernández-Ibañez et al, 2009;Shen et al, 2022;Tao, Yao, Zhu, et al, 2019;Tyska et al, 2021) Barley Ergosterol, DON DR, NIT (Börjesson et al, 2007;Caramês et al, 2020;Fernández-Ibañez et al, 2009;Ruan et al, 2002) Rice (Li et al, 2019;S.…”
Section: Target Contaminants Spectral Acquisition Modes Referencementioning
confidence: 99%
“…Accurate quantitative prediction of ZEN and FUMs in corn and DON in barley using NIRS has been demonstrated (Caramês et al., 2020; Tyska et al., 2021). Methods aiming at the classification of high and low contaminated samples with an accuracy bigger than 90% include the prediction of DON in wheat and corn and OTA in wheat using NIRS and MIRS (De Girolamo, von Holst, et al., 2019; Öner et al., 2019; B. Zhang et al., 2021). Category B: Those methods fall into this category, which show good promise for routine analytical applications in the near future.…”
Section: Conclusion Trends and Outlookmentioning
confidence: 99%
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