Hyperspectral imaging technology for monitoring of moisture contents of dried persimmons during drying process

被引:0
|
作者
Jeong-Seok Cho
Ji-Young Choi
Kwang-Deog Moon
机构
[1] Agricultural Research Service,United States Department of Agriculture
[2] Kyungpook National University,Department of Food Science and Technology
来源
Food Science and Biotechnology | 2020年 / 29卷
关键词
Dried persimmons; Moisture content; Hyperspectral imaging; Partial least squares regression; Spectra pre-processing;
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中图分类号
学科分类号
摘要
The moisture content of persimmons during drying was monitored by hyperspectral imaging technology. All persimmons were dried using a hot-air dryer at 40 °C and divided into seven groups according to drying time: semi-dried persimmons (Cont), 1 day (DP-1), 2 days (DP-2), 3 days (DP-3), 4 days (DP-4), 5 days (DP-5), and 6 days (DP-6). Shortwave infrared hyperspectral spectra and moisture content of all persimmons were analyzed to develop a prediction model using partial least squares regression. There were obvious absorption bands: two at approximately 971 nm and 1452 nm were due to water absorption related to O–H stretching of the second and first overtones, respectively. The R-squared value of the optimal calibration model was 0.9673, and the accuracy of the moisture content measurement was 95%. These results indicate that hyperspectral imaging technology can be used to predict and monitor the moisture content of dried persimmons during drying.
引用
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页码:1407 / 1412
页数:5
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