An improved DCGAN model: Data augmentation of hyperspectral image for identification pesticide residues of Hami melon

被引:14
|
作者
Tan, Haibo [1 ]
Hu, Yating [1 ]
Ma, Benxue [1 ,2 ]
Yu, Guowei [1 ]
Li, Yujie [1 ]
机构
[1] Shihezi Univ, Coll Mech & Elect Engn, Shihezi 832003, Peoples R China
[2] Minist Agr & Rural Affairs, Key Lab Northwest Agr Equipment, Shihezi 832003, Peoples R China
关键词
Hyperspectral imaging; Deep convolutional generative adversarial; networks; Data augmentation; Hami melon; Pesticide residues; MACHINE;
D O I
10.1016/j.foodcont.2023.110168
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
The increasing concern over pesticide residues on Hami melon is due to the unregulated use of pesticides, which poses a potential food safety hazard. Thus, it is urgent to propose a method for the rapid and nondestructive detection of pesticide residues on the Hami melon. This study used short-wave infrared hyperspectral imaging (SWIR-HSI) to identify pesticide residues on the Hami melon. The data augmentation method based on improved deep convolutional generative adversarial networks (DCGAN) was proposed to expand Hami melon's spectral data with different pesticide residues. To determine the optimal training epoch, the 1-nearest neighbor (1-NN) classifier was used to evaluate the quality of the generated spectra. The effectiveness of the improved DCGAN was verified by three commonly used classifiers, including the decision tree (DT), random forest (RF), and support vector machine (SVM). The results showed that the performance of all three classifiers was improved to varying degrees by the improved DCGAN. The DT, RF, and SVM accuracy was improved by 13.13%, 7.50%, and 11.25%, respectively. Moreover, the SVM model achieved the highest accuracy of 93.13%. These findings indicated that the combination of SWIR-HSI and the improved DCGAN-based data augmentation method has good promise for detecting pesticide residues on Hami melon.
引用
收藏
页数:9
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