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Classification of multi-year and multi-variety pumpkin seeds using hyperspectral imaging technology and three-dimensional convolutional neural network

文献类型: 外文期刊

作者: Li, Xiyao 1 ; Feng, Xuping 2 ; Fang, Hui 1 ; Yang, Ningyuan 1 ; Yang, Guofeng 1 ; Yu, Zeyu 1 ; Shen, Jia 3 ; Geng, Wei 3 ; He, Yong 1 ;

作者机构: 1.Zhejiang Univ, Coll Biosyst Engn & Food Sci, Hangzhou 310058, Peoples R China

2.Zhejiang Univ, Rural Dev Acad, Hangzhou 310058, Peoples R China

3.Zhejiang Acad Agr Sci, Inst Vegetables, Hangzhou 310000, Peoples R China

关键词: Classification; Seed; Hyperspectral imaging; Deep learning

期刊名称:PLANT METHODS ( 影响因子:5.1; 五年影响因子:6.1 )

ISSN:

年卷期: 2023 年 19 卷 1 期

页码:

收录情况: SCI

摘要: BackgroundPumpkin seeds are major oil crops with high nutritional value and high oil content. The collection and identification of different pumpkin germplasm resources play a significant role in the realization of precision breeding and variety improvement. In this research, we collected 75 species of pumpkin from the Zhejiang Province of China. 35,927 near-infrared hyperspectral images of 75 types of pumpkin seeds were used as the research object.ResultsTo realize the rapid classification of pumpkin seed varieties, position attention embedded three-dimensional convolutional neural network (PA-3DCNN) was designed based on hyperspectral image technology. The experimental results showed that PA-3DCNN had the best classification effect than other classical machine learning technology. The classification accuracy of 99.14% and 95.20% were severally reached on the training and test sets. We also demonstrated that the PA-3DCNN model performed well in next year's classification with fine-tuning and met with 94.8% accuracy.ConclusionsThe model performance improved by introducing double convolution and pooling structure and position attention module. Meanwhile, the generalization performance of the model was verified, which can be adopted for the classification of pumpkin seeds in multiple years. This study provided a new strategy and a feasible technical approach for identifying germplasm resources of pumpkin seeds.

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