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- W3206524162 abstract "Traditional vine variety identification methods usually rely on the sampling of vine leaves followed by physical, physiological, biochemical and molecular measurement, which are destructive, time-consuming, labor-intensive and require experienced grape phenotype analysts. To mitigate these problems, this study aimed to develop an application (App) running on Android client to identify the wine grape automatically and in real-time, which can help the growers to quickly obtain the variety information. Experimental results showed that all Convolutional Neural Network (CNN) classification algorithms could achieve an accuracy of over 94% for twenty-one categories on validation data, which proves the feasibility of using transfer deep learning to identify grape species in field environments. In particular, the classification model with the highest average accuracy was GoogLeNet (99.91%) with a learning rate of 0.001, mini-batch size of 32 and maximum number of epochs in 80. Testing results of the App on Android devices also confirmed these results.Keywords: deep learning, mobile phone, grapevine cultivar, vine leaf image, identification, Vitis vinifera L.DOI: 10.25165/j.ijabe.20211405.6593Citation: Liu Y X, Shen L, Su J Y, Lu N, Fang Y L, Liu F, et al. Development of a mobile application for identification of grapevine (Vitis vinifera L.) cultivars via deep learning. Int J Agric & Biol Eng, 2021; 14(5): 172–179." @default.
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- W3206524162 date "2021-10-13" @default.
- W3206524162 modified "2023-09-27" @default.
- W3206524162 title "Development of a mobile application for identification of grapevine (Vitis vinifera L.) cultivars via deep learning" @default.
- W3206524162 doi "https://doi.org/10.25165/ijabe.v14i5.6593" @default.
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