IoT based Soyabean Pest Classification using Transfer Learning and Explainable AI

被引:0
|
作者
Supsup, Soham Vyas [1 ]
Supsup, Gunjan Thakur [2 ]
Supsup, Rajeev Gupta [1 ]
Mehta, Honey [1 ]
机构
[1] Pandit Deendayal Energy Univ, Dept CSE, SOT, Gandhinagar, India
[2] Pandit Deendayal Energy Univ, Dept ICT, SOT, Gandhinagar, India
关键词
IoT (Internet of Things); Deep Learning; Explainable AI; Feature Space Exploration;
D O I
10.1109/CONECCT62155.2024.10677291
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Soybean crops face significant susceptibility to pests like red hair caterpillars, leading to diminished crop yield and an overall reduction in crop quality. With this perspective, our work aims to provide a lightweight model powered by Artificial Intelligence (AI) that assists farmers in real-time identification and classification of target insects on selected crops (soybean). In this paper a model has been proposed with the Inception-ResNet-V2 framework, which showed respectable performance (99.54% validation accuracy and 0.0103 validation loss). Under an agreement between IIIT-Naya Raipur (C.G.) and Indira Gandhi Krishi Vishwavidyalaya, Raipur, the dataset (3809 images) comprising the Eocanthecona Bug, Tobacco Caterpillar, Red Hairy Caterpillar, and Larva Spodoptera was used for comparative study in the proposed model. The proposed work is found appropriate for research purposes because it uses Explainable AI (Artificial Intelligence) to validate the classification process. The proposed model is also integrated and implemented with the on-board Raspberry Pi, making it more interactive and useful in the agricultural domain.
引用
收藏
页数:6
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