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Inicio  /  Agronomy  /  Vol: 14 Par: 4 (2024)  /  Artículo
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Research on Soil Pesticide Residue Detection Using an Electronic Nose Based on Hybrid Models

Jianlei Qiao    
Yonglu Lv    
Yucai Feng    
Chang Liu    
Yi Zhang    
Jinying Li    
Shuang Liu and Xiaohui Weng    

Resumen

At present, the electronic nose has became a new technology for the rapid detection of pesticides. However, the technique may misidentify them for samples that have not been involved in training. Therefore, a hybrid model based on unsupervised and supervised learning was proposed for the first time in this paper. The model divided the detection process of soil pesticide residues into two steps: (1) an unsupervised machine learning method was used to identify whether the soil was contaminated with pesticides; (2) when the soil was contaminated with pesticides, a supervised classifier was further used to predict the types of pesticides in the soil. The experimental results showed that the model had a recognition accuracy of 99.3% and 99.27% for whether the soil was contaminated with pesticides and the pesticide type of the contaminated soil, respectively, with a detection time of 0.03 s. The results revealed that the proposed hybrid model can quickly and comprehensively reflect the soil information?s status.

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