Citrus Huanglongbing Recognition Algorithm Based on CKMOPSO
Hui Wang,
Tie Cai and
Wei Cao
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Hui Wang: Shenzhen Institute of Information Technology, Shenzhen, China
Tie Cai: Shenzhen Institute of Information and Technology, Shenzhen, China
Wei Cao: Shenzhen Institute of Information Technology, Shenzhen, China
International Journal of Cognitive Informatics and Natural Intelligence (IJCINI), 2021, vol. 15, issue 4, 1-11
Abstract:
In view of the similarity of characteristics between the features of the disease images and the large dimension, and the features correlation of the disease images, this will lead to the generation of feature redundancy, and will introduce a serious impact on the recognition efficiency and accuracy of citrus Huanglongbing. In addition, they have the defects of high cost of detection algorithms and low detection accuracy. This will occur in the image cutting feature extraction stage, so this paper uses the citrus Huanglongbing recognition algorithm based on kriging model simplex crossover local based search Multi-objective particle swarm optimization algorithm(CKMOPSO) selects feature vectors with strong classification capabilities from the original disease image features, experimental results show that this is an effective recognition method.
Date: 2021
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Persistent link: https://EconPapers.repec.org/RePEc:igg:jcini0:v:15:y:2021:i:4:p:1-11
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