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Informatics and Automation, 2022, Issue 21, volume 4, Pages 710–728
DOI: https://doi.org/10.15622/ia.21.4.3
(Mi trspy1206)
 

This article is cited in 10 scientific papers (total in 10 papers)

Artificial Intelligence, Knowledge and Data Engineering

Apple leaf disease classification using image dataset: a multilayer convolutional neural network approach

A. Mahamudul Hashan, R. Md Rakib Ul Islam, K. Avinash

Ural Federal University (UrFU)
Abstract: Agriculture is one of the prime sources of economic growth in Russia; the global apple production in 2019 was 87 million tons. Apple leaf diseases are the main reason for annual decreases in apple production, which creates huge economic losses. Automated methods for detecting apple leaf diseases are beneficial in reducing the laborious work of monitoring apple gardens and early detection of disease symptoms. This article proposes a multilayer convolutional neural network (MCNN), which is able to classify apple leaves into one of the following categories: apple scab, black rot, and apple cedar rust diseases using a newly created dataset. In this method, we used affine transformation and perspective transformation techniques to increase the size of the dataset. After that, OpenCV crop and histogram equalization method-based preprocessing operations were used to improve the proposed image dataset. The experimental results show that the system achieves 98.40
Keywords: artificial intelligence, apple leaf disease, image processing, multilayer convolutional neural network, classification.
Received: 21.04.2022
Document Type: Article
UDC: 004.056
Language: English
Citation: A. Mahamudul Hashan, R. Md Rakib Ul Islam, K. Avinash, “Apple leaf disease classification using image dataset: a multilayer convolutional neural network approach”, Informatics and Automation, 21:4 (2022), 710–728
Citation in format AMSBIB
\Bibitem{MahMd Avi22}
\by A.~Mahamudul Hashan, R.~Md Rakib Ul Islam, K.~Avinash
\paper Apple leaf disease classification using image dataset: a multilayer convolutional neural network approach
\jour Informatics and Automation
\yr 2022
\vol 21
\issue 4
\pages 710--728
\mathnet{http://mi.mathnet.ru/trspy1206}
\crossref{https://doi.org/10.15622/ia.21.4.3}
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  • This publication is cited in the following 10 articles:
    Citing articles in Google Scholar: Russian citations, English citations
    Related articles in Google Scholar: Russian articles, English articles
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