Implementation of Plant Leaf Disease Detection using K-means clustering and Neural Networks
Abstract & Details
Research Area
Electronics and Communication Engineering
Keywords
Leaf
K-means clustering and Neural Networks
RGB
HIS
etc.
Abstract
Plants exist all over the place; we live, as well as places without us. Plant disease is one of the essential causes that reduces quantity and degrades quality of the agricultural merchandises. Plant diseases have turned into a terrible as it can cause significant reduction in both quality and quantity of agricultural products. Images form important data and information in biological sciences. Until recently photography was the only method to reproduce and report such data. It is difficult to quantify or treat the photographic data mathematically. This project, classifies the plant leaves and stems at hand into infected and non-infected classes. The developing software provides a fast and accurate method in which the leaf diseases are detected and classified using k-means based segmentation and neural networks-based classification. Most common diseases seen in the leaves of Tapioca and Mango are discussed here for this approach. In this paper, respectively, the applications of K-means clustering and Neural Networks (NNs) have been formulated for clustering and classification of diseases that effect on plant leaves. Recognizing the disease is mainly the purpose of the proposed approach. Thus, the proposed Algorithm was tested on five diseases which influence on the plants; they are: Early scorch, Cottony mold, ashen mold, late scorch, tiny whiteness. The experimental results indicate that the proposed approach is a valuable approach, which can significantly support an accurate detection of leaf diseases in a little computational effort. This project gives 95% of efficiency using MATLAB simulation results.
License
This work is licensed under a Creative
Commons
Attribution-ShareAlike 4.0 International License.
Author Information
| # | Name | Institute / Affiliation |
|---|---|---|
| 1 | Aishwarya P R | Akshaya institute of technology, Tumakuru |
| 2 | Dr.Varadaraju H R | Akshaya institute of technology, Tumakuru |
| 3 | Bharathi N | Akshaya institute of technology, Tumakuru |
How to Cite
Use the following formats to cite this article in your research.
APA Style
R, Aishwarya P, R, Dr.Varadaraju H, & N, Bharathi (2023). Implementation of Plant Leaf Disease Detection using K-means clustering and Neural Networks. International Journal of Advance Research and Innovative Ideas In Education, 9(4), 2469-2477.
MLA Style
R, Aishwarya P, et al. "Implementation of Plant Leaf Disease Detection using K-means clustering and Neural Networks." International Journal of Advance Research and Innovative Ideas In Education, vol. 9, no. 4, 2023, pp. 2469-2477.
IEEE Style
Aishwarya P R, Dr.Varadaraju H R, and Bharathi N, "Implementation of Plant Leaf Disease Detection using K-means clustering and Neural Networks," International Journal of Advance Research and Innovative Ideas In Education, vol. 9, no. 4, pp. 2469-2477, 2023.
Vancouver Style
R Aishwarya P, R Dr.Varadaraju H, N Bharathi. Implementation of Plant Leaf Disease Detection using K-means clustering and Neural Networks. International Journal of Advance Research and Innovative Ideas In Education. 2023;9(4):2469-2477.
Harvard Style
R, Aishwarya P, R, Dr.Varadaraju H, & N, Bharathi (2023) 'Implementation of Plant Leaf Disease Detection using K-means clustering and Neural Networks', International Journal of Advance Research and Innovative Ideas In Education, 9(4), pp. 2469-2477.
Chicago Style
R, Aishwarya P, Dr.Varadaraju H R, and Bharathi N. "Implementation of Plant Leaf Disease Detection using K-means clustering and Neural Networks." International Journal of Advance Research and Innovative Ideas In Education 9, no. 4 (2023): 2469-2477.
Turabian Style
R, Aishwarya P, Dr.Varadaraju H R, and Bharathi N. "Implementation of Plant Leaf Disease Detection using K-means clustering and Neural Networks." International Journal of Advance Research and Innovative Ideas In Education 9, no. 4 (2023): 2469-2477.
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