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An efficient segmentation using adaptive radial basis function neural network for tomato and mango plant leaf images

Smitha, Jolakula AsokaShadaksharappa, BichagalParvathy, SheelaVeena, KilingarJenifer, AlbertNirmala, Baddala VijayaMurugan, Subbiah
Indonesian Journal of Electrical Engineering and Computer Science (Sinta 1)Vol. 39 No. 1 (2025)1 Juli 2025
DOI10.11591/ijeecs.v39.i1.pp202-213

Abstrak

Agriculture has become simply to feed ever-growing populations. The tomato is arguably the most well-known vegetable in agricultural areas and plays a significant role in the growth of vegetables in our daily lives. However, because this tomato has multiple diseases, image segmentation of the diseased leaf shows a key role in classifying the disease by the leaf's symptoms. Therefore, in this paper, an efficient plant disease segmentation using an adaptive radial basis function neural network (ARBFNN) classifier. The proposed radial basis function (RBF) neural network is enhanced by using the flower pollination algorithm (FPA). Firstly, the noise is detached by an adaptive median filter and histogram equalization. Then, from every leaf image, different kind of color features is extracted. After the extraction of features, those are fed to the segmentation phase to section the disease serving from the input image. The efficiency of the suggested method is analyzed based on various metrics and our technique attained a better accuracy of 97.58%.

Kata Kunci

Color featureFlower pollination algorithmPlant diseaseRadial basis function neural networkSegmentation

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An efficient segmentation using adaptive radial basis function neural network for tomato and mango plant leaf images | Indonesian Journal of Electrical Engineering and Computer Science | Publiora