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MobileChiliNet: convolutional neural network for chili leaves classification

Rahman, SayutiElveny, MarischaRamli, MarwanManurung, Dionikxon
IAES International Journal of Artificial Intelligence (IJ-AI) (Sinta 1)Vol. 0 No. 01 Oktober 2025
DOI10.11591/ijai.v14.i5.pp3757-3770

Abstrak

Chili pepper (Capsicum annuum) is an important crop in many countries, including Indonesia, which plays an important role in local economy and food production. To meet the high demand, effective agricultural management, especially the diagnosis and treatment of plant diseases, is essential. This study aims to improve the accuracy of chili leaf disease classification while reducing the computational cost so that it can be applied to low-cost smart farming systems. Through the development of the MobileChiliNet architecture, which is the result of pruning and fine-tuning of MobileNetV2, this model achieves the best accuracy, better than other CNNs such as ResNet50 and VGG16. Testing with various optimizers and learning rate schedulers shows that AdamW with PolynomialDecay provides the best performance by increasing the validation accuracy to 96.48%. This approach successfully reduces the computational complexity while maintaining high accuracy, so that it can be implemented in smart farming systems at a lower cost.

Kata Kunci

Science Data, AI, OptimizationChili leavesChili leaves classificationClassificationConvolutional neural networksMobileChiliNet

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MobileChiliNet: convolutional neural network for chili leaves classification | IAES International Journal of Artificial Intelligence (IJ-AI) | Publiora