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April 30, 20260 citationsOpen Access

Plant Disease Detection and Treatment Recommendation System using Convolutional Neural Networks

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ARA RajeshVWVaishnavi WaghmareMM.Nakshith

Key Points

  • This research aims to develop an intelligent system for early detection and treatment recommendation of plant diseases using deep learning.
  • Developed a deep learning model based on EfficientNet architecture.
  • Trained the model using the PlantVillage database with 38 classes of plant leaf images.
  • Users can submit images of plant leaves to receive disease identification and treatment recommendations.
  • The system successfully identifies diseases in plant leaves with high accuracy.
  • Provides recommended treatments and prevention methods for identified diseases.
  • Offers links for users to purchase remedies, enhancing decision-making in smart agriculture.

Abstract

Feeding the population of the world is important to agriculture - losses in crops due to diseases ultimately result in loss of yield and quality. To minimize losses from commodity losses due to crop diseases, an early (and correctly) identification of disease must occur to allow sustainable agricultural systems to grow in a sustainable manner. The traditional means of detecting plant diseases by way of visual inspection by a specialist is somewhat limited in its efficiency because it takes a significant amount of time to complete, it is subjective and is often a difficult process for an average farm to complete successfully. This article discusses the development of an intelligent system that utilizes Machine Learning (particularly Deep Learning) to identify and recommend a solution to the user of detected plant disease. The system will incorporate the use of an EfficientNet-based CNN Architecture that was trained with the PlantVillage database containing images of 38 different classes of plant leaf images created by plant scientists and plant specialists. The system will allow the user to submit an image of their plant leaf to the system which will provide the user with an answer as to whether their leaf has a disease, list of recommended treatments, prevention methods and links to where they may be able to purchase the remedies for their trees. Overall, the proposed system will provide a valuable tool for smart agriculture decision making by providing the user with an early identification of disease, assistance with developing an action plan for treatment and continuing education.

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Cite This Study

Rajesh et al. (2026) studied this question.

synapsesocial.com/papers/69f2f1771e5f7920c638722dhttps://doi.org/10.5281/zenodo.19850528
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