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Advanced Tomato Disease Detection Using the Fusion of Multiple Deep-Learning and Meta-Learning Techniques

  • 17-10-2024
  • Research
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Abstract

The article discusses the challenges and importance of detecting tomato diseases, which can severely impact both farmers and exporting economies. Traditional methods for disease detection face numerous obstacles, including varying plant conditions and image quality issues. To address these challenges, the study proposes a multi-deep and meta-learning fusion framework that integrates modern deep-learning algorithms and a voting classifier. This framework significantly improves disease detection accuracy and efficiency. The authors also explore the benefits of using the Contrast Limited Adaptive Histogram Equalization (CLAHE) technique to enhance image quality. Additionally, the study compares the performance of different deep learning models, both trained from scratch and using transfer learning. The proposed method demonstrates superior accuracy, making it a promising solution for early and effective disease detection in tomato plants.

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Title
Advanced Tomato Disease Detection Using the Fusion of Multiple Deep-Learning and Meta-Learning Techniques
Author
Hatice Catal Reis
Publication date
17-10-2024
Publisher
Springer Berlin Heidelberg
Published in
Journal of Crop Health / Issue 6/2024
Print ISSN: 2948-264X
Electronic ISSN: 2948-2658
DOI
https://doi.org/10.1007/s10343-024-01047-y
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