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صفحه اصلی
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دومین همایش بین المللی هوش مصنوعی
Intelligent Leaf Disease Diagnosis Using EfficientNetB0 Combined with CBAM in a Multi-Task Framework
نویسندگان :
Nasrin Nikootadbir
1
Mohammad Hasan Majidi
2
1- دانشگاه بیرجند
2- دانشگاه بیرجند
کلمات کلیدی :
Deep learning،CBAM،EfficientNetB0،multi-task learning،plant disease detection،consistency
چکیده :
Automatic plant leaf disease detection plays a crucial role in smart agriculture by reducing crop losses and enabling timely treatment. In this study, a multi-task deep learning model based on EfficientNetB0 is proposed to simultaneously predict three outputs: leaf health status, plant species, and disease type. To enhance the feature representation of discriminative regions, the Convolutional Block Attention Module (CBAM) is integrated into the network. Furthermore, a specialized Gated Disease Head is designed to exploit the semantic dependency between plant species and disease type, while a Consistency Supervision mechanism is introduced to prevent contradictory predictions among the outputs. The model is trained on a dataset containing approximately 4,000 leaf images from barberry, jujube, and pomegranate plants, using a two-stage optimization strategy including warm-up and fine-tuning phases. Experimental results demonstrate that the proposed approach achieves 97% accuracy in health classification, 93% in species identification, and 93% in disease recognition, while maintaining a significantly lower parameter size compared to state-of-the-art methods. Overall, the proposed framework provides an efficient, lightweight, and reliable solution for real-world intelligent plant disease monitoring systems.
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بیشتر
ثمین همایش، سامانه مدیریت کنفرانس ها و جشنواره ها - نگارش 44.5.0