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JCR 2016
جستجوی مقالات
چهارشنبه 26 آذر 1404
مدیریت فناوری اطلاعات
، جلد ۱۷، شماره Special Issue، صفحات ۳۲-۴۴
عنوان فارسی
چکیده فارسی مقاله
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عنوان انگلیسی
A Robust Deep Learning Framework: Ensemble of YOLOv8 and EfficientNet
چکیده انگلیسی مقاله
This research work aims to present a robust deep learning framework by devising a deep learning-based ensemble method of YOLOv8 and EfficientNet. The suggested model is evaluated on the dataset collected from Kaggle, comprising 10,000 high-definition images of stems, leaves, and cut fruits of banana and papaya. These images are captured under different lighting conditions and thus expanded to 80,000 images. Authors have proposed an ensemble model comprising YoloV8 and EfficientNet as base deep learning models to enhance prediction and classification performance. Here, authors combine the merits of both models, i.e., speed of YoloV8 and the accuracy of EfficientNet, by putting a majority voting method in place. The final forecast is determined by majority voting, and EfficientNet is given higher significance in the situation of a tie owing to its enhanced accuracy. The proposed model presents a robust solution for agricultural disease management and demonstrates significant improvements in the detection of diseases in papaya and banana, opening avenues for its widespread employment in real life.
کلیدواژههای انگلیسی مقاله
Deep learning,EfficientNet,Yolov8,Image classification,Object Detection,loss
نویسندگان مقاله
Harjeet Kaur |
School of Computer Science and Engineering, Lovely Professional University, Phagwara, India.
Deepak Prashar |
School of Computer Science and Engineering, Lovely Professional University, Phagwara, India.
Vipul Kumar |
School of Computer Science and Engineering, Lovely Professional University, Phagwara, India.
نشانی اینترنتی
https://jitm.ut.ac.ir/article_102920_85e0ab79ae79519eb7c73b6d11e180f7.pdf
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