Small Pests Detection in Field Crops Using Deep Learning Object Detection

نویسندگان

چکیده

Deep learning algorithms, such as convolutional neural networks (CNNs), have been widely studied and applied in various fields including agriculture. Agriculture is the most important source of food income human life. In countries, backbone economy based on Pests are one major challenges crop production worldwide. To reduce overall economic loss from pests, advancement computer vision artificial intelligence may lead to early small pest detection with greater accuracy speed. this paper, an approach for using deep has presented. Object a dataset images thistle caterpillars, red beetles, citrus psylla. The input contains 9875 all pests under different illumination conditions. State-of-the-art Yolo v3, Yolov3-Tiny, Yolov4, Yolov4-Tiny, Yolov6, Yolov8 adopted study detection. All these models were selected their performance object annotated format. achieved highest mAP 84.7% average 0.7939, which better than results reported other works when compared model was further integrated Android application real time This paper contributes implementation novel models, analytical methodology, workflow detect crops effective management.

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ژورنال

عنوان ژورنال: Sustainability

سال: 2023

ISSN: ['2071-1050']

DOI: https://doi.org/10.3390/su15086815