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MosquitoFusion: A Multiclass Dataset for Real-Time Detection of Mosquitoes, Swarms, and Breeding Sites Using Deep Learning

2024-04-01 · Md. Faiyaz Abdullah Sayeedi, Fahim Hafiz, Md Ashiqur Rahman

In this paper, we present an integrated approach to real-time mosquito detection using our multiclass dataset (MosquitoFusion) containing 1204 diverse images and leverage cutting-edge technologies, specifically computer vision, to automate the identification of Mosquitoes, Swarms, and Breeding Sites. The pre-trained YOLOv8 model, trained on this dataset, achieved a mean Average Precision (mAP@50) of 57.1%, with precision at 73.4% and recall at 50.5%. The integration of Geographic Information Systems (GIS) further enriches the depth of our analysis, providing valuable insights into spatial patterns. The dataset and code are available at https://github.com/faiyazabdullah/MosquitoFusion.

📄 PDF Abstract BibTeX arXiv:2404.01501

Code (1)

faiyazabdullah/mosquitofusion 공식 구현

Tasks

2D Object Detection

Methods 이 논문이 사용한 방법론

YOLOv8 설명 없음

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