TL;DR
This paper demonstrates that convolutional neural networks, especially YOLOv4, can effectively detect large-scale mosquito habitats from satellite imagery, enabling cost-effective disease risk mapping on a global scale.
Contribution
It introduces a CNN-based method for large-scale mosquito habitat detection using satellite imagery, improving over traditional ground and aerial survey techniques.
Findings
YOLOv4 achieved the highest accuracy among tested models.
The approach is scalable and cost-effective for global disease risk mapping.
Larger land cover features improve habitat prediction accuracy.
Abstract
Mosquitoes are known vectors for disease transmission that cause over one million deaths globally each year. The majority of natural mosquito habitats are areas containing standing water that are challenging to detect using conventional ground-based technology on a macro scale. Contemporary approaches, such as drones, UAVs, and other aerial imaging technology are costly when implemented and are only most accurate on a finer spatial scale whereas the proposed convolutional neural network(CNN) approach can be applied for disease risk mapping and further guide preventative efforts on a more global scale. By assessing the performance of autonomous mosquito habitat detection technology, the transmission of mosquito-borne diseases can be prevented in a cost-effective manner. This approach aims to identify the spatiotemporal distribution of mosquito habitats in extensive areas that are…
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Taxonomy
MethodsBNB Customer Service Number +1-833-534-1729 · *Communicated@Fast*How Do I Communicate to Expedia? · k-Means Clustering · 1x1 Convolution · Bottom-up Path Augmentation · Feature Pyramid Network · Batch Normalization · Softmax · Convolution · Sigmoid Activation
