Université Blida 1

UAV aerial image-based forest fire detection using artificial intelligence

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dc.contributor.author Touahria, Nesrine
dc.contributor.author Bouhamam, Romaissa
dc.contributor.author Bentrad, Hocine (promoteur)
dc.contributor.author Kechida, Ahmed (promoteur)
dc.date.accessioned 2023-09-26T11:03:04Z
dc.date.available 2023-09-26T11:03:04Z
dc.date.issued 2023
dc.identifier.uri https://di.univ-blida.dz/jspui/handle/123456789/24958
dc.description Mémoire de Master option Avionique.-Numéro de Thèse029/2023 fr_FR
dc.description.abstract In the past years, 40 831 hectares of forests have been devastated by rampant wildfires, resulting in the tragic loss of numerous lives. To address this challenge, our research focuses on developing an early wildfire detection system capable of identifying potential fire outbreaks before they escalate, as controlling them once they have spread becomes arduous. Our proposed approach utilizes unmanned aerial vehicles (UAVs) to capture aerial data, which is then processed on board to automatically detect early signs of wildfires. This enables us to promptly alert relevant emergency services and facilitate a rapid response. The core technique employed in our approach is transfer learning, specifically applied to the YOLOv3 model for object detection through several Batch sizes and epochs. We validate the effectiveness of our model using FLAME dataset. The performance metrics we have achieved demonstrate the success of our approach, with Precision, Recall, F1-Score and Accuracy rates reaching impressive levels of 100%, 96.66667%, 98.305085%, and 96.66667% respectively. fr_FR
dc.language.iso en fr_FR
dc.publisher Université Blida 01 fr_FR
dc.subject Wildfires fr_FR
dc.subject UAVs fr_FR
dc.subject Detection fr_FR
dc.subject Transfer learning fr_FR
dc.subject YOLOv3 fr_FR
dc.subject Early detection fr_FR
dc.title UAV aerial image-based forest fire detection using artificial intelligence fr_FR
dc.type Thesis fr_FR


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