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001-es BibID:BIBFORM125562
035-os BibID:(Scopus)85180154689
Első szerző:Bouali, Kassem Anis
Cím:Real-Time Birds Shadow Detection for Autonomous UAVs / K.A. Bouali, Hajdu A.
Dátum:2023
Megjegyzések:Autonomous unmanned aerial vehicles (UAVs) are commonly used for wildlife exploration and animal monitoring. Therefore, bird attacks pose a significant challenge to UAVs. As we know, Traditional Bird Detection methods used for prevention against attacks may fail when the attacks occur from unobservable angles. However, the UAV can gain an early indication of an impending attack if it detects the location of the bird`s shadow and takes proactive measures to minimize the risk of damage. To address this, we present the ShadowBirdCUB dataset, derived from the CUB-200-2011 Dataset, which is used to train cutting-edge Deep Learning Algorithms for shadow detection. Experimental results using various Deep learning Object Detection (DLOD) models and performance metrics demonstrate promising effectiveness. Although this approach is limited to detecting attacks from certain angles, it is a valuable addition to existing bird detection methods.
ISBN:978-3-031-47996-0
Tárgyszavak:Műszaki tudományok Informatikai tudományok könyvfejezet
könyvrészlet
UAVs
Bird Detection
Deep Learning Algorithms
DL-OD Models
ShadowBirdCUB
CUB-200-2011 Dataset
Megjelenés:Artificial Intelligence: Towards Sustainable Intelligence / Sanju Tiwari; Fernando Ortiz-Rodríguez; Sashikala Mishra; Edlira Vakaj; Ketan Kotecha. - p. 169-177. -
További szerzők:Hajdu András (1973-) (matematikus, informatikus)
Internet cím:DOI
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