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Document type:
Masterarbeit
Author(s):
Shuangyi Liu
Title:
Vehicle detection in aerial images using neural networks with synthetic training data
Abstract:
Deep learning approaches have made great strides in pattern recognition due to their superior performance. Such approaches require a large amount of ground-truth data. A pipeline for generating synthetic data is based on the real-time 3D creation tool Unreal Engine and the drone simulator AirSim. Unreal Engine provides a simulation environment that allows one to simulate complex situations in a virtual world, such as data acquisition with drones. AirSim on the other hand, is a simulator for...     »
Advisor:
Olaf Wysocki, Corentin Henry, Nina Merkle, Seyed Majid Azimi, Manuel Mühlhaus
Cooperation:
DLR
Date of acceptation:
01.11.2022
Year:
2022
Language:
en
University:
the Technical University of Munich
Faculty:
TUM School of Engineering and Design
TUM Institution:
Photogrammetry and Remote Sensing Chair
ingested:
01.05.2022
End of processing:
01.11.2022
Status:
Abgeschlossen
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