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Simulating Aerial Event-Based Environment: Application to Car Detection

  • Ismail Amessegher,
  • Hajer Fradi,
  • Clémence Liard,
  • Jean-Philippe Diguet,
  • Panagiotis Papadakis,
  • Matthieu Arzel

摘要

With the primary goal of enhancing the efficiency of drones for research and rescue missions through the exploitation of neuromorphic sensors and event-based vision, our focus in this work lies in setting up a simulated environment that can be used for synthetic data generation. In particular, we employ Unreal Engine to generate scenes suitable for the case of vehicle perception, followed by a dynamic event-based simulation environment in interaction with the AirSim and v2e software tools. The synthetic event data acquired in this simulated environment is shown to provide a valuable resource for training Artificial Intelligence (AI) systems and more particularly for the task of car detection using YOLOv7.