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February 8, 20260 citationsOpen Access

Real time drone surveillance system –for detection, distance estimation and automatic target lock using YOLO

ISIsaac Paul. SMMManikandan MNSNeena Susan Shaji

Key Points

  • The aim is to develop a real-time drone surveillance system that detects and tracks drones efficiently.
  • Utilized a Yolov8 model for object detection
  • Employed computer vision and deep learning techniques
  • Estimated distance to drones and checked against safety limits
  • Issued warnings and locked onto targets when limits were exceeded
  • Designed for efficiency on devices with limited computing power
  • Achieved MAP@0.5 of 0.94
  • Demonstrated precision of 0.91 and recall of 0.90
  • Average inference speed of 3.8 ms per frame
  • System suitable for real-time operations

Abstract

This task presents a practical way to monitor drones and protect aircraft. The system detects and tracks drones in real-time. It uses computer vision and deep learning, employing a Yolov8 model to identify drones reliably. This works well even in poor lighting, background noise, or partial visibility. Besides detection, the system estimates the drone's distance from the monitoring station and checks it against a safety limit. If the limit is exceeded, the system quickly issues a warning and locks onto the target. This design prioritizes efficiency and works well on devices with limited computing power, making it suitable for laptops and larger applications. Possible uses include civil surveillance, industrial security, and defence operations. The proposed YOLOv8 model achieved MAP@0.5 of 0.94, precision of 0.91 and recall as 0.90, with the average inference speed as 3.8 ms per frame, confirming it is suitable for real time operations. Future upgrades may include support for multi-camera setups, swarm identification, and trajectory prediction, enhancing its role in protecting restricted airspace.

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Cite This Study

S et al. (2026) studied this question.

synapsesocial.com/papers/6988290a0fc35cd7a88491cbhttps://doi.org/10.1051/itmconf/20268203016/pdf
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