Publication | Closed Access
Knowledge-based power line detection for UAV surveillance and inspection systems
148
Citations
4
References
2008
Year
Unknown Venue
EngineeringFeature DetectionIntelligent SystemsUnmanned VehicleUav SurveillanceImage AnalysisPattern RecognitionUnmanned SystemUav PlatformSystems EngineeringEdge DetectionUnmanned Aerial VehiclesMachine VisionOptical Image RecognitionAutomated InspectionSignal ProcessingComputer VisionAerial RoboticsAerospace EngineeringRemote MonitoringUnmanned Aerial SystemsAir Vehicle SystemSpatial Information
Spatial information captured from optical remote sensors on board unmanned aerial vehicles (UAVs) has great potential in the automatic surveillance of electrical power infrastructure. For an automatic vision based power line inspection system, detecting power lines from cluttered background an important and challenging task. In this paper, we propose a knowledge-based power line detection method for a vision based UAV surveillance and inspection system. A PCNN filter is developed to remove background noise from the images prior to the Hough transform being employed to detect straight lines. Finally knowledge based line clustering is applied to refine the detection results. The experiment on real image data captured from a UAV platform demonstrates that the proposed approach is effective.
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