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Scientific Reports· 2026Q1

Yaşam döngüsü bağlama ve uyarlanabilir füzyon ile GNSS'den yoksun İHA rüzgar çiftliği denetimi için dönüm noktası farkındalığına sahip görsel yerelleştirme

Landmark-aware visual localization for GNSS-denied UAV wind farm inspection via lifecycle binding and adaptive fusion

Kai Zheng, Chao Deng, Maolin Xu, Chonghua Zhu ve diğerleri

Kısa özet

GNSS'den yoksun rüzgar çiftliklerinde İHA'lar için yeni bir görsel yerelleştirme sistemi, simülasyonda 8,33m 3B RMSE (234,8m tabana karşı) ve saha testlerinde 24,95m RMSE elde ederek rüzgar türbin kulelerini dönüm noktası olarak kullanıyor.

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Özet (abstract)

Abstract This paper proposes a lightweight landmark-aware visual localization framework intended as a backup localization subsystem for UAV inspection in GNSS-denied wind farms. The system utilizes wind turbine towers as natural semantic beacons and integrates YOLOv12s and BoT-SORT for real-time detection and robust tracking. Absolute pose estimation is achieved via a bbox-based 2.5-D image–altimeter geometry model, a landmark binding lifecycle management strategy (LBL), and an adaptive spatio-temporal weighted fusion algorithm (ASTW). In five repeated RflySim trials, the combined framework achieved a three-dimensional localization RMSE of $$8.33\pm 1.20$$ m compared with $$234.8\pm 42.3$$ m for the baseline, with end-to-end latency of approximately 200 ms per processed frame. In field validation at a 26-turbine wind farm, the algorithm ran online on a Jetson Xavier NX and independently generated visual position estimates without using RTK/GNSS data, achieving a three-dimensional RMSE of 24.95 m and a latency of 220 ms per processed frame. Because RTK/GNSS remained active for waypoint flight control and was recorded as ground truth, this experiment validates online GNSS-independent visual localization rather than closed-loop autonomous navigation under a physical GNSS outage. Because the field evaluation comprised one mission at one wind farm under favorable weather, the field result supports feasibility for area-level localization and coarse navigation assistance, but not yet high-precision close-range turbine inspection or broad generalization across sites and weather conditions.

Yazarların özeti; kaynağından alınmıştır. Scientific Reports, 2026 · DOI ↗

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