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Updated: Sep 9, 2025

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Lightweight SCL-YOLOv8: A High-Performance Model for Transmission Line Foreign Object Detection.

Houling Ji1, Xishi Chen1, Jingpan Bai1

  • 1School of Computer Science, Yangtze University, Jingzhou 434023, China.

Sensors (Basel, Switzerland)
|August 28, 2025
PubMed
Summary
This summary is machine-generated.

This study introduces SCL-YOLOv8, a lightweight algorithm for real-time foreign object detection on transmission lines using UAVs. It significantly reduces computational load and model size while improving detection accuracy for enhanced power grid safety.

Keywords:
CGLU-ConvFormerLSCDHStarNetlightweight networkobject detection

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Area of Science:

  • Electrical Engineering
  • Computer Vision
  • Artificial Intelligence

Background:

  • Transmission lines face risks from foreign object intrusion, potentially causing power outages.
  • Current UAV-based inspections lack real-time analysis and efficiency due to data transmission needs.
  • Existing YOLO models are too computationally intensive for efficient UAV deployment.

Purpose of the Study:

  • To develop a lightweight foreign object detection algorithm for real-time analysis on UAV platforms.
  • To improve the efficiency and accuracy of foreign object detection on transmission lines.
  • To reduce the computational complexity and model size of object detection systems for UAVs.

Main Methods:

  • Proposed SCL-YOLOv8, a novel lightweight detection algorithm based on YOLO.
  • Replaced the CSPDarknet53 backbone with StarNet for reduced computational complexity and efficient feature extraction.
  • Introduced a CGLU-ConvFormer module for enhanced multi-scale and local feature extraction.
  • Improved the detection head with shared convolutional layers and group normalization for reduced computation and better feature fusion.

Main Results:

  • SCL-YOLOv8 achieved a mean Average Precision (mAP@0.5) of 94.2%.
  • Significantly reduced model parameters by 56.8%, Floating Point Operations (FLOPs) by 45.7%, and model size by 50% compared to YOLOv8n.
  • Demonstrated improved detection accuracy and reduced computational requirements.

Conclusions:

  • SCL-YOLOv8 offers an efficient and accurate solution for real-time foreign object detection on transmission lines via UAVs.
  • The lightweight design enables deployment on resource-constrained UAV platforms.
  • This advancement contributes to enhanced power grid safety and operational efficiency.