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基于ME-YOLO算法的输电线路绝缘子缺陷检测研究

刘文涛 曾嵘 张雨帆 张韩 向斌斌 白瑞 邹红波

计算机技术与发展2026,Vol.36Issue(5):64-71,8.
计算机技术与发展2026,Vol.36Issue(5):64-71,8.DOI:10.20165/j.cnki.ISSN1673-629X.2025.0321

基于ME-YOLO算法的输电线路绝缘子缺陷检测研究

Research on Transmission Line Insulator Defect Detection Based on ME-YOLO Algorithm

刘文涛 1曾嵘 1张雨帆 1张韩 1向斌斌 1白瑞 1邹红波2

作者信息

  • 1. 国网襄阳供电公司运检分公司,湖北 襄阳 441000
  • 2. 三峡大学 电气与新能源学院,湖北 宜昌 443000
  • 折叠

摘要

Abstract

To address the shortcomings of traditional defect detection algorithms in multimodal and multi-type defect recognition on insulators,particularly in the context of small objects and complex backgrounds in aerial images,we design an MGDB module to improve C2f,resulting in C2f_MGDB.This module replaces C2f in the head of the YOLOV10n network,lightweighting the model while improving its feature extraction capabilities.Furthermore,an EMA attention mechanism is implemented in the Neck region to enhance the model's object perception in complex multimodal backgrounds.Meanwhile,an Inner-Wise-MPDIoU loss function is introduced to replace the native YOLOV10n loss function,thereby improving model training performance and detection accuracy.Finally,the original detection head is replaced with a LSCD lightweight detection head,significantly reducing the number of model parameters and computational overhead while maintaining detection accuracy.The resulting Multimodal Enhanced YOLO(ME-YOLO)model is exper-imentally tested on a multimodal insulator dataset.Experimental results show that the improved ME-YOLO model reduces the number of parameters by34.42%and the computational overhead by10.29%,while improving mAP50 by4.6%.It is proved that the proposed method not only significantly improves the detection effect of multi-modal and multi-type insulator defects,but also reduces the complexity of the model.

关键词

绝缘子缺陷检测/MGDB模块/EMA模块/Inner-Wise-MPDIoU/YOLOV10n

Key words

insulator defect detection/MGDB module/EMA module/Inner-Wise-MPDIoU/YOLOV10n

分类

信息技术与安全科学

引用本文复制引用

刘文涛,曾嵘,张雨帆,张韩,向斌斌,白瑞,邹红波..基于ME-YOLO算法的输电线路绝缘子缺陷检测研究[J].计算机技术与发展,2026,36(5):64-71,8.

基金项目

国家自然科学基金(62476153) (62476153)

计算机技术与发展

1673-629X

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