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作 者:王新良 纪昂志 李自强 WANG Xinliang;JI Angzhi;LI Ziqiang(School of Physics and Electronic Information Engineering,Henan Polytechnic University,Jiaozuo,Henan 454003,China;XJ Electric Co.,Ltd.,Xuchang,Henan 461000,China)
机构地区:[1]河南理工大学物理与电子信息学院,河南焦作454003 [2]许继电气股份有限公司,河南许昌461000
出 处:《计算机工程与应用》2023年第21期319-326,共8页Computer Engineering and Applications
基 金:2019年河南省高等学校青年骨干教师培养计划(2019GGJS060);河南省高校重点研究项目(21B413005)。
摘 要:为解决当前无人机巡检污秽绝缘子过程中受光照强弱影响大、背景复杂造成检测准确率低以及水平框并不能准确定位绝缘子等问题,提出一种改进R3Det的绝缘子污秽细粒度旋转目标检测算法。在特征提取部分,使用ConvNeXt做为主干特征提取网络,实现对绝缘子污秽细粒度特征的增强提取;同时采用PANet特征融合网络关联不同感受野特征。在检测头网络部分,使用对齐卷积和小尺度卷积,提升模型的检测性能以及增加分类的准确性;并利用Kullback-Leibler Divergence(KLD)优化损失函数,改善带有旋转角度信息的污秽绝缘子检测框的定位精确。实验结果表明,改进后的算法在自制绝缘子污秽数据集上的mAP可以达到90.6%,相较于原始网络提高了4.9个百分点,同时模型计算量降低了25.2%,能够准确有效地识别并定位出输电线路中的污秽绝缘子。An improved R3Det algorithm for fine-grained rotating target detection of contamination insulators is aiming at the problem that the current UAV inspection of fouled insulators is greatly influenced by the light intensity and low detec-tion accuracy due to the complex background and the horizontal frame does not accurately locate the insulators is pro-posed.For the backbone of the network,ConvNeXt is used as the backbone feature extraction network to realize enhanced extraction of fine-grained features of insulator contamination.Meanwhile,the PANet is used to associate differ-ent receptive field features at the same time.In the part of detection head,aligned convolution and small-scale convolu-tion are used to improve the detection performance of the model and increase the accuracy of classification.Kullback Leibler divergence(KLD)is also used to optimize the loss function to improve the positioning accuracy of the contaminated insulator detection frame with rotation angle information.The experimental results show that the mAP of the improved algorithm on the self-made insulator pollution data set can reach 90.6%,which is 4.9 percentage points higher than the original network,and the calculation amount of the model is reduced by 25.2%,which can accurately and effectively identify and locate the contaminated insulators in the transmission lines.
分 类 号:TP391[自动化与计算机技术—计算机应用技术]
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