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Novel Feature Fusion Module Based Detector for Small Insulator Defect Detection
Gao ZS(高子舒)
发表期刊IEEE SENSORS JOURNAL
2021
期号2021页码:
摘要

The failure of an insulator may compromise the
safety of the entire power transmission system. Therefore, insulator defect detection is vital for the safe operation of power
systems. However, insulator defects in an insulator image may
have varying sizes, and several currently available methods do not
have satisfactory detection accuracy for small defects. To address
this issue, we propose an improved detection network for small
insulator defects with a batch normalization convolutional block
attention module (BN-CBAM) and a feature fusion module. The
BN-CBAM is designed to better exploit channel information and
enhance the effect of different channels on the feature map. In
addition, we propose a feature fusion module that fuses multiscale features from different layers to improve small object
detection performance. Moreover, to address the scarcity of aerial
images, a data augmentation method based on the fusion of
the target segment and background is introduced. Experiments
demonstrate that the proposed method achieves better small
insulator defect detection performance than other state-of-theart approaches. In addition, data augmentation methods enrich
sample diversity and enhance the generalizability of the network.
 

关键词insulator defect detection, anchor-free object detection, data augmentation, aerial image
收录类别SCI
语种英语
七大方向——子方向分类机器人感知与决策
文献类型期刊论文
条目标识符http://ir.ia.ac.cn/handle/173211/44604
专题复杂系统认知与决策实验室_先进机器人
作者单位1.中科院自动化所
2.中国科学院大学
推荐引用方式
GB/T 7714
Gao ZS. Novel Feature Fusion Module Based Detector for Small Insulator Defect Detection[J]. IEEE SENSORS JOURNAL,2021(2021):8.
APA Gao ZS.(2021).Novel Feature Fusion Module Based Detector for Small Insulator Defect Detection.IEEE SENSORS JOURNAL(2021),8.
MLA Gao ZS."Novel Feature Fusion Module Based Detector for Small Insulator Defect Detection".IEEE SENSORS JOURNAL .2021(2021):8.
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