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作 者:Ji Wang Liming Li Shubin Zheng Shuguang Zhao Xiaodong Chai Lele Peng Weiwei Qi Qianqian Tong
机构地区:[1]School of Urban Railway Transportation,Shanghai University of Engineering Science,Shanghai,201620,China [2]School of Information Science and Technology,Donghua University,Shanghai,201620,China [3]Shanghai Engineering Research Centre of Vibration and Noise Control Technologies for Rail Transit,Shanghai University of Engineering Science,Shanghai,201620,China
出 处:《Computer Modeling in Engineering & Sciences》2023年第3期1671-1706,共36页工程与科学中的计算机建模(英文)
摘 要:This paper proposes a cascade deep convolutional neural network to address the loosening detection problem of bolts on axlebox covers.Firstly,an SSD network based on ResNet50 and CBAM module by improving bolt image features is proposed for locating bolts on axlebox covers.And then,theA2-PFN is proposed according to the slender features of the marker lines for extracting more accurate marker lines regions of the bolts.Finally,a rectangular approximationmethod is proposed to regularize themarker line regions asaway tocalculate the angle of themarker line and plot all the angle values into an angle table,according to which the criteria of the angle table can determine whether the bolt with the marker line is in danger of loosening.Meanwhile,our improved algorithm is compared with the pre-improved algorithmin the object localization stage.The results show that our proposed method has a significant improvement in both detection accuracy and detection speed,where ourmAP(IoU=0.75)reaches 0.77 and fps reaches 16.6.And in the saliency detection stage,after qualitative comparison and quantitative comparison,our method significantly outperforms other state-of-the-art methods,where our MAE reaches 0.092,F-measure reaches 0.948 and AUC reaches 0.943.Ultimately,according to the angle table,out of 676 bolt samples,a total of 60 bolts are loose,69 bolts are at risk of loosening,and 547 bolts are tightened.
关 键 词:Loosening detection cascade deep convolutional neural network object localization saliency detection
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