基于可变形卷积改进Faster R-CNN的高铁扣件检测算法
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1.华东交通大学信息工程学院;2.江西慧通科技发展有限责任公司

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江西省教育厅科学技术研究重点项目(GJJ200603);江西省重点研发计划重点项目(20202BBEL53001)


High-speed railway fastener detection algorithm based on deformable convolutional improved Faster R-CNN
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    摘要:

    针对高铁无砟轨道中扣件发生松动,导致高铁扣件发生偏移或丢失的问题,本文提出了一种基于可变形卷积的改进Faster R-CNN高铁扣件检测算法。在特征提取网络中引入可变形卷积,构建可变形残差卷积块(Deformable Residual Convolution Block,DRCB),使特征提取过程更加集中于扣件区域,实现扣件状态的精确提取;并采用Alpha-IoU作为目标回归损失函数提高高铁扣件的回归精度。实验结果表明,在对高铁扣件状态的检测中,改进后的Faster R-CNN算法对高铁扣件偏移状态的检测精度为99.34%,丢失状态的检测精度为76.80%,平均精度均值为88.07%,相比于其他算法,改进后的Faster R-CNN算法检测精度最高。

    Abstract:

    Aiming at the problem that the fasteners in the ballast-less track of high-speed railway become loose, resulting in the deflection or loss of high-speed railway fasteners, this paper proposes a high-speed railway fastener detection algorithm based on deformable convolution improved Faster R-CNN. Deformable Convolution is introduced in the feature extraction network to build Deformable Residual Convolution Block (DRCB), which makes the feature extraction process more focused on the fastener region to achieve accurate extraction of fastener state; and Alpha-IoU is used as the target regression loss function to improve the regression accuracy of high-speed railway fasteners. The experimental results show that in the detection of the fastener state of high-speed railway, the improved Faster R-CNN algorithm has 99.34% detection accuracy for the offset state of high-speed railway fasteners and 76.80% detection accuracy for the lost state, with an average accuracy mean value of 88.07%, compared with other algorithms, the improved Faster R-CNN algorithm has the highest detection accuracy.

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历史
  • 收稿日期:2022-04-27
  • 最后修改日期:2022-05-24
  • 录用日期:2022-05-26
  • 在线发布日期: 2023-06-21
  • 出版日期: