基于改进 ByteTrack 的高铁周界入侵监测方法研究
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TH865

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国家自然科学基金(U2268217)项目资助


Research on intrusion detection of high speed railway perimeter based on the improved ByteTrack
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    摘要:

    本文旨在应对高铁周界环境复杂、小目标多等情况,研究周界入侵行为的识别与跟踪问题,并提出一种改进 ByteTrack 算法。 本文融合 YOLOv7-X 与 BYTE 数据关联方法对模型进行改进,并且引入卷积块注意力机制以提升周界复杂环境下前景 目标的识别效果,利用空间-深度转化模块优化跨步卷积与池化层,改善小目标识别时下采样导致的细粒度信息丢失情况。 制 作铁路周界入侵数据集进行实验,实验结果表明,改进后的模型平均精度达到 95. 6% ,提升了 9. 4% ,对大中小目标识别的平均 精度均有提升,尤其是对小目标识别效果提升显著,提升了 22. 2% 。 结果表明改进 ByteTrack 算法在高铁周界复杂环境下能实 现入侵行为的识别与跟踪,为高铁周界防护提供技术支持。

    Abstract:

    To address the problems of high-speed railway perimeter intrusion detection such as complex surroundings and a large number of small targets, an improved ByteTrack algorithm is proposed to realize the identification and tracking of perimeter intrusion. The model is improved by integrating YOLOv7-X and the data association method of BYTE. The convolution block attention module is introduced to improve the recognition effect of foreground targets in complex surroundings. The space-to-depth layer and the non-strided convolution layer are used to optimize the step convolution and pooling layers to improve the loss of fine-grained information caused by down-sampling in small target recognition. The railway perimeter intrusion dataset is established for experiments. The experimental results show that the AP of the improved module is 95. 6% , an increase of 9. 4% , and has improved the AP of target recognition for large, small, and medium-sized targets, especially for small targets, with a significant improvement of 22. 2% . The improved ByteTrack algorithm can realize the identification and tracking of intrusion behavior in the complex environment of high-speed railway perimeter, and provide technical support for high-speed railway perimeter protection.

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傅荟瑾,史天运,王 瑞,马 祯,张万鹏.基于改进 ByteTrack 的高铁周界入侵监测方法研究[J].仪器仪表学报,2023,44(4):61-71

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  • 在线发布日期: 2023-07-12
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