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低空安防场景下多目标高精度实时三维检测技术

翁佳楠,  徐壮,  李旸晖,  叶德茂

翁佳楠,徐壮,李旸晖,等. 低空安防场景下多目标高精度实时三维检测技术[J]. 北京航空航天大学学报,2026,52(9):3163-3171
引用本文: 翁佳楠,徐壮,李旸晖,等. 低空安防场景下多目标高精度实时三维检测技术[J]. 北京航空航天大学学报,2026,52(9):3163-3171
Weng J N,Xu Z,Li Y H,et al. High-accuracy real-time 3D multi-target detection for low-altitude security scenarios[J]. Journal of Beijing University of Aeronautics and Astronautics,2026,52(9):3163-3171 (in Chinese)
Citation: Weng J N,Xu Z,Li Y H,et al. High-accuracy real-time 3D multi-target detection for low-altitude security scenarios[J]. Journal of Beijing University of Aeronautics and Astronautics,2026,52(9):3163-3171 (in Chinese)

低空安防场景下多目标高精度实时三维检测技术

doi: 10.13700/j.bh.1001-5965.2025.0430
基金项目: 

国家自然科学基金(U24A20307)

详细信息
    通讯作者:

    E-mail:yedemao@aliyun.com

  • 中图分类号: TP391.41;TP722.4

High-accuracy real-time 3D multi-target detection for low-altitude security scenarios

Funds: 

National Natural Science Foundation of China (U24A20307)

More Information
  • 摘要:

    针对低空安防场景下无人机、鸟类等动态目标的精确测距需求,提出一种基于双目视觉的多目标高精度实时三维检测方法。该方法在半全局块匹配(SGBM)算法基础上,引入双边滤波、形态学操作和插值空洞填充等视差优化策略,提升弱纹理目标的匹配鲁棒性和深度图完整性。通过结合三角测量与相机标定参数,实时求解目标的三维坐标。实验表明,在0.5~2.0 m范围内,视差空洞率由40.7004%降至1.2781%,平均测距相对误差为2.55%,关键点定位精度达厘米级。缩比建模进一步验证了所提方法在远距离场景中的可扩展性,理论上可将有效范围扩展至2 km,为低空防控领域提供了一种高精度三维感知方案。

     

  • 图 1  双目视觉多目标三维检测框

    Figure 1.  Binocular vision multi-target 3D detection

    图 2  双目标定原理及标定精度估计

    Figure 2.  Diagram illustrating the dual-target calibration principle and accuracy estimation plots

    图 3  立体校正原理

    Figure 3.  Stereo rectification principle diagram

    图 4  伪彩色视差图优化前后对比

    Figure 4.  Comparison of pseudo-color disparity maps before and after optimization

    图 5  鸟类点云投影图

    Figure 5.  Projection map of bird point cloud

    图 6  三维检测方法视差图对比

    Figure 6.  Comparison of disparity map in 3D detection methods

    表  1  视差图评估指标

    Table  1.   Evaluation metrics of disparity maps

    优化措施 空洞率/% 有效视差均值 有效视差标准差 有效视差最小值 有效视差最大值
    无任何优化 40.700 4 105.226 0 26.795 5 2 255
    添加中值滤波 40.178 2 105.171 0 26.851 2 2 255
    添加双边滤波 26.332 9 85.594 9 40.453 4 1 254
    添加形态学操作 24.885 6 87.183 3 39.624 7 1 242
    添加基础插值 1.543 1 66.820 3 50.321 5 1 255
    添加非局部均值滤波 1.278 1 66.724 3 50.388 0 1 242
    下载: 导出CSV

    表  2  目标关键点测距数据

    Table  2.   Ranging data of target key points

    组别 像素坐标/像素 世界坐标/m 测量距离/m 真实距离/m
    1(485,565)(−0.056, 0.076, 0.326)0.340.31
    (656,525)(0.011, 0.077, 0.413)0.420.40
    (729,547)(0.043, 0.080, 0.379)0.390.38
    2(571,460)(−0.056, 0.086, 0.787)0.790.79
    (626,436)(−0.007, 0.075, 0.909)0.910.89
    (683,443)(0.051, 0.078, 0.868)0.870.87
    3(688,384)(0.077, 0.026, 1.189)1.191.17
    (750,376)(0.169, 0.015, 1.237)1.251.28
    (772,382)(0.200, 0.024, 1.231)1.251.23
    4(578,456)(−0.117, 0.196, 1.865)1.891.84
    (605,453)(−0.063, 0.201, 1.981)1.991.94
    (673,493)(0.085, 0.267, 1.800)1.821.82
    下载: 导出CSV

    表  3  目标关键点测距绝对误差统计

    Table  3.   Absolute error statistics of target key point ranging m

    组别点1绝对误差点2绝对误差点3绝对误差组平均绝对误差
    10.0300.0200.0100.020
    200.02000.007
    30.020−0.0300.0200.010
    40.0500.05000.033
     注:组平均绝对误差平均值为0.018 m。
    下载: 导出CSV

    表  4  目标关键点测距相对误差统计

    Table  4.   Relative error statistics of target key point ranging %

    组别点1相对误差点2相对误差点3相对误差组平均相对误差
    19.685.002.635.77
    202.2500.75
    31.712.341.631.89
    42.722.5801.77
     注:组平均相对误差平均值为2.55%。
    下载: 导出CSV

    表  5  立体匹配方法指标对比

    Table  5.   Comparison of indicators for stereo matching methods

    核心算法空洞率/%平均相对误差/%运行时间/ms
    BM1.390 07.20413.90
    传统SGBM40.700 44.80241.29
    本文SGBM(GPU加速)1.278 12.5522~35
    下载: 导出CSV

    表  6  缩比参数

    Table  6.   Scale factors

    原始测距
    范围/m
    距离缩放
    因子k
    扩展
    焦距$ {f}_{0} $/mm
    扩展基
    线距$ {b}_{1} $/mm
    扩展
    距离$ {Z}_{1} $/m
    0.5~2.0 10 $ \begin{aligned}& 3.162 {f}_{0}= \\&10.43\end{aligned} $ $ \begin{aligned}& {3.162 b}_{0}= \\&189.72\end{aligned} $ 5.0~20.0
    0.5~2.0 100 $ \begin{aligned}& 10 {f}_{0}= \\& 33.00\end{aligned} $ $ \begin{aligned}& {10 b}_{0}= \\&600.00\end{aligned} $ 50.0~200.0
    0.5~2.0 1 000 $ \begin{aligned}& 31.623 {f}_{0}= \\& 104.36\end{aligned} $ $ \begin{aligned}& {31.623 b}_{0}= \\& 1\;897.38\end{aligned} $ 500.0~2 000.0
    下载: 导出CSV
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出版历程
  • 收稿日期:  2025-07-02
  • 录用日期:  2025-09-29
  • 网络出版日期:  2025-10-15
  • 整期出版日期:  2026-09-01

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