系统仿真学报 ›› 2026, Vol. 38 ›› Issue (9): 2535-2558.doi: 10.16182/j.issn1004731x.joss.25-1037
• 综述 • 上一篇
罗晟杰, 刘志刚, 李夕海, 王艺婷, 曾小牛, 谭笑枫, 李鸿儒, 刘天佑, 张云
收稿日期:2025-10-26
修回日期:2025-12-28
出版日期:2026-09-30
发布日期:2026-10-02
通讯作者:
刘志刚
第一作者简介:罗晟杰(1998-),男,博士生,研究方向为SAR-ATR与SAR图像仿真。
Luo Shengjie, Liu Zhigang, Li Xihai, Wang Yiting, Zeng Xiaoniu, Tan Xiaofeng, Li Hongru, Liu Tianyou, Zhang Yun
Received:2025-10-26
Revised:2025-12-28
Online:2026-09-30
Published:2026-10-02
Contact:
Liu Zhigang
摘要:
SAR图像仿真技术可通过灵活设置系统参数与场景条件,高效生成大规模标注数据,突破了真实SAR图像获取成本高、周期长的局限,有效缓解数据稀缺问题。为阐述车辆SAR图像仿真整体研究现状,依据技术原理与方法路径建立仿真方法分类体系,全面综述研究进展,深入解析各类方法的理论基础、实际应用与适用场景,基于当前领域的发展趋势与技术挑战,探讨未来研究的突破方向。
中图分类号:
罗晟杰,刘志刚,李夕海等 . 车辆SAR图像仿真:进展、应用与挑战[J]. 系统仿真学报, 2026, 38(9): 2535-2558.
Luo Shengjie,Liu Zhigang,Li Xihai,et al . Vehicle SAR Image Simulation: Progress, Application and Challenge[J]. Journal of System Simulation, 2026, 38(9): 2535-2558.
表2
高频法
| 方法 | 优点 | 缺点 | 适用场景 |
|---|---|---|---|
| 几何光学法(GO) | 计算简单,效率高 | 无法处理绕射、相位;在阴影边界、焦散区和源区出现奇异性 | 适用于表面和简单几何结构的目标,如镜面反射场景 |
| 物理光学法(PO) | 避免了阴影区和焦散区的奇异性问题 | 仅考虑一次反射,无法处理多次反射、绕射和极化效应 | 适用于电大尺寸目标的光滑曲面散射计算,如机身、船身、船底等 |
| 弹跳射线法(SBR) | 能模拟多次反射和复杂路径;结合了GO和PO法的优点 | 计算复杂度随反射次数增加;难以处理绕射效应 | 适用于复杂几何结构的目标,如车辆、船舶、建筑物等,尤其是多次反射场景 |
| 几何绕射法(GTD) | 能处理边缘、尖点和曲面不连续处的绕射效应 | 仅能计算Keller锥面方向的散射场;在阴影边界和焦散区出现无穷大值。对复杂几何结构的适应性有限 | 适用于边缘、尖锥、平板角点、曲面绕射效应显著的目标,如天线、棱角结构等 |
| 物理绕射法(PTD) | 通过边缘电流修正补偿PO法的几何不连续性;消除GTD阴影边界的奇异点 | 仅能计算Keller锥面方向的散射场;对复杂几何结构的适应性有限 | 同上,且边缘散射计算更精确 |
| 一致性绕射法(UTD) | 改进GTD,解决阴影边界处的无穷大问题;适用范围更广 | 焦散区的奇异性仍存在 | 同上,且在过渡区域表现更好,适用于需要高精度绕射计算的场景,如天线设计、复杂目标的RCS计算 |
| 等效电磁流法(MEC) | 克服GTD和PTD的局限性;能处理焦散区奇异性问题;绕射场不局限于Keller锥面方向;适用于复杂几何形状目标 | 计算复杂度较高;难以处理阻抗边缘和尖顶等结构 | 同上,适用于需要高精度边缘和尖端散射计算的场景,如隐身目标设计、复杂结构分析等 |
| 增量长度绕射系数(ILDC) | 改进了PTD,绕射场不局限于Keller锥面方向;在反射、阴影边界的过渡区为有限值 | 表达形式复杂,对任何边缘都要分别计算物理光学积分和边缘贡献 | 同上,且边缘散射计算更精确 |
表3
基于电磁模型的车辆目标SAR图像仿真研究
| 文献 | 年份 | 电磁计算方法 | 仿真方法 | 成像方法 | 仿真质量评估 |
|---|---|---|---|---|---|
| [ | 2008 | PO+ILDC | 图像/GRECO | 映射投影 | 模板匹配 |
| [ | 2010 | PO+MEC | 图像/像素法 | 映射投影 | 视觉分析 |
| [ | 2015 | SBR+MEC | 图像 | 映射投影 | PAC |
| [ | 2008 | PO+ILDC | 信号 | RD | 模板匹配 |
| [ | 2010 | PO+MEC | 信号/转台成像 | PFA | 视觉分析 |
| [ | 2010 | PO+PTD+GO/PO | 信号/转台成像 | 2D-IFFT | NCC、Hausdorff、RCS分析 |
| [ | 2012 | PO+SBR+MEC | 信号/频域方法 | RD\RM | NCC、Hausdorff、RCS分析 |
| [ | 2014 | GO | 信号 | SSIM分类 | |
| [ | 2015 | SBR+MEC | 信号/频域方法 | RD | NCC、PAC、径向积分 |
| [ | 2016 | SBR+PTD | 信号/频域方法 | BP | 分类 |
| [ | 2018 | SBR | 信号/转台成像 | RD | 灰度均值、灰度共生矩阵 |
| [ | 2019 | 高频射线追踪 | 信号 | PFA | 分类模型 |
| [ | 2020 | PO | 信号/转台成像 | 2D-IFFT | SVM分类 |
| [ | 2021 | SBR | 信号/双站ISAR | 2D-IFFT | SSIM分类 |
| [ | 2021 | SBR+PTD | 信号/RFPC | RD\ | 视觉分析 |
| [ | 2022 | PO+ SBR+ PTD | 信号/RFPC | RD | COSS、RCS分析 |
| [ | 2023 | SBR+MEC+KA | 相关系数、RCS分析 |
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