系统仿真学报 ›› 2026, Vol. 38 ›› Issue (7): 1783-1800.doi: 10.16182/j.issn1004731x.joss.25-1221
• 综述 • 下一篇
李庚鹏, 蔡伟, 杨志勇, 张志利, 王晓伟
收稿日期:2025-12-12
修回日期:2026-04-01
出版日期:2026-07-28
发布日期:2026-07-31
通讯作者:
蔡伟
第一作者简介:李庚鹏(1995-),女,博士生,研究方向为光电防护。
Li Gengpeng, Cai Wei, Yang Zhiyong, Zhang Zhili, Wang Xiaowei
Received:2025-12-12
Revised:2026-04-01
Online:2026-07-28
Published:2026-07-31
Contact:
Cai Wei
摘要:
偏振图像仿真技术是突破偏振数据获取瓶颈、推动偏振视觉发展的关键手段。系统论述了该技术的3种演进范式:物理机理仿真基于偏振双向反射分布函数与偏振光线追踪严格求解偏振光传输,具有高可解释性与可信度,但计算复杂,视觉真实感不足;数据驱动仿真借助神经辐射场等模型从数据中学习偏振外观,生成效率高、视觉逼真,但物理一致性与可解释性较弱;物理-数据融合仿真则通过可微分渲染将物理约束嵌入数据驱动模型,兼顾物理正确性与视觉真实性。总结了3种仿真范式的代表性工作,对比分析了不同范式的仿真性能及适用场景,梳理了相关数据集与仿真评价指标,并探讨了3种范式当前面临的挑战与未来发展方向。
中图分类号:
李庚鹏,蔡伟,杨志勇等 . 偏振图像仿真技术的演进与展望[J]. 系统仿真学报, 2026, 38(7): 1783-1800.
Li Gengpeng,Cai Wei,Yang Zhiyong,et al . Evolution and Prospects of Polarization Image Simulation Technology[J]. Journal of System Simulation, 2026, 38(7): 1783-1800.
表1
偏振成像数据集分析物理机理仿真的基本方法流程及难点
| 主要步骤 | 意义 | 难点 | 示例 |
|---|---|---|---|
| 三维建模 | 为偏振光线追踪提供几何基础;支持复杂表面法向量计算 | 真实世界的复杂性可能导致模型过于复杂,也存在模型过于简化导致逼真度不足 | ![]() |
| ↓ | |||
| 偏振仿真计算 | 通过求解偏振特性方程,将三维场景的几何属性与物理属性转化为偏振量 | 光-物作用偏振建模复杂;准确的材质偏振参数获取困难 | ![]() |
| ↓ | |||
| 偏振光线追踪 | 通过光线追踪模拟偏振光在复杂环境中的多次反射过程,生成中间偏振图像数据 | 在不牺牲结果准确性前提下提高计算速度和效率 | ![]() |
| ↓ | |||
| 偏振可视化 | 利用偏振渲染方程得到不同像素处的斯托克斯矢量图像及偏振度图像、偏振角图像等 | 如何有效呈现大量偏振图像数据,同时保持结果的清晰度和可解释性 | ![]() |
表3
偏振成像数据集分析
| 数据集 | 偏振态 | 波段数 | 场景数量 | 场景多样性 |
|---|---|---|---|---|
| SfP-Wild Dataset [ | LP | 1 | 522 | 户外场景 |
| UCLA DeepSfP [ | LP | 1 | 300 | 室内物体 |
| IRIMAS [ | LP | 6 | 10 | 室内物体 |
| KAUST [ | LP | 3 | 40 | 室内物体 |
| PANDORA [ | LP | 3 | 3/2 | 室内多视角/合成多视角 |
| Polarimetric Pose Dataset [ | LP | 3 | 6 | 室内多视角 |
| PolarRR [ | LP | 3 | 807 | 高反光物体 |
| MCubeS [ | LP | 3 | 500 | 户外场景 |
| Synthetic Dataset [ | LP | 3 | 44 300 | 合成场景 |
| Unpol-Pol Image Pairs Dataset [ | LP | 3 | 3 200 | 高反光物体 |
| RGBP-Glass Dataset [ | LP | 3 | 4 500 | 透明物体 |
| Sparse Polarization Dataset [ | LP | 3 | 2 000 | 室内/户外场景 |
| FSPMI [ | LP, CP | 18 | 67 | 平面物体 |
| NeSpoF [ | LP, CP | 21/21 | 4 | 合成多视角/室内户外视角 |
| Spectro-polarimetric Real-world Dataset [ | LP, CP | 3/21 | 2 022/311 | 室内/户外视角 |
表4
偏振图像仿真范式综合性能对比
| 方法类型 | 驱动核心 | 性能评估 | 适用场景 | 发展方向 |
|---|---|---|---|---|
| 物理机理仿真 | 物理模型 | 物理正确;可解释性强;计算昂贵;视觉真实感不足 | 光电系统原始设计;遥感载荷性能前期仿真;基础偏振光学机理研究 | 发展更高效的渲染算法;构建更精细的微面元模型;开发大规模的材质参数数据库 |
| 数据驱动仿真 | 真实数据 | 视觉真实;生成效率高;物理一致性弱;可解释性差 | 计算机视觉算法(如目标检测、分割);物理参数难以获取的复杂外观合成场景 | 探索更高效的生成模型;研究小样本/弱监督学习方法 |
| 物理-数据融合仿真 | 物理建模+ 真实数据 | 物理正确;视觉真实;可编辑/可泛化;系统设计复杂 | 数字孪生系统;逆向工程;军事对抗仿真;自动驾驶仿真 | 开发更高效的隐式物理表达;物理模型与数据驱动的深度耦合;统一的、可微的仿真优化框架 |
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