arXiv:2512.22474cs.CV2025-12

用事件相机实现高精度爆炸冲击波动态测量

Event-based high temporal resolution measurement of shock wave motion field

  • 多事件相机结合极坐标编码,实时捕捉冲击波不规则传播
  • 速度误差最低仅0.06%,最高5.20%,优于压力传感器与经验公式
  • 适合高速动态场景下的物理实验与爆炸效应评估

高时空分辨率准确测量冲击波运动参数对动力场测试和损伤评估至关重要。然而,冲击波传播速度快、不均匀,且测试条件不稳定,带来显著挑战。为此,提出一种新框架,利用多事件相机捕捉冲击波不对称性,充分发挥其高速响应和高动态范围优势。首先建立极坐标系,通过事件偏移计算实现自适应感兴趣区域提取;随后采用迭代斜率分析法提取冲击波前缘事件,利用速度变化连续性;最后基于事件视觉成像模型推导事件几何关系与运动参数,完成三维重建。该方法实现多角度冲击波测量、运动场重构及爆炸当量反演。速度测量结果与压力传感器及经验公式对比,最大误差5.20%,最小误差0.06%。实验表明,本方法在时空分辨率上均达到高精度,具有显著进展。

原文摘要 · Abstract (English)

Accurate measurement of shock wave motion parameters with high spatiotemporal resolution is essential for applications such as power field testing and damage assessment. However, significant challenges are posed by the fast, uneven propagation of shock waves and unstable testing conditions. To address these challenges, a novel framework is proposed that utilizes multiple event cameras to estimate the asymmetry of shock waves, leveraging its high-speed and high-dynamic range capabilities. Initially, a polar coordinate system is established, which encodes events to reveal shock wave propagation patterns, with adaptive region-of-interest (ROI) extraction through event offset calculations. Subsequently, shock wave front events are extracted using iterative slope analysis, exploiting the continuity of velocity changes. Finally, the geometric model of events and shock wave motion parameters is derived according to event-based optical imaging model, along with the 3D reconstruction model. Through the above process, multi-angle shock wave measurement, motion field reconstruction, and explosive equivalence inversion are achieved. The results of the speed measurement are compared with those of the pressure sensors and the empirical formula, revealing a maximum error of 5.20% and a minimum error of 0.06%. The experimental results demonstrate that our method achieves high-precision measurement of the shock wave motion field with both high spatial and temporal resolution, representing significant progress.

冲击波测量事件相机高精度动态重建

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