arXiv:2601.12682cs.CV2026-01被引 9

用融合修复技术提升高温下图像质量,降低变形测量误差。

Fusion-Restoration Image Processing Algorithm to Improve the High-Temperature Deformation Measurement

  • 分层分解图像正负通道,通过多曝光融合抑制热辐射干扰。
  • 结合FSIM优化与灰度均值算法,使ε_xx误差降低85.3%。
  • 适合高温结构变形测量场景,尤其适用于复杂光照条件。

在高温结构的变形测量中,热辐射导致的图像退化以及热雾引入的随机误差限制了数字图像相关法(DIC)的精度与有效性。为抑制热辐射与热雾影响,提出一种融合-修复图像处理方法。针对热辐射引起的图像退化,基于图像分层表示,将图像分解为正负通道并行处理,再通过多曝光图像融合优化质量;为抑制热雾引入的高频随机误差,采用FSIM作为目标函数指导模型参数迭代优化,并结合灰度平均算法校正异常灰度值,从而降低测量误差。实验表明,该多曝光融合算法有效抑制复杂光照下的图像退化,使欠曝图像的有效计算区域从26%提升至50%,过曝图像从32%提升至40%,且不降低测量精度。结合灰度平均算法的图像修复显著减少静态热变形测量误差:ε_xx误差降低85.3%,ε_yy和γ_xy误差分别降低36.0%与36.4%。实验验证了该方法能有效提升图像质量、降低变形测量误差,具有在热变形测量中的应用潜力。

原文摘要 · Abstract (English)

In the deformation measurement of high-temperature structures, image degradation caused by thermal radiation and random errors introduced by heat haze restrict the accuracy and effectiveness of deformation measurement. To suppress thermal radiation and heat haze using fusion-restoration image processing methods, thereby improving the accuracy and effectiveness of DIC in the measurement of high-temperature deformation. For image degradation caused by thermal radiation, based on the image layered representation, the image is decomposed into positive and negative channels for parallel processing, and then optimized for quality by multi-exposure image fusion. To counteract the high-frequency, random errors introduced by heat haze, we adopt the FSIM as the objective function to guide the iterative optimization of model parameters, and the grayscale average algorithm is applied to equalize anomalous gray values, thereby reducing measurement error. The proposed multi-exposure image fusion algorithm effectively suppresses image degradation caused by complex illumination conditions, boosting the effective computation area from 26% to 50% for under-exposed images and from 32% to 40% for over-exposed images without degrading measurement accuracy in the experiment. Meanwhile, the image restoration combined with the grayscale average algorithm reduces static thermal deformation measurement errors. The error in ε_xx is reduced by 85.3%, while the errors in ε_yy and γ_xy are reduced by 36.0% and 36.4%, respectively. We present image processing methods to suppress the interference of thermal radiation and heat haze in high-temperature deformation measurement using DIC. The experimental results verify that the proposed method can effectively improve image quality, reduce deformation measurement errors, and has potential application value in thermal deformation measurement.

图像修复高温测量DIC多曝光

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