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Quantitative Evaluation of Turbulence Compensation

机译:湍流补偿的定量评估

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摘要

A well-known phenomena that diminishes the recognition range in infrared imagery is atmospheric turbulence, hi literature many methods are described that try to compensate for the distortions caused by atmospheric turbulence. Most of these methods use a global processing approach in which they assume a global shift and a uniform blurring in all frames. Because the effects of atmospheric turbulence are often spatial and temporal varying, we presented previous year a turbulence compensation method that performs local processing leading to excellent results, hi this paper an improvement of this method is presented which uses a temporal moving reference frame in order to be capable of processing imagery containing moving objects as well as blur estimation to obtain adaptive deconvolution. Furthermore our method is evaluated in a quantitative way, which will give a good insight in which components of our method contribute to the obtained visual improvements.
机译:减小红外图像中的识别范围的众所周知的现象是大气湍流。在文献中,描述了许多方法来尝试补偿由大气湍流引起的畸变。这些方法中的大多数使用全局处理方法,其中它们在所有帧中假设全局偏移和均匀模糊。由于大气湍流的影响通常随时间和空间而变化,因此我们在去年提出了一种湍流补偿方法,该方法可以进行局部处理,从而获得优异的效果。在本文中,提出了对该方法的改进,该方法使用了时间移动参考系,以便能够处理包含运动对象的图像以及模糊估计以获得自适应反卷积。此外,我们的方法以定量的方式进行了评估,这将为我们的方法的哪些成分有助于获得视觉效果提供一个很好的见解。

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