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Noise modeling and estimation in image sequences from thermal infrared cameras

机译:红外热像仪图像序列中的噪声建模和估计

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In this paper we present an automated procedure devised to measure noise variance and correlation from a sequence, either temporal or spectral, of digitized images acquired by an incoherent imaging detector. The fundamental assumption is that the noise is signal-independent and stationary in each frame, but may be non-stationary across the sequence of frames. The idea is to detect areas within bivariate scatterplots of local statistics, corresponding to statistically homogeneous pixels. After that, the noise PDF, modeled as a parametric generalized Gaussian function, is estimated from homogeneous pixels. Results obtained applying the noise model to images taken by an IR camera operated in different environmental conditions are presented and discussed. They demonstrate that the noise is heavy-tailed (tails longer than those of a Gaussian PDF) and spatially autocorrelated. Temporal correlation has been investigated as well and found to depend on the frame rate and, by a small extent, on the wavelength of the thermal radiation.
机译:在本文中,我们提出了一种自动程序,该程序旨在测量由非相干成像检测器获取的数字化图像序列(时间序列或频谱序列)的噪声方差和相关性。基本假设是,噪声在每个帧中与信号无关且固定,但在整个帧序列中可能是非平稳的。这个想法是要检测局部统计数据的双变量散点图中的区域,该区域对应于统计上均一的像素。此后,从均质像素估计建模为参数化广义高斯函数的噪声PDF。提出并讨论了将噪声模型应用于在不同环境条件下操作的红外摄像机拍摄的图像所获得的结果。他们证明了噪声是重尾的(尾部比高斯PDF的尾部更长)并且在空间上是自相关的。还已经研究了时间相关性,发现时间相关性取决于帧速率,并在很小程度上取决于热辐射的波长。

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