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Robust image fusion using a statistical signal processing approach

机译:使用统计信号处理方法的稳健图像融合

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摘要

Image fusion is studied using a very basic and reasonable mathematical model for the observed images. The model attempts to characterize the statistical aspects of the problem, including the impact of random distortions, like noise. The image fusion problem is posed as an estimation problem where the best fusion algorithm minimizes the mean square error between the fused image and the true scene. The optimum image fusion approach is described for the case where all the parameters of the model are known. A robust image fusion approach is proposed for cases where various parameters of the model are unknown which may be the case in practice. It is shown that the robust image fusion approach will provide a mean square error which is always smaller than a given bound, thus limiting the loss from not knowing the exact model parameters. Further, our results imply that ignoring correlation between the noise from different sensors is a robust approach, a fact which has not been rigorously demonstrated elsewhere. Numerical results are presented which further verify the robustness of the proposed approach.
机译:使用非常基本和合理的数学模型对观察到的图像进行图像融合研究。该模型试图描述问题的统计方面,包括随机失真(如噪声)的影响。图像融合问题被视为一个估计问题,其中最佳融合算法将融合图像与真实场景之间的均方误差最小化。针对已知模型所有参数的情况,描述了最佳图像融合方法。针对模型的各种参数未知的情况,提出了一种鲁棒的图像融合方法,这在实践中可能是这种情况。结果表明,鲁棒的图像融合方法将提供均方误差,该均方误差总是小于给定的界限,从而限制了由于不知道确切的模型参数而造成的损失。此外,我们的结果表明,忽略来自不同传感器的噪声之间的相关性是一种可靠的方法,这一事实在其他地方尚未得到严格证明。数值结果表明,进一步验证了该方法的鲁棒性。

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