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Optimal Inversion of the Generalized Anscombe Transformation for Poisson-Gaussian Noise

机译:泊松-高斯噪声的广义Anscombe变换的最优反演

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摘要

Many digital imaging devices operate by successive photon-to-electron, electron-to-voltage, and voltage-to-digit conversions. These processes are subject to various signal-dependent errors, which are typically modeled as Poisson-Gaussian noise. The removal of such noise can be effected indirectly by applying a variance-stabilizing transformation (VST) to the noisy data, denoising the stabilized data with a Gaussian denoising algorithm, and finally applying an inverse VST to the denoised data. The generalized Anscombe transformation (GAT) is often used for variance stabilization, but its unbiased inverse transformation has not been rigorously studied in the past. We introduce the exact unbiased inverse of the GAT and show that it plays an integral part in ensuring accurate denoising results. We demonstrate that this exact inverse leads to state-of-the-art results without any notable increase in the computational complexity compared to the other inverses. We also show that this inverse is optimal in the sense that it can be interpreted as a maximum likelihood inverse. Moreover, we thoroughly analyze the behavior of the proposed inverse, which also enables us to derive a closed-form approximation for it. This paper generalizes our work on the exact unbiased inverse of the Anscombe transformation, which we have presented earlier for the removal of pure Poisson noise.
机译:许多数字成像设备通过连续的光子到电子,电子到电压和电压到数字的转换来操作。这些过程会遇到各种与信号有关的误差,这些误差通常被建模为泊松-高斯噪声。可以通过对有噪声的数据应用方差稳定化变换(VST),使用高斯去噪算法对稳定的数据进行去噪,最后对经过去噪的数据应用反VST来间接实现此类噪声的去除。广义Anscombe变换(GAT)通常用于方差稳定化,但过去对其严格的逆变换没有进行严格的研究。我们介绍了GAT的精确无偏逆,并证明了它在确保精确去噪结果中起着不可或缺的作用。我们证明,与其他逆相比,这种精确的逆导致最新技术的结果,而在计算复杂性上却没有任何明显的增加。我们还表明,在可以将其解释为最大似然逆的意义上,该逆是最优的。此外,我们彻底分析了所提出的逆函数的行为,这也使我们能够推导出它的闭式近似。本文概括了我们在Anscombe变换的精确无偏逆方面的工作,我们在前面已经提出了该问题,用于去除纯Poisson噪声。

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