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A Bayesian Approach to Denoising of Single-Photon Binary Images

机译:用于单光子二进制图像去噪的贝叶斯方法

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This paper discusses new methods for processing images in the photon-limited regime where the number of photons per pixel is binary. We present a new Bayesian denoising method for binary, single-photon images. Each pixel measurement is assumed to follow a Bernoulli distribution whose mean is related by a nonlinear function to the underlying intensity value to be recovered. Adopting a Bayesian approach, we assign the unknown intensity field a smoothness promoting spatial and potentially temporal prior while enforcing the positivity of the intensity. A stochastic simulation method is then used to sample the resulting joint posterior distribution and estimate the unknown intensity, as well as the regularization parameters. We show that this new unsupervised denoising method can also be used to analyze images corrupted by Poisson noise. The proposed algorithm is compared to state-of-the art denoising techniques dedicated to photon-limited images using synthetic and real single-photon measurements. The results presented illustrate the potential benefits of the proposed methodology for photon-limited imaging, in particular with non photon-number resolving detectors.
机译:本文讨论了在光子受限状态下处理图像的新方法,其中每个像素的光子数为二进制。我们为二进制,单光子图像提出了一种新的贝叶斯去噪方法。假定每个像素测量都遵循伯努利分布,其平均值通过非线性函数与要恢复的基础强度值相关。采用贝叶斯方法,我们为未知强度场分配一个平滑度,以促进空间和时间上的先验,同时增强强度的正性。然后使用随机模拟方法对所得的关节后部分布进行采样并估计未知强度以及正则化参数。我们表明,这种新的无监督降噪方法也可以用于分析受泊松噪声破坏的图像。使用合成的和实际的单光子测量结果,将所提出的算法与专用于光子受限图像的最新去噪技术进行比较。给出的结果说明了所提出的方法在光子受限成像中的潜在优势,特别是使用非光子数分辨探测器时。

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