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Perfect blind restoration of images blurred by multiple filters: theory and efficient algorithms

机译:由多个滤镜模糊化的图像的完美盲恢复:理论和高效算法

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We address the problem of restoring an image from its noisy convolutions with two or more unknown finite impulse response (FIR) filters. We develop theoretical results about the existence and uniqueness of solutions, and show that under some generically true assumptions, both the filters and the image can be determined exactly in the absence of noise, and stably estimated in its presence. We present efficient algorithms to estimate the blur functions and their sizes. These algorithms are of two types, subspace-based and likelihood-based, and are extensions of techniques proposed for the solution of the multichannel blind deconvolution problem in one dimension. We present memory and computation-efficient techniques to handle the very large matrices arising in the two-dimensional (2-D) case. Once the blur functions are determined, they are used in a multichannel deconvolution step to reconstruct the unknown image. The theoretical and practical implications of edge effects, and "weakly exciting" images are examined. Finally, the algorithms are demonstrated on synthetic and real data.
机译:我们解决了使用两个或多个未知有限冲激响应(FIR)滤波器从噪声卷积中恢复图像的问题。我们开发了有关解的存在性和唯一性的理论结果,并表明在一些普遍正确的假设下,可以在没有噪声的情况下精确确定滤波器和图像,并在存在噪声的情况下稳定地估计滤波器和图像。我们提出了有效的算法来估计模糊函数及其大小。这些算法是基于子空间和基于似然的两种类型,并且是为解决一维多通道盲解卷积问题而提出的技术的扩展。我们提出了内存和计算效率高的技术来处理在二维(2-D)情况下出现的非常大的矩阵。一旦确定了模糊函数,就可以在多通道反卷积步骤中使用它们来重建未知图像。研究了边缘效应和“弱刺激”图像的理论和实践意义。最后,对合成和真实数据进行了算法演示。

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