Restoration of Motion Blurred Images

Juwei Lu, Eunice Poon, Konstantinos N. Plataniotis · 2006

In this paper, we present several algorithms developed for restoration of motion blurred images. We begin with a single-image based deblurring approach in the case of linear constant motion. This approach is a wavelet-based method with a novel lp-norm regularization term. Due to the introduction of the wavelet and regularization techniques, the approach is rather robust against noise amplification during deconvolution. Then, we further developed a general multi-image based deblurring framework improved from recent works of Rav-Acha, A et al., (2005). The proposed framework is able to effectively take advantage of information contained in the multiple input images, even when they are blurred in the same direction-a case hard to be dealt with by traditional solutions. The proposed methods are evaluated on both simulated and real data, and the obtained experimental results indicate promising results

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