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An efficient and robust multi-frame image super-resolution reconstruction using orthogonal Fourier-Mellin moments

机译:使用正交傅里叶-梅林矩的高效鲁棒多帧图像超分辨率重建

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Multi-frame image super-resolution (SR) has recently become an active area of research. The orthogonal rotation invariant moments (ORIMs) have several useful characteristics which make them very suitable for multi-frame image super-resolution application. Among the various ORIMs, Zernike moments (ZMs) and pseudo-Zernike moments (PZMs)-based SR approaches, i.e., NLM-ZMs and NLM-PZMs, have already shown improved SR performances for multi-frame image super-resolution. However, it is a well-known fact that among many ORIMs, orthogonal Fourier-Mellin moments (OFMMs) demonstrate better noise robustness and image representation capabilities for small images as compared to ZMs and PZMs. Therefore, in this paper, we propose a multi-frame image super-resolution approach using OFMMs. The proposed approach is based on the NLM framework because of its inherent capability of estimating motion implicitly. We have referred to this proposed approach as NLM-OFMMs-I. Also, a novel idea of using OFMMs-based interpolation in place of traditional Lanczos interpolation for obtaining an initial estimate of HR sequence has been presented in this paper. This variant of the proposed approach is referred to as NLM-OFMMs-II. Detailed experimental analysis demonstrates the effectiveness of the proposed OFMMs-based SR approaches to generate high-quality HR images in the presence of factors like image noise, global motion, local motion, and rotation in between the image frames.
机译:多帧图像超分辨率(SR)最近已成为研究的活跃领域。正交旋转不变矩(ORIM)具有几个有用的特性,这使其非常适合于多帧图像超分辨率应用。在各种ORIM中,基于Zernike矩(ZM)和伪Zernike矩(PZM)的SR方法(即NLM-ZM和NLM-PZM)已经显示出改善的多帧图像超分辨率SR性能。但是,众所周知的事实是,在许多ORIM中,与ZM和PZM相比,正交傅里叶-梅林矩(OFMM)对小图像具有更好的噪声鲁棒性和图像表示能力。因此,在本文中,我们提出了一种使用OFMM的多帧图像超分辨率方法。所提出的方法基于NLM框架,因为其固有的隐式估计运动的能力。我们将这种提议的方法称为NLM-OFMMs-I。此外,本文提出了一种新颖的思想,即使用基于OFMMs的插值代替传统的Lanczos插值来获得HR序列的初始估计。提议的方法的这种变体称为NLM-OFMMs-II。详细的实验分析表明,在存在诸如图像噪声,全局运动,局部运动以及图像帧之间的旋转等因素的情况下,基于OFMMs的SR方法在生成高质量HR图像方面是有效的。

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