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Super-Resolution of Remotely Sensed Images With Variable-Pixel Linear Reconstruction

机译:可变像素线性重构的遥感图像超分辨率

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This paper describes the development and applications of a super-resolution method, known as Super-Resolution Variable-Pixel Linear Reconstruction. The algorithm works combining different lower resolution images in order to obtain, as a result, a higher resolution image. We show that it can make significant spatial resolution improvements to satellite images of the Earth's surface allowing recognition of objects with size approaching the limiting spatial resolution of the lower resolution images. The algorithm is based on the Variable-Pixel Linear Reconstruction algorithm developed by Fruchter and Hook, a well-known method in astronomy but never used for Earth remote sensing purposes. The algorithm preserves photometry, can weight input images according to the statistical significance of each pixel, and removes the effect of geometric distortion on both image shape and photometry. In this paper, we describe its development for remote sensing purposes, show the usefulness of the algorithm working with images as different to the astronomical images as the remote sensing ones, and show applications to: 1) a set of simulated multispectral images obtained from a real Quickbird image; and 2) a set of multispectral real Landsat Enhanced Thematic Mapper Plus (ETM+) images. These examples show that the algorithm provides a substantial improvement in limiting spatial resolution for both simulated and real data sets without significantly altering the multispectral content of the input low-resolution images, without amplifying the noise, and with very few artifacts.
机译:本文介绍了一种称为超分辨率可变像素线性重建的超分辨率方法的开发和应用。该算法将不同的低分辨率图像组合在一起,从而获得高分辨率图像。我们表明,它可以显着提高地球表面卫星图像的空间分辨率,从而可以识别尺寸接近低分辨率图像极限空间分辨率的物体。该算法基于Fruchter和Hook开发的可变像素线性重建算法,该算法是天文学中的一种著名方法,但从未用于地球遥感。该算法保留了测光法,可以根据每个像素的统计显着性对输入图像进行加权,并且消除了几何失真对图像形状和测光法的影响。在本文中,我们描述了其用于遥感目的的发展,展示了该算法用于处理与天文图像不同的图像(如遥感图像)的有用性,并展示了其在以下方面的应用:1)从卫星获得的一组模拟多光谱图像真实的Quickbird图片;和2)一组多光谱真实Landsat增强型主题映射器(ETM +)图像。这些示例表明,该算法在限制模拟和实际数据集的空间分辨率方面提供了显着改进,而不会显着更改输入的低分辨率图像的多光谱内容,而不会放大噪声,并且伪像很少。

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