具有各向异性特征的遥感影像的超分辨率研究

W. Czaja, James M. Murphy, Daniel Weinberg
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引用次数: 8

摘要

研究了遥感图像的超分辨率问题。我们的目标是开发一种算法,在不引入伪影或模糊的情况下有效地提高图像的分辨率,并且不使用任何额外的信息,例如同一场景的不同模态图像或同一图像在较低分辨率下的亚像素偏移。本文开发的方法是基于对待超分辨图像中存在的方向性特征的分析。为了有效地捕获图像中的方向信息,采用了shearlet的谐波分析技术,然后用于提供更高分辨率的平滑,准确的图像。将该算法与双三次插值的标准超分辨率方法进行了比较。我们在密西西比州格尔夫波特的遥感图像上测试我们的算法。我们的结果表明,与双三次插值相比,基于shearlet的超分辨率算法具有优越的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Superresolution of remotely sensed images with anisotropic features
We consider the problem of superresolution for remotely sensed images. Our ambition is to develop an algorithm that efficiently increases the resolution of an image without introducing artifacts or blurring, and without using any additional information, such as images of the same scene in different modalities or sub-pixel shifts of the same image at lower resolutions. The approach developed in this article is based on analysis of the directional features present in the image that is to be superesolved. The harmonic analytic technique of shearlets is employed in order to efficiently capture the directional information present in the image, which is then used to provide smooth, accurate images at higher resolutions. Our algorithm is compared to the standard superresolution method of bicubic interpolation. We test our algorithm on a remotely sensed image of Gulfport, Mississippi. Our results indicate the superior performance of shearlet-based superresolution algorithms, compared to bicubic interpolation.
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