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Interpolation of Multispectral Images Based on Convolution with the Geodesic Distance Kernel and Quality Estimation Using the Structural Similarity Index Criterion

机译:基于测地距离核卷积的多光谱图像插值和结构相似指数准则的质量估计

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摘要

The convolution kernel based on the geodesic distance has many advantages because it admits recursive computation and, therefore, fast image processing. Besides, the interpolation quality in some channels increases in the presence of additional image channels with a higher resolution as compared to the interpolated image layer, which is important for solution of the problem of multispectral image interpolation. In this paper, the quality is estimated using several criteria, in particular, the structural similarity index. In the experimental part of the paper, the evident advantage of the proposed interpolation over traditional methods (in particular, the bicubic and bilinear interpolation) is shown.
机译:基于测地距离的卷积核具有许多优势,因为它允许递归计算,因此可以进行快速图像处理。此外,与插值图像层相比,在存在具有更高分辨率的附加图像通道的情况下,某些通道中的插值质量会提高,这对于解决多光谱图像插值问题很重要。在本文中,使用几种标准(尤其是结构相似性指标)来评估质量。在本文的实验部分,显示了所建议的插值相对于传统方法(特别是双三次和双线性插值)的明显优势。

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