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Inverse Surfacelet Transform for Image Reconstruction With Constrained-Conjugate Gradient Methods

机译:约束共轭梯度法重建图像的逆小波变换

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Image reconstruction is the transformation process from a reduced-order representation to the original image pixel form. In materials characterization, it can be utilized as a method to retrieve material composition information. In our previous work, a surfacelet transform was developed to efficiently represent boundary information in material images with surfacelet coefficients. In this paper, new constrained-conjugate-gradient based image reconstruction methods are proposed as the inverse surfacelet transform. With geometric constraints on boundaries and internal distributions of materials, the proposed methods are able to reconstruct material images from surfacelet coefficients as either lossy or lossless compressions. The results between the proposed and other optimization methods for solving the least-square error inverse problems are compared.
机译:图像重建是从降阶表示到原始图像像素形式的转换过程。在材料表征中,它可以用作检索材料成分信息的方法。在我们以前的工作中,开发了小波变换以有效地表示具有小波系数的材料图像中的边界信息。本文提出了一种新的基于约束共轭梯度的图像重建方法,作为逆小波变换。借助对材料边界和内部分布的几何约束,所提出的方法能够根据小面系数将材料图像重建为有损或无损压缩。比较了所提出的和其他用于解决最小二乘误差反问题的优化方法的结果。

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