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A signomial programming approach for binary image restoration by penalized least squares

机译:一种用惩罚最小二乘法进行二值图像复原的符号编程方法

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摘要

The authors present a novel optimization approach, using signomial programming (SP), to restore noise-corrupted binary and grayscale images. The approach requires the minimization of a penalized least squares functional over binary variables, which has led to the design of various approximation methods in the past. In this brief, we minimize the functional as a SP problem which is then converted into a reversed geometric programming (GP) problem and solved using standard GP solvers. Numerical experiments show that the proposed approach restores both degraded binary and grayscale images with good accuracy, and is over 20 times faster than the positive semidefinite programming approach. © 2007 IEEE.
机译:作者提出了一种使用信号编程(SP)的新颖的优化方法,以恢复损坏了噪声的二进制和灰度图像。该方法要求对二进制变量的最小化最小二乘泛函的最小化,这导致过去设计了各种近似方法。在本简介中,我们将函数SP问题最小化,然后将其转换为逆几何编程(GP)问题并使用标准GP解算器进行求解。数值实验表明,该方法能够很好地恢复退化的二进制图像和灰度图像,并且比正半定规划方法要快20倍以上。 ©2007 IEEE。

著录项

  • 作者

    Wong N; Lam EY; Shen Y;

  • 作者单位
  • 年度 2008
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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