Image reconstruction is often converted to the nonrestraint extremum of the nonlinear equations.We have deduced a conjugate gradient algorithm from the extremum of norm.
图像重建常常被转化为解非线性无约束极值问题,通过范数极小化推导出共轭梯度法的一般算法。
单词 | Conjugate gradient algorithm |
释义 |
Conjugate gradient algorithm
英语例句库
Image reconstruction is often converted to the nonrestraint extremum of the nonlinear equations.We have deduced a conjugate gradient algorithm from the extremum of norm. 图像重建常常被转化为解非线性无约束极值问题,通过范数极小化推导出共轭梯度法的一般算法。
中文百科
共轭梯度法 Conjugate gradient method(重定向自Conjugate gradient algorithm)
共轭梯度法(英语:Conjugate gradient method),是求解数学特定线性方程组的数值解的方法,其中那些矩阵为对称和正定。共轭梯度法是一个迭代方法,它适用于稀疏矩阵线性方程组,因为这些系统对于像Cholesky分解这样的直接方法太大了。这种方程组在数值求解偏微分方程时很常见。 共轭梯度法也可以用于求解无约束的最优化问题。 双共轭梯度法提供了一种处理非对称矩阵情况的推广。
英语百科
Conjugate gradient method 共轭梯度法(重定向自Conjugate gradient algorithm)
![]() ![]() In mathematics, the conjugate gradient method is an algorithm for the numerical solution of particular systems of linear equations, namely those whose matrix is symmetric and positive-definite. The conjugate gradient method is often implemented as an iterative algorithm, applicable to sparse systems that are too large to be handled by a direct implementation or other direct methods such as the Cholesky decomposition. Large sparse systems often arise when numerically solving partial differential equations or optimization problems. |
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