Copyright 2012 c ⃝ Chein-Shan Liu. This is an open access article distributed under the Creative Com-mons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. It is well known that the numerical algorithms of the steepest descent method (SDM), and the conjugate gradient method (CGM) are effective for solving well-posed linear systems. However, they are vulnerable to noisy disturbance for solving ill-posed linear systems. We propose the modifications of SDM and CGM, namely the modified steepest descent method (MSDM), and the modified conjugate gradient method (MCGM). The starting point is an invariant manifold defined in terms of a minimum functional ...
Optimization problems occur in most disciplines like engineering, physics, mathematics, economics, a...
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AbstractConjugate gradient type methods are discussed for unsymmetric and inconsistent system of equ...
It is known that the steepest-descent method converges normally at the first few iterations, and the...
Abstract: We propose novel algorithms to calculate the inverses of ill-conditioned matrices, which h...
This thesis examines the use of the method of Conjugate Gradients as an iterative method to be appli...
We consider stopping rules in conjugate gradient type iteration methods for solving linear ill‐posed...
Abstract: To solve an ill-conditioned system of linear algebraic equations (LAEs): Bx−b = 0, we defi...
A modified conjugate gradient algorithm is proposed which uses a gradient average window to pro-vide...
International audienceWe present a deflated version of the conjugate gradient algorithm for solving ...
The Steepest descent method and the Conjugate gradient method to minimize nonlinear functions have b...
In this paper we propose the use of damped techniques within Nonlinear Conjugate Gradient (NCG) meth...
The conjugate gradient method is one of the most popular methods to solve large-scale unconstrained ...
Abstract. This short note is on the derivation and convergence of a popular algorithm for minimizati...
We discuss linear system solvers invoking a messenger-field and compare them with (preconditioned) c...
Optimization problems occur in most disciplines like engineering, physics, mathematics, economics, a...
AbstractConjugate gradient methods are conjugate direction or gradient deflection methods which lie ...
AbstractConjugate gradient type methods are discussed for unsymmetric and inconsistent system of equ...
It is known that the steepest-descent method converges normally at the first few iterations, and the...
Abstract: We propose novel algorithms to calculate the inverses of ill-conditioned matrices, which h...
This thesis examines the use of the method of Conjugate Gradients as an iterative method to be appli...
We consider stopping rules in conjugate gradient type iteration methods for solving linear ill‐posed...
Abstract: To solve an ill-conditioned system of linear algebraic equations (LAEs): Bx−b = 0, we defi...
A modified conjugate gradient algorithm is proposed which uses a gradient average window to pro-vide...
International audienceWe present a deflated version of the conjugate gradient algorithm for solving ...
The Steepest descent method and the Conjugate gradient method to minimize nonlinear functions have b...
In this paper we propose the use of damped techniques within Nonlinear Conjugate Gradient (NCG) meth...
The conjugate gradient method is one of the most popular methods to solve large-scale unconstrained ...
Abstract. This short note is on the derivation and convergence of a popular algorithm for minimizati...
We discuss linear system solvers invoking a messenger-field and compare them with (preconditioned) c...
Optimization problems occur in most disciplines like engineering, physics, mathematics, economics, a...
AbstractConjugate gradient methods are conjugate direction or gradient deflection methods which lie ...
AbstractConjugate gradient type methods are discussed for unsymmetric and inconsistent system of equ...