نتایج جستجو برای: conjugate gradient

تعداد نتایج: 163423  

Journal: :SIAM Journal on Scientific Computing 2016

2011
SAHAR KARIMI

In this paper we present a variant of the conjugate gradient (CG) algorithm in which we invoke a subspace minimization subproblem on each iteration. We call this algorithm CGSO for “conjugate gradient with subspace optimization”. It is related to earlier work by Nemirovsky and Yudin. We apply the algorithm to solve unconstrained strictly convex problems. As with other CG algorithms, the update ...

2003
Nicol N. Schraudolph Thore Graepel

The method of conjugate directions provides a very effective way to optimize large, deterministic systems by gradient descent. In its standard form, however, it is not amenable to stochastic approximation of the gradient. Here we explore ideas from conjugate gradient in the stochastic (online) setting, using fast Hessian-gradient products to set up low-dimensional Krylov subspaces within indivi...

2002
Nicol N. Schraudolph Thore Graepel

The method of conjugate gradients provides a very effective way to optimize large, deterministic systems by gradient descent. In its standard form, however, it is not amenable to stochastic approximation of the gradient. Here we explore ideas from conjugate gradient in the stochastic (online) setting, using fast Hessian-gradient products to set up low-dimensional Krylov subspaces within individ...

Journal: :CoRR 2018
Jon Cockayne Chris J. Oates Mark A. Girolami

A fundamental task in numerical computation is the solution of large linear systems. The conjugate gradient method is an iterative method which offers rapid convergence to the solution, particularly when an effective preconditioner is employed. However, for more challenging systems a substantial error can be present even after many iterations have been performed. The estimates obtained in this ...

Journal: :Numerische Mathematik 1997

1997
Jocelyne Erhel

Many scientiic applications require to solve successively linear systems Ax = b with diierent right-hand sides b and a symmetric positive deenite matrix A. The Conjugate Gradient method applied to the rst system generates a Krylov subspace which can be eeciently recycled thanks to orthogonal projections in subsequent systems. A modiied Conjugate Gradient method is then applied with a speciic in...

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