petsc-3.6.1 2015-08-06
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KSPGLTR

Code to run conjugate gradient method subject to a constraint on the solution norm. This is used in Trust Region methods for nonlinear equations, SNESNEWTONTR

Options Database Keys

-ksp_gltr_radius <r> -Trust Region Radius

Notes: This is rarely used directly

Use preconditioned conjugate gradient to compute an approximate minimizer of the quadratic function

q(s) = g^T * s + .5 * s^T * H * s

subject to the trust region constraint

|| s || <= delta,

where

delta is the trust region radius, g is the gradient vector, H is the Hessian approximation, M is the positive definite preconditioner matrix.

KSPConvergedReason may be

 KSP_CONVERGED_CG_NEG_CURVE if convergence is reached along a negative curvature direction,
 KSP_CONVERGED_CG_CONSTRAINED if convergence is reached along a constrained step,
 other KSP converged/diverged reasons

Notes

The preconditioner supplied should be symmetric and positive definite.

See Also

KSPCreate(), KSPSetType(), KSPType (for list of available types), KSP, KSPGLTRSetRadius(), KSPGLTRGetNormD(), KSPGLTRGetObjFcn(), KSPGLTRGetMinEig(), KSPGLTRGetLambda()

Level:developer
Location:
src/ksp/ksp/impls/cg/gltr/gltr.c
Index of all KSP routines
Table of Contents for all manual pages
Index of all manual pages