A Fixed-Point Iteration Method With Quadratic Convergence

Author:

Walker K. P.1,Sham T.-L.2

Affiliation:

1. Engineering Science Software, Inc., Smithfield, RI 02917

2. Materials Science and Technology Division,Oak Ridge National Laboratory, Oak Ridge, TN 37831

Abstract

The fixed-point iteration algorithm is turned into a quadratically convergent scheme for a system of nonlinear equations. Most of the usual methods for obtaining the roots of a system of nonlinear equations rely on expanding the equation system about the roots in a Taylor series, and neglecting the higher order terms. Rearrangement of the resulting truncated system then results in the usual Newton-Raphson and Halley type approximations. In this paper the introduction of unit root functions avoids the direct expansion of the nonlinear system about the root, and relies, instead, on approximations which enable the unit root functions to considerably widen the radius of convergence of the iteration method. Methods for obtaining higher order rates of convergence and larger radii of convergence are discussed.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics

Reference9 articles.

1. Reference Alloy 617 Unified Viscoplastic Constitutive Equations in Three Dimensions;Sham;Report No. ORNL/TM-2009/216, Oak Ridge National Laboratory, Oak Ridge, Tennessee.

2. Ben-Israel, A. , 2009, “An Inverse Newton Transform,” Optimization Theory and Related Topics, to appear in S. Reich, and A. J. Zaslavski, eds., Contemporary Mathematics (2012).

3. Press, W. H., Teukolsky, S. A., Vetterling, W. T., and Flannery, B. P., 1992, Cambridge University Press, Oxford, pp. 34–40.

4. A Novel Approach to the Solution of Boundary-Layer Problems;Bender;Adv. Appl. Math.

5. Boundary-Layer Theory, Strong-Coupling Series, and Large-Order Behavior;Bender;J. Math. Phys.

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