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arxiv: 0804.3647 · v1 · pith:ONYG2LI4new · submitted 2008-04-23 · 🧮 math.OC · math.NA

On The Behavior of Subgradient Projections Methods for Convex Feasibility Problems in Euclidean Spaces

classification 🧮 math.OC math.NA
keywords convexbehaviorcasecomputationalfeasibilityinconsistentmethodsprojections
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We study some methods of subgradient projections for solving a convex feasibility problem with general (not necessarily hyperplanes or half-spaces) convex sets in the inconsistent case and propose a strategy that controls the relaxation parameters in a specific self-adapting manner. This strategy leaves enough user-flexibility but gives a mathematical guarantee for the algorithm's behavior in the inconsistent case. We present numerical results of computational experiments that illustrate the computational advantage of the new method.

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