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arxiv: math/9905199 · v1 · submitted 1999-05-01 · 🧮 math.OC · math.MG

Some fundamental properties of successive convex relaxation methods on LCP and related problems

classification 🧮 math.OC math.MG
keywords convexproblemsmethodscompactgenerallcpsrelatedrelaxation
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General Successive Convex Relaxation Methods (SRCMs) can be used to compute the convex hull of any compact set, in an Euclidean space, described by a system of quadratic inequalities and a compact convex set which is not very complicated. Linear Complementarity Problems (LCPs) make an interesting and rich class of structured nonconvex optimization problems. In this paper, we study a few of the specialized lift-and-project methods and some of the possible ways of applying the general SCRMs to LCPs and related problems.

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