A logarithmic-quadratic proximal point scalarization method for multiobjective programming

被引:0
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作者
Ronaldo Gregório
Paulo Roberto Oliveira
机构
[1] Federal Rural University of Rio de Janeiro,Technology and Languages Departament
[2] Federal University of Rio de Janeiro,Computing and Systems Engineering Department
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关键词
Proximal point algorithm; Scalar representations; Multiobjective programming;
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摘要
We present a proximal point method to solve multiobjective programming problems based on the scalarization for maps. We build a family of convex scalar strict representations of a convex map F from Rn  to  Rm with respect to the lexicographic order on Rm and we add a variant of the logarithmic-quadratic regularization of Auslender, where the unconstrained variables in the domain of F are introduced in the quadratic term. The nonegative variables employed in the scalarization are placed in the logarithmic term. We show that the central trajectory of the scalarized problem is bounded and converges to a weak pareto solution of the multiobjective optimization problem.
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页码:281 / 291
页数:10
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