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Improving the Approximated Projected Perspective Reformulation by dual information

Academic Article
Publication Date:
2017
abstract:
We propose an improvement of the Approximated Projected Perspective Reformulation (AP(2)R) for dealing with constraints linking the binary variables. The new approach solves the Perspective Reformulation (PR) once, and then use the corresponding dual information to reformulate the problem prior to applying AP(2)R, thereby combining the root bound quality of the PR with the reduced relaxation computing time of AP(2)R. Computational results for the cardinality-constrained Mean-Variance portfolio optimization problem show that the new approach is competitive with state-of-the-art ones.
Iris type:
01.01 Articolo in rivista
Keywords:
Mixed-Integer Non-Linear Problems; Semi-continuous variables; Perspective reformulation; Projection; Lagrangian relaxation; Portfolio optimization
List of contributors:
Frangioni, Antonio; Gentile, Claudio; Furini, Fabio
Authors of the University:
GENTILE CLAUDIO
Handle:
https://iris.cnr.it/handle/20.500.14243/326302
Published in:
OPERATIONS RESEARCH LETTERS
Journal
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