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Primal Heuristics for Branch and Price: The Assets of Diving Methods

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  • Ruslan Sadykov

    (Institute of Mathematics, University of Bordeaux, 33400 Talence, France, Inria Bordeaux Sud-Ouest Research Center, 33400 Talence, France)

  • François Vanderbeck

    (Institute of Mathematics, University of Bordeaux, 33400 Talence, France, Inria Bordeaux Sud-Ouest Research Center, 33400 Talence, France)

  • Artur Pessoa

    (Nú ucleo de Logistica Integrada e Sistemas LOGIS, Universidade Federal Fluminense, Niteró oi 24220-900, Brazil)

  • Issam Tahiri

    (Institute of Mathematics, University of Bordeaux, 33400 Talence, France, Inria Bordeaux Sud-Ouest Research Center, 33400 Talence, France)

  • Eduardo Uchoa

    (Nú ucleo de Logistica Integrada e Sistemas LOGIS, Universidade Federal Fluminense, Niteró oi 24220-900, Brazil)

Abstract

Primal heuristics have become essential components in mixed integer programming (MIP) solvers. Extending MIP-based heuristics, our study outlines generic procedures to build primal solutions in the context of a branch-and-price approach and reports on their performance. Our heuristic decisions carry on variables of the Dantzig–Wolfe reformulation, the motivation being to take advantage of a tighter linear programming relaxation than that of the original compact formulation and to benefit from the combinatorial structure embedded in these variables. We focus on the so-called diving methods that use reoptimization after each linear programming rounding. We explore combinations with diversification-intensification paradigms such as limited discrepancy search , sub-MIP , local branching , and strong branching . The dynamic generation of variables inherent to a column generation approach requires specific adaptation of heuristic paradigms. We manage to use simple strategies to get around these technical issues. Our numerical results on generalized assignment, cutting stock, and vertex-coloring problems set new benchmarks, highlighting the performance of diving heuristics as generic procedures in a column generation context and producing better solutions than state-of-the-art specialized heuristics in some cases.

Suggested Citation

  • Ruslan Sadykov & François Vanderbeck & Artur Pessoa & Issam Tahiri & Eduardo Uchoa, 2019. "Primal Heuristics for Branch and Price: The Assets of Diving Methods," INFORMS Journal on Computing, INFORMS, vol. 31(2), pages 251-267, April.
  • Handle: RePEc:inm:orijoc:v:31:y:2019:i:2:p:251-267
    DOI: 10.1287/ijoc.2018.0822
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    18. Meersman, Tine & Maenhout, Broos & Van Herck, Koen, 2023. "A nested Benders decomposition-based algorithm to solve the three-stage stochastic optimisation problem modeling population-based breast cancer screening," European Journal of Operational Research, Elsevier, vol. 310(3), pages 1273-1293.
    19. Rigo, Cezar Antônio & Seman, Laio Oriel & Camponogara, Eduardo & Morsch Filho, Edemar & Bezerra, Eduardo Augusto & Munari, Pedro, 2022. "A branch-and-price algorithm for nanosatellite task scheduling to improve mission quality-of-service," European Journal of Operational Research, Elsevier, vol. 303(1), pages 168-183.
    20. Justkowiak, Jan-Erik & Pesch, Erwin, 2023. "A column generation driven heuristic for order-scheduling and rack-sequencing in robotic mobile fulfillment systems," Omega, Elsevier, vol. 120(C).
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    22. Babak Akbarzadeh & Ghasem Moslehi & Mohammad Reisi-Nafchi & Broos Maenhout, 2020. "A diving heuristic for planning and scheduling surgical cases in the operating room department with nurse re-rostering," Journal of Scheduling, Springer, vol. 23(2), pages 265-288, April.

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