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Weber problems with alternative transportation systems

Author

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  • Carrizosa, Emilio
  • Rodriguez-Chia, Antonio M.
Abstract
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Suggested Citation

  • Carrizosa, Emilio & Rodriguez-Chia, Antonio M., 1997. "Weber problems with alternative transportation systems," European Journal of Operational Research, Elsevier, vol. 97(1), pages 87-93, February.
  • Handle: RePEc:eee:ejores:v:97:y:1997:i:1:p:87-93
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    References listed on IDEAS

    as
    1. Durier, Roland & Michelot, Christian, 1985. "Geometrical properties of the Fermat-Weber problem," European Journal of Operational Research, Elsevier, vol. 20(3), pages 332-343, June.
    2. repec:cor:louvrp:-683 is not listed on IDEAS
    3. Rosing, K. E., 1992. "An optimal method for solving the (generalized) multi-Weber problem," European Journal of Operational Research, Elsevier, vol. 58(3), pages 414-426, May.
    4. Plastria, F., 1984. "Localization in single facility location," European Journal of Operational Research, Elsevier, vol. 18(2), pages 215-219, November.
    5. Odoni, Amedeo R. & Sadiq, Ghazala, 1982. "Two planar facility location problems with high-speed corridors and continuous demand," Regional Science and Urban Economics, Elsevier, vol. 12(4), pages 467-484, November.
    6. Plastria, Frank, 1992. "GBSSS: The generalized big square small square method for planar single-facility location," European Journal of Operational Research, Elsevier, vol. 62(2), pages 163-174, October.
    7. James G. Morris, 1981. "Convergence of the Weiszfeld Algorithm for Weber Problems Using a Generalized “Distance” Function," Operations Research, INFORMS, vol. 29(1), pages 37-48, February.
    Full references (including those not matched with items on IDEAS)

    Citations

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    Cited by:

    1. Frank Plastria, 2009. "Asymmetric distances, semidirected networks and majority in Fermat–Weber problems," Annals of Operations Research, Springer, vol. 167(1), pages 121-155, March.
    2. J. M. Díaz-Báñez & M. Korman & P. Pérez-Lantero & I. Ventura, 2016. "The 1-Center and 1-Highway problem revisited," Annals of Operations Research, Springer, vol. 246(1), pages 167-179, November.
    3. Mari'n, Alfredo & Canovas, Lazaro & Landete, Mercedes, 2006. "New formulations for the uncapacitated multiple allocation hub location problem," European Journal of Operational Research, Elsevier, vol. 172(1), pages 274-292, July.
    4. Franco, L. & Velasco, F. & Gonzalez-Abril, L. & Mesa, Juan A., 2018. "Single-facility location problems in two regions with ℓ1- and ℓq-norms separated by a straight line," European Journal of Operational Research, Elsevier, vol. 269(2), pages 577-589.
    5. Marco Botte, 2021. "Fixed gate point location problems," TOP: An Official Journal of the Spanish Society of Statistics and Operations Research, Springer;Sociedad de Estadística e Investigación Operativa, vol. 29(2), pages 547-582, July.
    6. Frank Plastria & Mohamed Elosmani, 2008. "On the convergence of the Weiszfeld algorithm for continuous single facility location–allocation problems," TOP: An Official Journal of the Spanish Society of Statistics and Operations Research, Springer;Sociedad de Estadística e Investigación Operativa, vol. 16(2), pages 388-406, December.
    7. Mark-Christoph Körner & Juan Mesa & Federico Perea & Anita Schöbel & Daniel Scholz, 2014. "A maximum trip covering location problem with an alternative mode of transportation on tree networks and segments," TOP: An Official Journal of the Spanish Society of Statistics and Operations Research, Springer;Sociedad de Estadística e Investigación Operativa, vol. 22(1), pages 227-253, April.
    8. Franco, L. & Velasco, F. & Gonzalez-Abril, L., 2012. "Gate points in continuous location between regions with different ℓp norms," European Journal of Operational Research, Elsevier, vol. 218(3), pages 648-655.
    9. Frank Plastria & Mohamed Elosmani, 2013. "Continuous location of an assembly station," TOP: An Official Journal of the Spanish Society of Statistics and Operations Research, Springer;Sociedad de Estadística e Investigación Operativa, vol. 21(2), pages 323-340, July.

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