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A planar single-facility competitive location and design problem under the multi-deterministic choice rule.

, , , , and . Comput. Oper. Res., (2017)

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On refinement of the unit simplex using regular simplices., , , and . J. Glob. Optim., 64 (2): 305-323 (2016)p-facility Huff location problem on networks., , , and . Eur. J. Oper. Res., 255 (1): 34-42 (2016)On Grid Aware Refinement of the Unit Hypercube and Simplex: Focus on the Complete Tree Size., , , , and . ICCSA (3), volume 10406 of Lecture Notes in Computer Science, page 165-180. Springer, (2017)Heuristics to Reduce the Number of Simplices in Longest Edge Bisection Refinement of a Regular n-Simplex., , , , and . ICCSA (2), volume 8580 of Lecture Notes in Computer Science, page 115-125. Springer, (2014)A Huff-like location model with quality adjustment and/or closing of existing facilities., , and . Eur. J. Oper. Res., 313 (3): 937-953 (March 2024)Characterizations of trajectory structure of fitness landscapes based on pairwise transition probabilities of solutions., , and . CEC, page 623-630. IEEE, (1999)Exact Methods for the Longest Induced Cycle Problem., , and . CoRR, (2023)Solving a Huff-like Stackelberg location problem on networks., and . J. Glob. Optim., 64 (2): 233-247 (2016)A planar single-facility competitive location and design problem under the multi-deterministic choice rule., , , , and . Comput. Oper. Res., (2017)On determining the cover of a simplex by spheres centered at its vertices., , , and . J. Glob. Optim., 50 (4): 645-655 (2011)