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Global Optimization by Basin-Hopping and the Lowest Energy Structures of Lennard-Jones Clusters Containing up to 110 Atoms

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We describe a global optimization technique using `basin-hopping' in which the potential energy surface is transformed into a collection of interpenetrating staircases. This method has been designed to exploit the features which recent work suggests must be present in an energy landscape for efficient relaxation to the global minimum. The transformation associates any point in configuration space with the local minimum obtained by a geometry optimization started from that point, effectively removing transition state regions from the problem. However, unlike other methods based upon hypersurface deformation, this transformation does not change the global minimum. The lowest known structures are located for all Lennard-Jones clusters up to 110 atoms, including a number that have never been found before in unbiased searches.

David Wales, Jonathan Doye• 1998

Related benchmarks

TaskDatasetResultRank
Mode recoveryDixon-Price Group B (d=8)
Mode Recovery Rate100
10
Global OptimizationGriewank n=10
Mean Function Evaluations1.41e+4
9
Mode recoveryRosenbrock Group B (d=2)
Mode Recovery Rate100
5
Mode recoveryGroup B: Trid d=32
Mode Recovery Rate100
5
Mode recoveryTrid Group B d=64
Mode Recovery Rate100
5
Global OptimizationLevy d=8
Mean Time (s)21.3
5
Global OptimizationRot. Hyper-Ellipsoid d=8
Mean Wall-Clock Time (s)23.4
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Mode recoveryRosenbrock Group B (d=8)
Mode Recovery Rate90
5
Mode recoveryRosenbrock Group B d=32
Mode Recovery Rate100
5
Mode recoveryRosenbrock Group B (d=64)
Mode Recovery Rate100
5
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