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Comparing Monte Carlo methods for finding ground states of Ising spin glasses: population annealing, simulated annealing and parallel tempering

机译:比较蒙特卡罗方法寻找伊辛旋转玻璃的基态:人口退火,模拟退火和平行回火

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摘要

Population annealing is a Monte Carlo algorithm that marries features from simulated annealing and parallel tempering Monte Carlo. As such, it is ideal to overcome large energy barriers in the free-energy landscape while minimizing a Hamiltonian. Thus, population annealing Monte Carlo can be used as a heuristic to solve combinatorial optimization problems. We illustrate the capabilities of population annealing Monte Carlo by computing ground states of the three-dimensional Ising spin glass with Gaussian disorder, whilst comparing to simulated annealing and parallel tempering Monte Carlo. Our results suggest that population annealing Monte Carlo is significantly more effiicient than simulated annealing but comparable to parallel tempering Monte Carlo for finding spin-glass ground states.
机译:总体退火是一种蒙特卡洛算法,它结合了模拟退火和并行回火蒙特卡洛的特征。因此,理想的是在使哈密顿量最小化的同时克服自由能领域中的大能量障碍。因此,群体退火蒙特卡洛可以用作启发式方法来解决组合优化问题。我们通过计算具有高斯无序的三维Ising自旋玻璃的基态,并与模拟退火和平行回火蒙特卡洛进行比较,说明了蒙特卡洛人口退火的能力。我们的结果表明,总体退火蒙特卡洛方法比模拟退火方法效率更高,但与平行回火蒙特卡洛方法相比,可以发现自旋玻璃基态。

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