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Multicanonical jump walking: A method for efficiently sampling rough energy landscapes

机译:多规范跳步:一种有效采样粗糙能量景观的方法

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摘要

The multicanonical sampling and jump walking methods are combined to provide a new, effective means of overcoming quasiergodicity in Monte Carlo simulations. In this new method, configurations generated during a long multicanonical sampling are stored infrequently and a modified jump walking procedure is implemented using this set of configurations to sample phase space at low temperature. Multicanonical jump walking, as this new method is called, is compared with regular jump walking and with straight multicanonical ensemble sampling on two systems: a one-dimensional random potential and an Ar_(13) cluster. It is shown that for the same number of MC steps, the multicanonical jump walking method more efficiently samples the phase space than either the regular jump walking or the pure multicanonical ensemble sampling method.
机译:多规范采样和跳跃步行方法相结合,为克服蒙特卡洛模拟中的拟定性提供了一种新的有效手段。在这种新方法中,不经常存储在长时间的多规范采样中生成的配置,并且使用该组配置在低温下对相空间进行采样,从而实现了改进的跳跃步行程序。将这种新方法称为多规范跳步,与常规跳步和在两个系统上的直接多规范集成采样进行比较:一维随机势和Ar_(13)簇。结果表明,对于相同数量的MC步,与常规跳步法或纯多规范集采样法相比,多规范跳步法更有效地采样相空间。

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