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Long-Time Dynamics through Parallel Trajectory Splicing

机译:通过平行轨迹拼接实现长时间动态

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Simulating the atomistic evolution of materials over long time scales is a longstanding challenge, especially for complex systems where the distribution of barrier heights is very heterogeneous. Such systems are difficult to investigate using conventional long-time scale techniques, and the fact that they tend to remain trapped in small regions of configuration space for extended periods of time strongly limits the physical insights gained from short simulations. We introduce a novel simulation technique, Parallel Trajectory Splicing (Par Splice), that aims at addressing this problem through the timewise parallelization of long trajectories. The computational efficiency of Par Splice stems from a speculation strategy whereby predictions of the future evolution of the system are leveraged to increase the amount of work that can be concurrently performed at any one time, hence improving the scalability of the method. ParSplice is also able to accurately account for, and potentially reuse, a substantial fraction of the computational work invested in the simulation. We validate the method on a simple Ag surface system and demonstrate substantial increases in efficiency compared to previous methods. We then demonstrate the power of ParSplice through the study of topology changes in Ag42Cu13 core shell nanoparticles.
机译:长期模拟材料的原子演化是一项长期的挑战,特别是对于势垒高度分布非常不均匀的复杂系统。使用常规的长期规模技术很难研究此类系统,而且它们往往会长时间滞留在配置空间的较小区域中,这一事实严重限制了从短模拟中获得的物理见解。我们介绍了一种新颖的仿真技术,平行轨迹拼接(Par Splice),其目的是通过对长轨迹进行时间并行化来解决此问题。 Par Splice的计算效率源于一种推测策略,在该策略中,可以利用对系统未来发展的预测来增加可以在任何一次同时执行的工作量,从而提高了该方法的可伸缩性。 ParSplice还能够准确地考虑并潜在地重用在模拟中投入的大量计算工作。我们在简单的Ag表面系统上验证了该方法,并证明与以前的方法相比,效率有了实质性的提高。然后,我们通过研究Ag42Cu13核壳纳米粒子的拓扑变化来证明ParSplice的功能。

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