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Exploring order parameters and dynamic processes in disordered systems via variational autoencoders

机译:通过变分自动化器探索排序系统中的订单参数和动态过程

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We suggest and implement an approach for the bottom-up description of systems undergoing large-scale structural changes and chemical transformations from dynamic atomically resolved imaging data, where only partial or uncertain data on atomic positions are available. This approach is predicated on the synergy of two concepts, the parsimony of physical descriptors and general rotational invariance of noncrystalline solids, and is implemented using a rotationally invariant extension of the variational autoencoder applied to semantically segmented atom-resolved data seeking the most effective reduced representation for the system that still contains the maximum amount of original information. This approach allowed us to explore the dynamic evolution of electron beam–induced processes in a silicon-doped graphene system, but it can be also applied for a much broader range of atomic scale and mesoscopic phenomena to introduce the bottom-up order parameters and explore their dynamics with time and in response to external stimuli.
机译:我们建议并实施一种方法,用于自下而上地描述经历大规模结构变化和来自动态原子解析的成像数据的化学转换的方法,其中仅提供了原子位置的部分或不确定数据。这种方法是在两个概念的协同作用中预测的,物理描述符的分析和非折叠固体的一般旋转不变性,并且使用应用于寻求最有效的变化的原子分辨数据的变分性AutiaceOder的旋转不变扩展来实现寻求最有效的减少的表示对于仍包含最大原始信息量的系统。这种方法使我们探讨了硅掺杂石墨烯系统中电子束引起的工艺的动态演变,但也可以应用于更广泛的原子尺度和介观现象,以引入自下而上的订单参数和探索他们的动态随着时间的推移和响应外部刺激。

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