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Applications of neural networks to the studies of phase transitions of two-dimensional Potts models

机译:神经网络在二维Potts模型的相变研究中的应用

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We study the phase transitions of two-dimensional (2D) Q-states Potts models on the square lattice, using the first principles Monte Carlo (MC) simulations as well as the techniques of neural networks (NN). We demonstrate that the ideas from NN can be adopted to study these considered phase transitions efficiently. In particular, even with a simple NN constructed in this investigation, we are able to obtain the relevant information of the nature of these phase transitions, namely whether they are first order or second order. Our results strengthen the potential applicability of machine learning in studying various states of matters. Subtlety of applying NN techniques to investigate many-body systems is briefly discussed as well. (C) 2018 Elsevier Inc. All rights reserved.
机译:我们使用第一个原理Monte Carlo(MC)模拟以及神经网络(NN)的技术来研究二维(2D)Q型Potts模型的阶段转换。 我们证明,可以采用来自NN的思想,以有效地研究这些考虑的阶段过渡。 特别地,即使在本研究中构建了简单的NN,我们也能够获得这些相变性质的相关信息,即它们是第一订单还是二阶。 我们的结果加强了机器学习在研究各种态度的潜在适用性。 简要讨论了应用NN技术来调查许多身体系统的微妙。 (c)2018年Elsevier Inc.保留所有权利。

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