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Green's function Monte Carlo method combined with restricted Boltzmann machine approach to the frustrated J_(1)–J_(2)Heisenberg model
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作者 He-Yu Lin Rong-Qiang He Zhong-Yi Lu 《Chinese Physics B》 SCIE EI CAS CSCD 2022年第8期207-211,共5页
Restricted Boltzmann machine(RBM)has been proposed as a powerful variational ansatz to represent the ground state of a given quantum many-body system.On the other hand,as a shallow neural network,it is found that the ... Restricted Boltzmann machine(RBM)has been proposed as a powerful variational ansatz to represent the ground state of a given quantum many-body system.On the other hand,as a shallow neural network,it is found that the RBM is still hardly able to capture the characteristics of systems with large sizes or complicated interactions.In order to find a way out of the dilemma,here,we propose to adopt the Green's function Monte Carlo(GFMC)method for which the RBM is used as a guiding wave function.To demonstrate the implementation and effectiveness of the proposal,we have applied the proposal to study the frustrated J_(1)-J_(2)Heisenberg model on a square lattice,which is considered as a typical model with sign problem for quantum Monte Carlo simulations.The calculation results demonstrate that the GFMC method can significantly further reduce the relative error of the ground-state energy on the basis of the RBM variational results.This encourages to combine the GFMC method with other neural networks like convolutional neural networks for dealing with more models with sign problem in the future. 展开更多
关键词 restricted Boltzmann machine Green's function Monte Carlo frustrated j_(1)–j_(2)heisenberg model
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基于机器学习J_(1)-J_(2)反铁磁海森伯自旋链相变点的识别方法 被引量:2
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作者 王伟 揭泉林 《物理学报》 SCIE EI CAS CSCD 北大核心 2021年第23期171-179,共9页
通过序参量来研究量子相变是比较传统的做法,而从机器学习的角度研究相变是一块全新的领域.本文提出了先采用无监督学习算法中的高斯混合模型对J_(1)-J_(2)反铁磁海森伯自旋链系统的态矢量进行分类,再使用监督学习算法中的卷积神经网络... 通过序参量来研究量子相变是比较传统的做法,而从机器学习的角度研究相变是一块全新的领域.本文提出了先采用无监督学习算法中的高斯混合模型对J_(1)-J_(2)反铁磁海森伯自旋链系统的态矢量进行分类,再使用监督学习算法中的卷积神经网络鉴别无监督学习算法给出的分类点是否是相变点的方法,并使用交叉验证的方法对学习效果进行验证.结果表明,上述机器学习方法可以从基态精确找到J_(1)-J_(2)反铁磁海森伯自旋链系统的一阶相变点、无法找到无穷阶相变点,从第一激发态不仅能找到一阶相变点,还能找到无穷阶相变点. 展开更多
关键词 海森伯j_(1)-j_(2)模型 机器学习 神经网络 相变
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The Mixed Spin-1/2 and Spin-1 Ising–Heisenberg Model in the Mean-Field Approximation: a New Approach
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作者 Erhan Albayrak 《Chinese Physics Letters》 SCIE CAS CSCD 2018年第3期84-88,共5页
Thermodynamic properties of the mixed spin-1 and spin-1/2 Ising-Heisenberg model are studied on a honeycomb lattice using a new approach in the mean-field approximation to analyze the effects of longitudinal Dz and tr... Thermodynamic properties of the mixed spin-1 and spin-1/2 Ising-Heisenberg model are studied on a honeycomb lattice using a new approach in the mean-field approximation to analyze the effects of longitudinal Dz and transverse Dx crystal fields. The phase diagrams are calculated in detail by studying the thermal variations of the order parameters, i.e., magnetizations and quadrupole moments, and compared with the literature to assess the reliability of the new approach. It is found that the model yields both second- and first-order phase transitions, and tricritical points. The compensation behavior of the model is also investigated for the sublattice magnetizations, and longitudinal and transverse quadrupolar moments. The latter type of compensation is observed in the literature but its possible importance is overlooked. 展开更多
关键词 heisenberg model in the Mean-Field Approximation The Mixed Spin-1/2 and Spin-1 Ising a New Approach
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玛湖1井区J_(1)s_(2)段储层四性关系及有效厚度下限标准研究 被引量:6
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作者 卢科良 李志军 +4 位作者 李想 吴康军 徐正建 郑宝婧 张云冬 《重庆科技学院学报(自然科学版)》 CAS 2022年第3期1-8,共8页
根据玛湖1井区J_(1)s_(2)段的录井、测井等资料,对其储层四性关系及有效厚度下限标准进行研究。研究认为:J_(1)s_(2)段储层的岩性主要为细砂岩,呈中孔、中渗特性;除砂砾岩以外,储层的岩性越粗,其物性就越好,含油级别也越高;砂砾岩的钙... 根据玛湖1井区J_(1)s_(2)段的录井、测井等资料,对其储层四性关系及有效厚度下限标准进行研究。研究认为:J_(1)s_(2)段储层的岩性主要为细砂岩,呈中孔、中渗特性;除砂砾岩以外,储层的岩性越粗,其物性就越好,含油级别也越高;砂砾岩的钙质胶结作用和硅质胶结作用导致储层的物性变差,进而影响了储层的含油性。基于此认识,建立了储层岩性、物性、电性及含油性测井解释模型,并运用该模型确定了玛湖1井区J_(1)s_(2)段的储层有效厚度下限标准。 展开更多
关键词 玛湖1井区 j_(1)s_(2)段 三工河组 四性关系 有效厚度下限 测井解释模型
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An optimized cluster density matrix embedding theory
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作者 Hao Geng Quan-lin Jie 《Chinese Physics B》 SCIE EI CAS CSCD 2021年第9期117-122,共6页
We propose an optimized cluster density matrix embedding theory(CDMET).It reduces the computational cost of CDMET with simpler bath states.And the result is as accurate as the original one.As a demonstration,we study ... We propose an optimized cluster density matrix embedding theory(CDMET).It reduces the computational cost of CDMET with simpler bath states.And the result is as accurate as the original one.As a demonstration,we study the distant correlations of the Heisenberg J_(1)-J_(2)model on the square lattice.We find that the intermediate phase(0.43≤sssim J_(2)≤sssim 0.62)is divided into two parts.One part is a near-critical region(0.43≤J_(2)≤0.50).The other part is the plaquette valence bond solid(PVB)state(0.51≤J_(2)≤0.62).The spin correlations decay exponentially as a function of distance in the PVB. 展开更多
关键词 cluster density matrix embedding theory distant correlation heisenberg j_(1)-j_(2)model
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