Towards quantum gravity with neural networks: solving the quantum Hamilton constraint of U(1) BF theory

被引:0
作者
Sahlmann, Hanno [1 ]
Sherif, Waleed [1 ]
机构
[1] Friedrich Alexander Univ Erlangen Nurnberg FAU, Inst Quantum Grav, Dept Phys, Staudtstr 7, D-91058 Erlangen, Germany
关键词
loop quantum gravity; neural network quantum states; quantum Hamilton constraint; BF-Theory; RENORMALIZATION-GROUP; DYNAMICS; MODELS; AQG;
D O I
10.1088/1361-6382/ad84af
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
In the canonical approach of loop quantum gravity, arguably the most important outstanding problem is finding and interpreting solutions to the Hamiltonian constraint. In this work, we demonstrate that methods of machine learning are in principle applicable to this problem. We consider U(1) BF theory in three dimensions, quantised with loop quantum gravity methods. In particular, we formulate a master constraint corresponding to Hamilton and Gau ss constraints using loop quantum gravity methods. To make the problem amenable for numerical simulation we fix a graph and introduce a cutoff on the kinematical degrees of freedom, effectively considering Uq(1) BF theory at a root of unity. We show that the neural network quantum state ansatz can be used to numerically solve the constraints efficiently and accurately. We compute expectation values and fluctuations of certain observables and compare them with exact results or exact numerical methods where possible. We also study the dependence on the cutoff.
引用
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页数:36
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