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Supervised training of neural-network quantum states for the next-nearest neighbor Ising model
Journal article   Peer reviewed

Supervised training of neural-network quantum states for the next-nearest neighbor Ising model

Zheyu Wu, Remmy Zen, Heitor P. Casagrande, Dario Poletti and Stéphane Bressan
Computer physics communications, Vol.300, p.109169
07/2024

Abstract

Neural network quantum states Quantum phases of matter Strongly correlated systems
Different neural network architectures can be unsupervisedly or supervisedly trained to represent quantum states. We explore and compare different strategies for the supervised training of feed forward neural network quantum states. We empirically and comparatively evaluate the performance of feed forward neural network quantum states in different phases of matter for variants of the architecture, for different hyper-parameters, and for two different loss functions, to which we refer as mean-squared error and overlap, respectively. We consider the next-nearest neighbor Ising model for the diversity of its phases and focus on its paramagnetic, ferromagnetic, and pair-antiferromagnetic phases. We observe that the overlap loss function allows better training of the model across all phases, provided a rescaling of the neural network.

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