An explicitly time-dependent transformer neural network, trained to minimize the time-averaged Schrödinger residual, simulates 2D Ising quench and Heisenberg ramp dynamics and extrapolates beyond its training interval.
Neural Network Ground State from the Neural Tangent Kernel Perspective: The Sign Bias
1 Pith paper cite this work. Polarity classification is still indexing.
abstract
Neural networks has recently attracted much interest as useful representations of quantum many body ground states, which might help address the infamous sign problem. Most attention was directed at their representability properties, while possible limitations on finding the desired optimal state have not been suitably explored. By leveraging well-established results applicable in the context of infinite width, specifically regarding the renowned neural tangent kernel and conjugate kernel, a comprehensive analysis of the convergence and initialization characteristics of the method is conducted. We reveal the dependence of these characteristics on the interplay among these kernels, the Hamiltonian, and the basis used for its representation. We introduce and motivate novel performance metrics and explore the condition for their optimization. By leveraging these findings, we elucidate a substantial dependence of the effectiveness of this approach on the selected basis, demonstrating that so-called stoquastic Hamiltonians are more amenable to solution through neural networks than those suffering from a sign problem.
citation-role summary
citation-polarity summary
fields
quant-ph 1years
2024 1verdicts
CONDITIONAL 1roles
background 1polarities
background 1representative citing papers
citing papers explorer
-
Many-body dynamics with explicitly time-dependent neural quantum states
An explicitly time-dependent transformer neural network, trained to minimize the time-averaged Schrödinger residual, simulates 2D Ising quench and Heisenberg ramp dynamics and extrapolates beyond its training interval.