Brute-force positivization of model ground states
arXiv:2511.17957 · doi:10.1103/r75d-zhkz
Abstract
Exploring sign structures of quantum wave functions attracts considerable attention due to the potential for advances in modeling complex phases of matter. This stimulates developing different optimization procedures for imitating and manipulating sign structures of quantum states. In this work, utilizing a brute force approach based on a set of single-qubit transformations we evaluate protocols enabling positivization of the one-dimensional model ground states in the regime of strong frustration. Based on the obtained positivization results, we show the difference between the cases of periodic and open boundary conditions, and also establish the dependence of the sign structure on parity of the simulated spin chains.
References in corpus (10)
- Fidelity and Quantum phase transition for the Heisenberg chain with the next-nearest-neighbor interaction
- Transformer variational wave functions for frustrated quantum spin systems
- Neural Network Evolution Strategy for Solving Quantum Sign Structures
- lattice-symmetries: A package for working with quantum many-body bases
- Reconstruction of classical skyrmions from Anderson towers: quantum Darwinism in action
- Many-body quantum sign structures as non-glassy Ising models
- Achieving the volume-law entropy regime with random-sign Dicke states
- Exploring entanglement in finite-size quantum systems with degenerate ground state
- Improving neural network performance for solving quantum sign structure
- Emergence of global receptive fields capturing multipartite quantum correlations