Continuous Reset-Induced Phase Transition in Measurement-Free Random Quantum Circuits
Abstract
We study a random unitary quantum circuit with only reset channels, which has high feasibility for real quantum devices. In particular, we investigate the many-body statistical physics properties, "reset-induced" entanglement phase transitions comparing the classical statistical picture in the large "" limit of qudits. In the property of the reset-induced phase transition the parameter of qudit is essential. That is, the transition properties induced by the reset channel significantly depend on . We numerically elucidate this statement employing efficient stabilizer circuit simulations for . Specifically, large fluctuations are observed near the critical point, indicating that the reset-induced phase transition is continuous. We obtain clear data collapses, consistent with a second-order mixed phase transition. This behavior differs from expectations based on the classical statistical mapping in the large- limit.
Cite
@article{arxiv.2604.25640,
title = {Continuous Reset-Induced Phase Transition in Measurement-Free Random Quantum Circuits},
author = {Hinata Yokoyama and Kengo Anzai and Dina Syverud-Lindland and Yoshihito Kuno and Hiroaki Matsueda},
journal= {arXiv preprint arXiv:2604.25640},
year = {2026}
}
Comments
13 pages,10 figures