arXiv · 2608.01788
Validation and calibration of quantum hardware through the many-body quantum Mpemba effect
Abstract
We introduce a validation process that harnesses engineered many-body relaxation to control and calibrate quantum hardware. On two independently developed neutral-atom processors, we realize the many-body quantum Mpemba effect in an open system for the first time. Initial-state engineering creates fast and slow relaxation pathways: the fast pathway opens access to unreachable mixed-state physics before hardware noise obscures the target dynamics, whereas the slow pathway amplifies hidden imperfections in preparation and control. Computational-basis measurements directly and independently benchmark dynamical reliability, revealing each processor's actual operating window as a many-body simulator. The processors are thus judged by the very dynamics they are built to reproduce. Complementary responses disentangle control errors and drive an adaptive, time-resolved scheme that supplies hardware developers directly actionable corrections, enhancing faithful reproduction of the target dynamics. These results establish many-body relaxation as a transferable validation and calibration tool for programmable quantum processors.
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Francesco Campaioli, Marco Avesani, Oren Raz, Roderich Moessner, Gianluca Teza. 2026-08-03. Validation and calibration of quantum hardware through the many-body quantum Mpemba effect. https://arxiv.org/abs/2608.01788
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