Distributed estimation of many-body Hamiltonians via punctured surface code
Abstract
We study how a punctured surface code can turn many local -type couplings into one protected logical signal for distributed quantum metrology, where the goal is to estimate a weighted average of the coupling strengths. We consider an ordinary planar patch with two -cut holes and provide a distributed sensing protocol where all -type couplings correspond to the same nontrivial logical for the punctured surface code. When the couplings are disjoint, we show that the relevant global condition is equivalent to the existence of a closed dual loop, called a witness, that has an odd number of intersections with every chain. Together with a local clean opening condition, this witness criterion gives a concrete punctured-code construction in which all signal chains implement the same nontrivial logical . For three-body interactions with overlapping supports, we also identify the class of interactions where our punctured surface code protocol applies. Overall, our results provide a novel, noise-robust distributed sensing protocol for many-body interactions, with corresponding topological design criteria.
Keywords
Cite
@article{arxiv.2605.11092,
title = {Distributed estimation of many-body Hamiltonians via punctured surface code},
author = {Linmu Qiao and Zhichun Ouyang and Sisi Zhou},
journal= {arXiv preprint arXiv:2605.11092},
year = {2026}
}
Comments
36 pages, 5 figures