English

Dissipative preparation of injective tensor network states

Quantum Physics 2026-05-26 v1 Statistical Mechanics Strongly Correlated Electrons

Abstract

The preparation of tensor network states is a fundamental prerequisite for a wide range of quantum simulation tasks. While many unitary protocols for preparing these states have been investigated, dissipative state preparation provides a powerful alternative since it can be robust to noise and initialization errors. In this paper, we construct both continuous-time and discrete-time geometrically local dissipative processes whose unique steady state is a given injective tensor network state. Our method prepares all injective matrix product states on NN sites to an error ε\varepsilon in O(log(N/ε))O(\log (N/\varepsilon)) time, yielding an exponential improvement over previously known dissipative preparation schemes. For two and higher-dimensional tensor network states, we prove that when the tensors of the state are \emph{highly injective}, the constructed dissipative processes are rapid-mixing i.e., they prepare a state ε\varepsilon-close to the NN-site target state in O(log(N/ε))O( \log (N/\varepsilon)) time. For these states, our approach provides a polynomial speedup over known unitary methods for states defined on lattices and an exponential speedup for states on general bounded-degree graphs. We corroborate our theoretical results with numerical studies that indicate that the dissipative protocol can rapidly prepares states outside the high-injectivity assumption.

Keywords

Cite

@article{arxiv.2605.25089,
  title  = {Dissipative preparation of injective tensor network states},
  author = {Drishti Baruah and Georgios Styliaris and J. Ignacio Cirac and Rahul Trivedi},
  journal= {arXiv preprint arXiv:2605.25089},
  year   = {2026}
}
R2 v1 2026-07-22T07:31:02.964Z