An Analysis of Commutation-Based Trotter Ordering Strategies on Heisenberg-Style Hamiltonians

Fuente: arXiv
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Main Authors: Tate, Reuben, Aktar, Shamminuj, Eidenbenz, Stephan
Format: Preprint
Published: 2026
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author Tate, Reuben
Aktar, Shamminuj
Eidenbenz, Stephan
author_facet Tate, Reuben
Aktar, Shamminuj
Eidenbenz, Stephan
contents Trotterization is a technique that allows one to approximate a time evolution of a Hamiltonian by repeatedly evolving the individual terms of the Hamiltonian one-at-a-time for small time durations. Bounds on the error of this approximation exist; however, they are typically loose and moreover, it is known that the true error can be greatly influenced by the order in which the terms of the Hamiltonian are evolved. In this work, we consider various ordering strategies that exploit the commutation structure of the Hamiltonian, in addition to a few other baseline ordering strategies. These commutation-based strategies involve dividing the terms of the Hamiltonian into groups where all the terms within each group commute with one another. These groupings can be obtained by using graph coloring techniques on what we call the "commutation graph" of the Hamiltonian. We prove various results regarding the structure and properties of such commutation graphs for certain classes of Hamiltonians. We also empirically calculate the (true) Trotter error using these ordering strategies on various 1D and 2D Heisenberg-style systems.
format Preprint
id arxiv_https___arxiv_org_abs_2604_23138
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle An Analysis of Commutation-Based Trotter Ordering Strategies on Heisenberg-Style Hamiltonians
Tate, Reuben
Aktar, Shamminuj
Eidenbenz, Stephan
Quantum Physics
Strongly Correlated Electrons
Trotterization is a technique that allows one to approximate a time evolution of a Hamiltonian by repeatedly evolving the individual terms of the Hamiltonian one-at-a-time for small time durations. Bounds on the error of this approximation exist; however, they are typically loose and moreover, it is known that the true error can be greatly influenced by the order in which the terms of the Hamiltonian are evolved. In this work, we consider various ordering strategies that exploit the commutation structure of the Hamiltonian, in addition to a few other baseline ordering strategies. These commutation-based strategies involve dividing the terms of the Hamiltonian into groups where all the terms within each group commute with one another. These groupings can be obtained by using graph coloring techniques on what we call the "commutation graph" of the Hamiltonian. We prove various results regarding the structure and properties of such commutation graphs for certain classes of Hamiltonians. We also empirically calculate the (true) Trotter error using these ordering strategies on various 1D and 2D Heisenberg-style systems.
title An Analysis of Commutation-Based Trotter Ordering Strategies on Heisenberg-Style Hamiltonians
topic Quantum Physics
Strongly Correlated Electrons
url https://arxiv.org/abs/2604.23138