HamLib: A library of Hamiltonians for benchmarking quantum algorithms and hardware

Fuente: arXiv
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Hauptverfasser: Sawaya, Nicolas PD, Marti-Dafcik, Daniel, Ho, Yang, Tabor, Daniel P, Neira, David E Bernal, Magann, Alicia B, Premaratne, Shavindra, Dubey, Pradeep, Matsuura, Anne, Bishop, Nathan, de Jong, Wibe A, Benjamin, Simon, Parekh, Ojas, Tubman, Norm, Klymko, Katherine, Camps, Daan
Format: Preprint
Veröffentlicht: 2023
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author Sawaya, Nicolas PD
Marti-Dafcik, Daniel
Ho, Yang
Tabor, Daniel P
Neira, David E Bernal
Magann, Alicia B
Premaratne, Shavindra
Dubey, Pradeep
Matsuura, Anne
Bishop, Nathan
de Jong, Wibe A
Benjamin, Simon
Parekh, Ojas
Tubman, Norm
Klymko, Katherine
Camps, Daan
author_facet Sawaya, Nicolas PD
Marti-Dafcik, Daniel
Ho, Yang
Tabor, Daniel P
Neira, David E Bernal
Magann, Alicia B
Premaratne, Shavindra
Dubey, Pradeep
Matsuura, Anne
Bishop, Nathan
de Jong, Wibe A
Benjamin, Simon
Parekh, Ojas
Tubman, Norm
Klymko, Katherine
Camps, Daan
contents In order to characterize and benchmark computational hardware, software, and algorithms, it is essential to have many problem instances on-hand. This is no less true for quantum computation, where a large collection of real-world problem instances would allow for benchmarking studies that in turn help to improve both algorithms and hardware designs. To this end, here we present a large dataset of qubit-based quantum Hamiltonians. The dataset, called HamLib (for Hamiltonian Library), is freely available online and contains problem sizes ranging from 2 to 1000 qubits. HamLib includes problem instances of the Heisenberg model, Fermi-Hubbard model, Bose-Hubbard model, molecular electronic structure, molecular vibrational structure, MaxCut, Max-$k$-SAT, Max-$k$-Cut, QMaxCut, and the traveling salesperson problem. The goals of this effort are (a) to save researchers time by eliminating the need to prepare problem instances and map them to qubit representations, (b) to allow for more thorough tests of new algorithms and hardware, and (c) to allow for reproducibility and standardization across research studies.
format Preprint
id arxiv_https___arxiv_org_abs_2306_13126
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle HamLib: A library of Hamiltonians for benchmarking quantum algorithms and hardware
Sawaya, Nicolas PD
Marti-Dafcik, Daniel
Ho, Yang
Tabor, Daniel P
Neira, David E Bernal
Magann, Alicia B
Premaratne, Shavindra
Dubey, Pradeep
Matsuura, Anne
Bishop, Nathan
de Jong, Wibe A
Benjamin, Simon
Parekh, Ojas
Tubman, Norm
Klymko, Katherine
Camps, Daan
Quantum Physics
Other Condensed Matter
Chemical Physics
Computational Physics
In order to characterize and benchmark computational hardware, software, and algorithms, it is essential to have many problem instances on-hand. This is no less true for quantum computation, where a large collection of real-world problem instances would allow for benchmarking studies that in turn help to improve both algorithms and hardware designs. To this end, here we present a large dataset of qubit-based quantum Hamiltonians. The dataset, called HamLib (for Hamiltonian Library), is freely available online and contains problem sizes ranging from 2 to 1000 qubits. HamLib includes problem instances of the Heisenberg model, Fermi-Hubbard model, Bose-Hubbard model, molecular electronic structure, molecular vibrational structure, MaxCut, Max-$k$-SAT, Max-$k$-Cut, QMaxCut, and the traveling salesperson problem. The goals of this effort are (a) to save researchers time by eliminating the need to prepare problem instances and map them to qubit representations, (b) to allow for more thorough tests of new algorithms and hardware, and (c) to allow for reproducibility and standardization across research studies.
title HamLib: A library of Hamiltonians for benchmarking quantum algorithms and hardware
topic Quantum Physics
Other Condensed Matter
Chemical Physics
Computational Physics
url https://arxiv.org/abs/2306.13126