Genesis: A Compiler Framework for Hamiltonian Simulation on Hybrid CV-DV Quantum Computers

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Chen, Zihan, Li, Jiakang, Guo, Minghao, Chen, Henry, Li, Zirui, Bierman, Joel, Huang, Yipeng, Zhou, Huiyang, Liu, Yuan, Zhang, Eddy Z.
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866915293437100032
author Chen, Zihan
Li, Jiakang
Guo, Minghao
Chen, Henry
Li, Zirui
Bierman, Joel
Huang, Yipeng
Zhou, Huiyang
Liu, Yuan
Zhang, Eddy Z.
author_facet Chen, Zihan
Li, Jiakang
Guo, Minghao
Chen, Henry
Li, Zirui
Bierman, Joel
Huang, Yipeng
Zhou, Huiyang
Liu, Yuan
Zhang, Eddy Z.
contents This paper introduces Genesis, the first compiler designed to support Hamiltonian Simulation on hybrid continuous-variable (CV) and discrete-variable (DV) quantum computing systems. Genesis is a two-level compilation system. At the first level, it decomposes an input Hamiltonian into basis gates using the native instruction set of the target hybrid CV-DV quantum computer. At the second level, it tackles the mapping and routing of qumodes/qubits to implement long-range interactions for the gates decomposed from the first level. Rather than a typical implementation that relies on SWAP primitives similar to qubit-based (or DV-only) systems, we propose an integrated design of connectivity-aware gate synthesis and beamsplitter SWAP insertion tailored for hybrid CV-DV systems. We also introduce an OpenQASM-like domain-specific language (DSL) named CVDV-QASM to represent Hamiltonian in terms of Pauli-exponentials and basic gate sequences from the hybrid CV-DV gate set. Genesis has successfully compiled several important Hamiltonians, including the Bose-Hubbard model, $\mathbb{Z}_2-$Higgs model, Hubbard-Holstein model, Heisenberg model and Electron-vibration coupling Hamiltonians, which are critical in domains like quantum field theory, condensed matter physics, and quantum chemistry. Our implementation is available at Genesis-CVDV-Compiler(https://github.com/ruadapt/Genesis-CVDV-Compiler).
format Preprint
id arxiv_https___arxiv_org_abs_2505_13683
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Genesis: A Compiler Framework for Hamiltonian Simulation on Hybrid CV-DV Quantum Computers
Chen, Zihan
Li, Jiakang
Guo, Minghao
Chen, Henry
Li, Zirui
Bierman, Joel
Huang, Yipeng
Zhou, Huiyang
Liu, Yuan
Zhang, Eddy Z.
Quantum Physics
Hardware Architecture
Programming Languages
This paper introduces Genesis, the first compiler designed to support Hamiltonian Simulation on hybrid continuous-variable (CV) and discrete-variable (DV) quantum computing systems. Genesis is a two-level compilation system. At the first level, it decomposes an input Hamiltonian into basis gates using the native instruction set of the target hybrid CV-DV quantum computer. At the second level, it tackles the mapping and routing of qumodes/qubits to implement long-range interactions for the gates decomposed from the first level. Rather than a typical implementation that relies on SWAP primitives similar to qubit-based (or DV-only) systems, we propose an integrated design of connectivity-aware gate synthesis and beamsplitter SWAP insertion tailored for hybrid CV-DV systems. We also introduce an OpenQASM-like domain-specific language (DSL) named CVDV-QASM to represent Hamiltonian in terms of Pauli-exponentials and basic gate sequences from the hybrid CV-DV gate set. Genesis has successfully compiled several important Hamiltonians, including the Bose-Hubbard model, $\mathbb{Z}_2-$Higgs model, Hubbard-Holstein model, Heisenberg model and Electron-vibration coupling Hamiltonians, which are critical in domains like quantum field theory, condensed matter physics, and quantum chemistry. Our implementation is available at Genesis-CVDV-Compiler(https://github.com/ruadapt/Genesis-CVDV-Compiler).
title Genesis: A Compiler Framework for Hamiltonian Simulation on Hybrid CV-DV Quantum Computers
topic Quantum Physics
Hardware Architecture
Programming Languages
url https://arxiv.org/abs/2505.13683