Zero and Finite Temperature Quantum Simulations Powered by Quantum Magic
arXiv:2308.11616 · doi:10.22331/q-2024-07-23-1422
Abstract
We introduce a quantum information theory-inspired method to improve the characterization of many-body Hamiltonians on near-term quantum devices. We design a new class of similarity transformations that, when applied as a preprocessing step, can substantially simplify a Hamiltonian for subsequent analysis on quantum hardware. By design, these transformations can be identified and applied efficiently using purely classical resources. In practice, these transformations allow us to shorten requisite physical circuit-depths, overcoming constraints imposed by imperfect near-term hardware. Importantly, the quality of our transformations is tunable: we define a 'ladder' of transformations that yields increasingly simple Hamiltonians at the cost of more classical computation. Using quantum chemistry as a benchmark application, we demonstrate that our protocol leads to significant performance improvements for zero and finite temperature free energy calculations on both digital and analog quantum hardware. Specifically, our energy estimates not only outperform traditional Hartree-Fock solutions, but this performance gap also consistently widens as we tune up the quality of our transformations. In short, our quantum information-based approach opens promising new pathways to realizing useful and feasible quantum chemistry algorithms on near-term hardware.
15 pages, 9 figures. Updated with the published version
References in corpus (30)
- A variational eigenvalue solver on a quantum processor
- The density-matrix renormalization group
- Improved Simulation of Stabilizer Circuits
- Matrix Product States and Projected Entangled Pair States: Concepts, Symmetries, and Theorems
- Schrieffer-Wolff transformation for quantum many-body systems
- The Bravyi-Kitaev transformation for quantum computation of electronic structure
- Theory of variational quantum simulation
- Application of a resource theory for magic states to fault-tolerant quantum computing
- Rydberg atom quantum technologies
- Improved classical simulation of quantum circuits dominated by Clifford gates
- A comparison of entanglement measures
- Stabilizer Rényi entropy
- Simulation of quantum circuits by low-rank stabilizer decompositions
- Measurement Optimization in the Variational Quantum Eigensolver Using a Minimum Clique Cover
- Quantum memories at finite temperature
- Obtaining highly-excited eigenstates of many-body localized Hamiltonians by the density matrix renormalization group
- Differentiable Quantum Architecture Search
- Variational Thermal Quantum Simulation via Thermofield Double States
- TensorCircuit: a Quantum Software Framework for the NISQ Era
- A numerical canonical transformation approach to quantum many body problems
- Quantifying magic for multi-qubit operations
- Quantum Computation of Finite-Temperature Static and Dynamical Properties of Spin Systems Using Quantum Imaginary Time Evolution
- Nature of Many-Body Localization and Transitions by Density Matrix Renormaliztion Group and Exact Diagonalization Studies
- Entanglement Holographic Mapping of Many-Body Localized System by Spectrum Bifurcation Renormalization Group
- Topological and symmetry-enriched random quantum critical points
- Effect of Chemical Doping on the Thermoelectric Properties of FeGa3
- How to simulate quantum measurement without computing marginals
- Disordered XYZ Spin Chain Simulations using the Spectrum Bifurcation Renormalization Group
- Bulk Geometry of the Many Body Localized Phase from Wilson-Wegner Flow
- CAFQA: A classical simulation bootstrap for variational quantum algorithms
Cited by in corpus (8)
- Quantum Non-Local Nonstabilizerness
- Doped stabilizer states in many-body physics and where to find them
- Stabilizer ground states for simulating quantum many-body physics: theory, algorithms, and applications
- Computing quantum magic of state vectors
- Operational interpretation of the Stabilizer Entropy
- Stabilizer-Accelerated Quantum Many-Body Ground-State Estimation
- Quantum Computing Beyond Ground State Electronic Structure: A Review of Progress Toward Quantum Chemistry Out of the Ground State
- Quantum-Classical Auxiliary Field Quantum Monte Carlo with Matchgate Shadows on Trapped Ion Quantum Computers