Accessing ground state and excited states energies in many-body system after symmetry restoration using quantum computers
arXiv:2111.13080 · doi:10.1103/PhysRevC.105.024324
Abstract
We explore the possibility to perform symmetry restoration with the variation after projection technique on a quantum computer followed by additional post-processing. The final goal is to develop configuration interaction techniques based on many-body trial states pre-optimized on a quantum computer. We show how the projection method used for symmetry restoration can prepare optimized states that could then be employed as initial states for quantum or hybrid quantum-classical algorithms. We use the quantum phase estimation and quantum Krylov approaches for the post-processing. The latter method combined with the quantum variation after projection (Q-VAP) leads to very fast convergence towards the ground-state energy. The possibility to access excited states energies is also discussed. Illustrations of the different techniques are made using the pairing hamiltonian.
References in corpus (33)
- Recent developments in no-core shell-model calculations
- A Guided Tour of Ab Initio Nuclear Many-Body Theory
- Chemical Basis of Trotter-Suzuki Errors in Quantum Chemistry Simulation
- Importance Truncation for Large-Scale Configuration Interaction Approaches
- Quantum circuits for strongly correlated quantum systems
- Symmetry-guided large-scale shell-model theory
- Converged ab initio calculations of heavy nuclei
- Quasiparticle Coupled Cluster Theory for Pairing Interactions
- Quantum Krylov subspace algorithms for ground and excited state energy estimation
- Quantum Power Method by a Superposition of Time-Evolved States
- Rodeo Algorithm for Quantum Computing
- Ab initio Bogoliubov coupled cluster theory for open-shell nuclei
- Quantum Assisted Simulator
- Improving Hamiltonian encodings with the Gray code
- Ab-initio shell model with a core
- Symmetry assisted preparation of entangled many-body states on a quantum computer
- Ab initio effective interactions for sd-shell valence nucleons
- Iterative Quantum Assisted Eigensolver
- Correlating AGP on a quantum computer
- In-medium -body reduction of -body operators
- Perturbative Approach to Effective Shell-Model Hamiltonians and Operators
- Quantum Simulation of Nuclear Inelastic Scattering
- Effective operators from exact many-body renormalization
- Generalized Quantum Assisted Simulator
- Lanczos recursion on a quantum computer for the Green's function and ground state
- Hamiltonian operator approximation for energy measurement and ground state preparation
- Filtering states with total spin on a quantum computer
- Quantum simulations employing connected moments expansions
- Combining symmetry breaking and restoration with configuration interaction: a highly accurate many-body scheme applied to the pairing Hamiltonian
- Quantum computation algorithm for many-body studies
- Demonstration of the Rodeo Algorithm on a Quantum Computer
- Ab initio no-core shell model and microscopic reactions: recent achievements
- Calculation of generating function in many-body systems with quantum computers: technical challenges and use in hybrid quantum-classical methods
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- Solving Nuclear Structure Problems with the Adaptive Variational Quantum Algorithm
- Nuclear shell-model simulation in digital quantum computers
- Quantum Simulations in Effective Model Spaces (I): Hamiltonian Learning-VQE using Digital Quantum Computers and Application to the Lipkin-Meshkov-Glick Model
- Simulating excited states of the Lipkin model on a quantum computer
- Multi-Body Entanglement and Information Rearrangement in Nuclear Many-Body Systems
- Quantum Magic and Multi-Partite Entanglement in the Structure of Nuclei
- Symmetry breaking/symmetry preserving circuits and symmetry restoration on quantum computers: A quantum many-body perspective
- Projection algorithm for state preparation on quantum computers
- AGP-based unitary coupled cluster theory for quantum computers
- Quantum Simulations of SO(5) Many-Fermion Systems using Qudits
- Quantum computation of nuclear observables involving linear combination of unitary operators
- Mitigating crosstalk errors by randomized compiling: Simulation of the BCS model on a superconducting quantum computer
- Fast-forwarding quantum simulation with real-time quantum Krylov subspace algorithms
- Deep Quantum Circuit Simulations of Low-Energy Nuclear States
- A Quantum Simulation Approach to Implementing Nuclear Density Functional Theory via Imaginary Time Evolution
- A Quantum Annealing Protocol to Solve the Nuclear Shell Model
- Quantum computing of the pairing Hamiltonian at finite temperatures
- Quantum techniques for eigenvalue problems
- Bridging Quantum Computing and Nuclear Structure: Atomic Nuclei on a Trapped-Ion Quantum Computer
- Simplified projection on total spin zero for state preparation on quantum computers
- Controlled Gate Networks: Theory and Application to Eigenvalue Estimation
- Unraveling Rodeo Algorithm Through the Zeeman Model
- Exploring fixed points and eigenstates of quantum systems with reinforcement learning