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Fast Emulation of Fermionic Circuits with Matrix Product States
Justin Provazza1, Klaas Gunst1, Huanchen Zhai2
1Quantum Simulation Technologies Inc., Boston, Massachusetts 02135, United States.
Journal of Chemical Theory and Computation
|April 25, 2024
Summary
We developed MPS-FQE, a new tool for quantum computing. This software enables approximate emulation of larger fermionic systems, advancing quantum algorithm development.
Area of Science:
- Quantum Computing
- Computational Physics
- Quantum Information Science
Background:
- Accurate simulation of fermionic systems is crucial for quantum computing.
- Full statevector emulation is limited to small system sizes.
- Approximation methods are needed to scale simulations.
Purpose of the Study:
- To introduce an open-source Matrix Product State (MPS) extension for the Fermionic Quantum Emulator (FQE) software.
- To enable approximate emulation of larger fermionic quantum circuits.
- To facilitate the study of quantum algorithms on systems beyond the reach of exact methods.
Main Methods:
- Developed MPS-FQE, integrating symmetry-adapted MPS theory with the FQE interface.
- Utilized pyblock3 and block2 libraries for tensor operations.
- Implemented a drop-in replacement for FQE for efficient, approximate emulation.
Main Results:
- MPS-FQE allows approximate emulation of larger fermionic circuits than full statevector methods.
- Demonstrated applications in quantum phase estimation, variational quantum eigensolvers, Trotter error analysis, and quantum dynamics.
- Enabled treatment of significantly larger systems for quantum algorithm testing.
Conclusions:
- MPS-FQE provides a powerful tool for approximate simulation of fermionic quantum systems.
- The software extends the capabilities of existing quantum emulators.
- Facilitates research in both near-term and fault-tolerant quantum algorithm development.
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