Quantum Simulation on Noisy Superconducting Quantum Computers
- URL: http://arxiv.org/abs/2209.02795v3
- Date: Thu, 6 Oct 2022 00:26:17 GMT
- Title: Quantum Simulation on Noisy Superconducting Quantum Computers
- Authors: Kaelyn J. Ferris, A. J. Rasmusson, Nicholas T. Bronn, Olivia Lanes
- Abstract summary: Quantum simulation is a potentially powerful application of quantum computing.
There is little introductory literature or demonstrations of the topic at a graduate or undergraduate student level.
This artificially raises the barrier to entry into the field which already has a limited workforce.
- Score: 0.0
- License: http://creativecommons.org/licenses/by-sa/4.0/
- Abstract: Quantum simulation is a potentially powerful application of quantum
computing, holding the promise to be able to emulate interesting quantum
systems beyond the reach of classical computing methods. Despite such promising
applications, and the increase in active research, there is little introductory
literature or demonstrations of the topic at a graduate or undergraduate
student level. This artificially raises the barrier to entry into the field
which already has a limited workforce, both in academia and industry. Here we
present an introduction to simulating quantum systems, starting with a chosen
Hamiltonian, overviewing state preparation and evolution, and discussing
measurement methods. We provide an example simulation by measuring the state
dynamics of a tight-binding model with disorder by time evolution using the
Suzuki-Trotter decomposition. Furthermore, error mitigation and noise reduction
are essential to executing quantum algorithms on currently available noisy
quantum computers. We discuss and demonstrate various error mitigation and
circuit optimization techniques that significantly improve performance. All
source code is freely available, and we encourage the reader to build upon it.
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