Fully-programmable universal quantum simulator with a one-dimensional
quantum processor
- URL: http://arxiv.org/abs/2009.00823v1
- Date: Wed, 2 Sep 2020 05:10:21 GMT
- Title: Fully-programmable universal quantum simulator with a one-dimensional
quantum processor
- Authors: V. M. Bastidas, T. Haug, C. Gravel, L.-C. Kwek, W. J. Munro, Kae
Nemoto
- Abstract summary: Current quantum devices execute specific tasks that are hard for classical computers.
It is desirable to reconfigure the connectivity of the device, which for superconducting quantum processors is determined at fabrication.
Here we periodically drive a one-dimensional chain to engineer effective Hamiltonians that simulate arbitrary connectivities.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Current quantum devices execute specific tasks that are hard for classical
computers and have the potential to solve problems such as quantum simulation
of material science and chemistry, even without error correction. For practical
applications it is highly desirable to reconfigure the connectivity of the
device, which for superconducting quantum processors is determined at
fabrication. In addition, we require a careful design of control lines and
couplings to resonators for measurements. Therefore, it is a cumbersome and
slow undertaking to fabricate a new device for each problem we want to solve.
Here we periodically drive a one-dimensional chain to engineer effective
Hamiltonians that simulate arbitrary connectivities. We demonstrate the
capability of our method by engineering driving sequences to simulate star,
all-to-all, and ring connectivities. We also simulate a minimal example of the
3-SAT problem including three-body interactions, which are difficult to realize
experimentally. Our results open a new paradigm to perform quantum simulation
in near term quantum devices by enabling us to stroboscopically simulate
arbitrary Hamiltonians with a single device and optimized driving sequences
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