DOE OSTI · 1979634
Quantum Computer-Aided Design: Digital Quantum Simulation of Quantum Processors
Abstract
With the increasing size of quantum processors, submodules that constitute the processor hardware will become too large to accurately simulate on a classical computer. Therefore, one would soon have to fabricate and test each new design primitive and parameter choice in time-consuming coordination between design, fabrication, and experimental validation. Here we show how one can design and test the performance of next-generation quantum hardware—by using existing quantum computers. Focusing on superconducting transmon processors as a prominent hardware platform, we compute the static and dynamic properties of individual and coupled transmons. We show how the energy spectra of transmons can be obtained by variational hybrid quantum-classical algorithms that are well suited for near-term noisy quantum computers. In addition, single- and two-qubit gate simulations are demonstrated via Suzuki-Trotter decomposition. Our methods pave a promising way towards designing candidate quantum processors when the demands of calculating submodule properties exceed the capabilities of classical computing resources.
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Kyaw, Thi Ha, Menke, Tim, Sim, Sukin, Anand, Abhinav, Sawaya, Nicolas P.D., Oliver, William D., Guerreschi, Gian Giacomo, Aspuru-Guzik, Alán. 2021-10-22. Quantum Computer-Aided Design: Digital Quantum Simulation of Quantum Processors. https://doi.org/10.1103/physrevapplied.16.044042
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