Quantum Linear System Solver Based on Time-optimal Adiabatic Quantum Computing and Quantum Approximate Optimization Algorithm

Author:

An Dong1,Lin Lin2

Affiliation:

1. Department of Mathematics, University of California, Berkeley, California

2. Department of Mathematics and Challenge Institute of Quantum Computation, University of California, Berkeley and Computational Research Division, Lawrence Berkeley National Laboratory, Berkeley, California

Abstract

We demonstrate that with an optimally tuned scheduling function, adiabatic quantum computing (AQC) can readily solve a quantum linear system problem (QLSP) with O (κ poly(log (κ ε))) runtime, where κ is the condition number, and ε is the target accuracy. This is near optimal with respect to both κ and ε, and is achieved without relying on complicated amplitude amplification procedures that are difficult to implement. Our method is applicable to general non-Hermitian matrices, and the cost as well as the number of qubits can be reduced when restricted to Hermitian matrices, and further to Hermitian positive definite matrices. The success of the time-optimal AQC implies that the quantum approximate optimization algorithm (QAOA) with an optimal control protocol can also achieve the same complexity in terms of the runtime. Numerical results indicate that QAOA can yield the lowest runtime compared to the time-optimal AQC, vanilla AQC, and the recently proposed randomization method.

Funder

Department of Energy

Quantum Algorithm Teams Program

Google Quantum Research Award

NSF Quantum Leap Challenge Institute (QLCI) program

Publisher

Association for Computing Machinery (ACM)

Subject

General Medicine

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