Extracting Success from IBM’s 20-Qubit Machines Using Error-Aware Compilation

Author:

Nishio Shin1ORCID,Pan Yulu2,Satoh Takahiko3,Amano Hideharu2,Meter Rodney Van4ORCID

Affiliation:

1. Faculty of Policy Management, Keio University

2. Faculty of Science and Technology, Keio University

3. Quantum Computing Center, Keio University

4. Faculty of Environment and Information Studies, Keio University

Abstract

NISQ (Noisy, Intermediate-Scale Quantum) computing requires error mitigation to achieve meaningful computation. Our compilation tool development focuses on the fact that the error rates of individual qubits are not equal, with a goal of maximizing the success probability of real-world subroutines such as an adder circuit. We begin by establishing a metric for choosing among possible paths and circuit alternatives for executing gates between variables placed far apart within the processor, and test our approach on two IBM 20-qubit systems named Tokyo and Poughkeepsie. We find that a single-number metric describing the fidelity of individual gates is a useful but imperfect guide. Our compiler uses this subsystem and maps complete circuits onto the machine using a beam search-based heuristic that will scale as processor and program sizes grow. To evaluate the whole compilation process, we compiled and executed adder circuits, then calculated the Kullback–Leibler divergence (KL-divergence, a measure of the distance between two probability distributions). For a circuit within the capabilities of the hardware, our compilation increases estimated success probability and reduces KL-divergence relative to an error-oblivious placement.

Funder

MEXT Quantum Leap Flagship Program

Publisher

Association for Computing Machinery (ACM)

Subject

Electrical and Electronic Engineering,Hardware and Architecture,Software

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