English

Efficient Qubit Routing for a Globally Connected Trapped Ion Quantum Computer

Quantum Physics 2020-08-20 v3

Abstract

The cost of enabling connectivity in Noisy-Intermediate-Scale-Quantum devices is an important factor in determining computational power. We have created a qubit routing algorithm which enables efficient global connectivity in a previously proposed trapped ion quantum computing architecture. The routing algorithm was characterized by comparison against both a strict lower bound, and a positional swap based routing algorithm. We propose an error model which can be used to estimate the achievable circuit depth and quantum volume of the device as a function of experimental parameters. We use a new metric based on quantum volume, but with native two qubit gates, to assess the cost of connectivity relative to the upper bound of free, all to all connectivity. The metric was also used to assess a square grid superconducting device. We compare these two architectures and find that for the shuttling parameters used, the trapped ion design has a substantially lower cost associated with connectivity.

Keywords

Cite

@article{arxiv.2002.12782,
  title  = {Efficient Qubit Routing for a Globally Connected Trapped Ion Quantum Computer},
  author = {Mark Webber and Steven Herbert and Sebastian Weidt and Winfried K. Hensinger},
  journal= {arXiv preprint arXiv:2002.12782},
  year   = {2020}
}

Comments

12 pages

R2 v1 2026-06-23T13:57:47.253Z