English

Universal quantum computing with twist-free and temporally encoded lattice surgery

Quantum Physics 2022-03-01 v3

Abstract

Lattice surgery protocols allow for the efficient implementation of universal gate sets with two-dimensional topological codes where qubits are constrained to interact with one another locally. In this work, we first introduce a decoder capable of correcting spacelike and timelike errors during lattice surgery protocols. Afterwards, we compute logical failure rates of a lattice surgery protocol for a biased circuit-level noise model. We then provide a new protocol for performing twist-free lattice surgery, where we avoid twist defects in the bulk of the lattice. Our twist-free protocol eliminates the extra circuit components and gate scheduling complexities associated with the measurement of higher weight stabilizers when using twist defects. We also provide a protocol for temporally encoded lattice surgery that can be used to reduce both runtimes and the total space-time costs of quantum algorithms. Lastly, we propose a layout for a quantum processor that is more efficient for rectangular surface codes exploiting noise bias, and which is compatible with the other techniques mentioned above.

Keywords

Cite

@article{arxiv.2109.02746,
  title  = {Universal quantum computing with twist-free and temporally encoded lattice surgery},
  author = {Christopher Chamberland and Earl T. Campbell},
  journal= {arXiv preprint arXiv:2109.02746},
  year   = {2022}
}

Comments

23 pages, 18 figures, comments welcome! V2 includes 2 added figures and fixed typos. V3 fixed a typo in Eq. (10)

R2 v1 2026-06-24T05:44:10.434Z