Fault-tolerant one-bit addition with the smallest interesting color code

Author:

Wang Yang12ORCID,Simsek Selwyn3,Gatterman Thomas M.4ORCID,Gerber Justin A.4ORCID,Gilmore Kevin4ORCID,Gresh Dan4,Hewitt Nathan4ORCID,Horst Chandler V.4ORCID,Matheny Mitchell4ORCID,Mengle Tanner4,Neyenhuis Brian4,Criger Ben35ORCID

Affiliation:

1. QuTech, Delft University of Technology, PO Box 5046, 2600 GA Delft, Netherlands.

2. 3. Physikalisches Institut, ZAQuant University of Stuttgart, Allmandring 13, 70569 Stuttgart, Germany.

3. Quantinuum Terrington House, 13–15 Hills Road, Cambridge CB2 1NL, UK.

4. Quantinuum 303 South Technology Ct., Broomfield, CO 80021, USA.

5. Institute for Globally Distributed Open Research and Education (IGDORE).

Abstract

Fault-tolerant operations based on stabilizer codes are the state of the art in suppressing error rates in quantum computations. Most such codes do not permit a straightforward implementation of non-Clifford logical operations, which are necessary to define a universal gate set. As a result, implementations of these operations must use either error-correcting codes with more complicated error correction procedures or gate teleportation and magic states, which are prepared at the logical level, increasing overhead to a degree that precludes near-term implementation. Here, we implement a small quantum algorithm, one-qubit addition, fault-tolerantly on a trapped-ion quantum computer, using the [[ 8 ,   3 ,   2 ]] color code. By removing unnecessary error correction circuits and using low-overhead techniques for fault-tolerant preparation and measurement, we reduce the number of error-prone two-qubit gates and measurements to 36. We observe arithmetic errors with a rate of ∼1.1 × 10 −3 for the fault-tolerant circuit and ∼9.5 × 10 −3 for the unencoded circuit.

Publisher

American Association for the Advancement of Science (AAAS)

Reference35 articles.

1. Quantum algorithms: an overview

2. Demonstration of the trapped-ion quantum CCD computer architecture

3. IBM Newsroom IBM unveils breakthrough 127-qubit quantum processor (2021); https://newsroom.ibm.com/2021-11-16-IBM-Unveils-Breakthrough-127-Qubit-Quantum-Processor.

4. Quantinuum Quantinuum system model H1 product data sheet version 5.20 (2022); https://www.quantinuum.com/hardware/h1.

5. P. W. Shor Fault-tolerant quantum computation in Proceedings of 37th Conference on Foundations of Computer Science (IEEE 1996) pp. 56–65.

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