Implementing Fault-tolerant Entangling Gates on the Five-qubit Code and the Color Code
C. Ryan-Anderson, N. C. Brown, M. S. Allman, B. Arkin, G. Asa-Attuah,, C. Baldwin, J. Berg, J. G. Bohnet, S. Braxton, N. Burdick, J. P. Campora, A., Chernoguzov, J. Esposito, B. Evans, D. Francois, J. P. Gaebler, T. M., Gatterman, J. Gerber, K. Gilmore, D. Gresh, A. Hall

TL;DR
This paper compares fault-tolerant entangling gate implementations on five-qubit and color codes using trapped-ion quantum computers, demonstrating higher logical fidelities with the color code and integrating error correction primitives during runtime.
Contribution
It introduces a comparative analysis of fault-tolerant logical gates on different quantum error-correcting codes with real hardware implementations and runtime error correction.
Findings
Color code achieves higher logical fidelity than five-qubit code.
Fault-tolerant operations surpass physical qubit fidelities.
Runtime error correction enhances overall logical operation fidelity.
Abstract
We compare two different implementations of fault-tolerant entangling gates on logical qubits. In one instance, a twelve-qubit trapped-ion quantum computer is used to implement a non-transversal logical CNOT gate between two five qubit codes. The operation is evaluated with varying degrees of fault tolerance, which are provided by including quantum error correction circuit primitives known as flagging and pieceable fault tolerance. In the second instance, a twenty-qubit trapped-ion quantum computer is used to implement a transversal logical CNOT gate on two [[7,1,3]] color codes. The two codes were implemented on different but similar devices, and in both instances, all of the quantum error correction primitives, including the determination of corrections via decoding, are implemented during runtime using a classical compute environment that is tightly integrated with the quantum…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum-Dot Cellular Automata · Quantum Information and Cryptography
