Francesco Battistel; Christopher Chamberland; Kauser Johar; Ramon W. J. Overwater; Fabio Sebastiano; Luka Skorić; Yosuke Ueno; Muhammad Usman · 2023 · Nano Futures
Paper
Abstract Quantum computing is poised to solve practically useful problems which are computationally intractable for classical supercomputers. However, the current generation of quantum computers are limited by errors that may only partially be mitigated by developing higher-quality qubits. Quantum error correction (QEC) will thus be necessary to ensure fault tolerance. QEC protects the logical information by cyclically measuring syndrome information about the errors. An essential part of QEC is the decoder, which uses the syndrome to compute the likely effect of the errors on the logical degrees of freedom and provide a tentative correction. The decoder must be accurate, fast enough to keep pace with the QEC cycle (e.g. on a microsecond timescale for superconducting qubits) and with hard real-time system integration to support logical operations. As such, real-time decoding is essential to realize fault-tolerant quantum computing and to achieve quantum advantage. In this work, we highlight some of the key challenges facing the implementation of real-time decoders while providing a succinct summary of the progress to-date. Furthermore, we lay out our perspective for the future development and provide a possible roadmap for the field of real-time decoding in the next few years. As the quantum hardware is anticipated to scale up, this perspective article will provide a guidance for researchers, focusing on the most pressing issues in real-time decoding and facilitating the development of solutions across quantum, nano and computer science.
Analysis
This paper reviews the progress, challenges, and future outlook of real-time decoders, which are essential for fault-tolerant quantum computing by correcting errors detected through syndrome measurements.
Discovery
V. G. Matsos; C. H. Valahu; M. J. Millican; T. Navickas; X. C. Kolesnikow; M. J. Biercuk; T. R. Tan
Tom Peham; Ludwig Schmid; Lucas Berent; Markus Müller; Robert Wille
Bence Hetényi; James R. Wootton
Hayato Goto
Amara Katabarwa; Katerina Gratsea; Athena Caesura; Peter D. Johnson
Paul V. Klimov; Andreas Bengtsson; Chris Quintana; Alexandre Bourassa; Sabrina Hong; A. Dunsworth; Kevin J. Satzinger; William P. Livingston; Volodymyr Sivak; Murphy Yuezhen Niu; Trond I. Andersen; Yaxing Zhang; Desmond Chik; Zijun Chen; Charles Neill; Catherine Erickson; Alejandro Grajales Dau; A. Megrant; P. Roushan; Alexander N. Korotkov; J. Kelly; Vadim Smelyanskiy; Yu Chen; Hartmut Neven
Source record