SC2024Top-tier venue
On the Efficacy of Surface Codes in Compensating for Radiation Events in Superconducting Devices
Marzio Vallero, Gioele Casagranda, Flavio Vella, Paolo Rech
Abstract
Reliability is fundamental for developing large-scale quantum computers. Since the benefit of technological advancements to the qubit’s stability is saturating, algorithmic solutions, such as quantum error correction (QEC) codes, are needed to bridge the gap to reliable computation. Unfortunately, the deployment of the first quantum computers has identified faults induced by natural radiation as an additional threat to qubits reliability. The high sensitivity of qubits to radiation hinders the large-scale adoption of quantum computers, since the persistence and area-of-effect of the fault can potentially undermine the efficacy of the most advanced QEC. In this paper, we investigate the resilience of various implementations of state-of-the-art QEC codes to radiation-induced faults. We report data from over 400 million fault injections and correlate hardware faults with the logical error observed after decoding the code output, extrapolating physical-to-logical error rates. We compare the code’s radiation-induced logical error rate over the code distance, the number and role in the QEC of physical qubits, the underlying quantum computer topology, and particle energy spread in the chip. We show that, by simply selecting and tuning properly the surface code, thus without introducing any overhead, the probability of correcting a radiation-induced fault is increased by up to 10%. Finally, we provide indications and guidelines for the design of future QEC codes to further increase their effectiveness against radiation-induced events.
Ask about this paper
Your agent reads all of it.
Lune indexed this paper to the last equation, along with the top-tier papers that cite it. Ask a question and the answer quotes them.
Your agent calls
Luneget_paper_fulltext
Free to start. No credit card required.
Terminal
Install the CLIlune papers fulltext 7937c1ed-6d5a-470c-a406-4a2124564591Builds on3
- Astrea: Accurate Quantum Error-Decoding via Practical Minimum-Weight Perfect-MatchingSuhas Vittal, Poulami Das, Moinuddin K. QureshiISCA 2023 · 47 citations
- Better Than Worst-Case Decoding for Quantum Error CorrectionGokul Subramanian Ravi, Jonathan M. Baker, Arash Fayyazi, Sophia Fuhui Lin et al.ASPLOS 2023 · 30 citations
- Codesign of quantum error-correcting codes and modular chiplets in the presence of defectsSophia Fuhui Lin, Joshua Viszlai, Kaitlin N. Smith, Gokul Subramanian Ravi et al.ASPLOS 2024 · 17 citations
Related papers
- CaliQEC: In-situ Qubit Calibration for Surface Code Quantum Error CorrectionXiang Fang, Keyi Yin, Yuchen Zhu, Jixuan Ruan et al.ISCA 2025 · 1 citation
- Synchronization for Fault-Tolerant Quantum ComputersSatvik Maurya, Swamit TannuISCA 2025 · 4 citations
- QECOOL: On-Line Quantum Error Correction with a Superconducting Decoder for Surface CodeYosuke Ueno, Masaaki Kondo, Masamitsu Tanaka, Yasunari Suzuki et al.DAC 2021 · 2 citations
- Verifying Fault-Tolerance of Quantum Error Correction CodesKean Chen, Yuhao Liu, Wang Fang, Jennifer Paykin et al.CAV 2025 · 6 citations
- Q3DE: A fault-tolerant quantum computer architecture for multi-bit burst errors by cosmic raysYasunari Suzuki, Takanori Sugiyama, Tomochika Arai, Wang Liao et al.MICRO 2022 · 18 citations
