Yugo Takada; Stephen D. Bartlett; Dominic J. Williamson · 2026
Paper
The preparation of high-fidelity logical magic states is a crucial subroutine for universal fault-tolerant quantum computation (FTQC). Predicting the performance of FTQC and developing improved protocols rely on numerical methods to classically simulate logical magic state preparation in the presence of noise. Clifford logic on Pauli-stabilizer codes with circuit-level Pauli errors can be efficiently simulated using Pauli-stabilizer formalism, but the non-Clifford operations required to prepare logical magic states render generic simulation inefficient. We introduce Clifford-stabilizer simulation, an exact and efficient algorithm based on updating a Clifford-stabilizer group to simulate noisy preparation protocols for a broad class of logical magic states used to implement non-Clifford gates in the third level of the Clifford hierarchy under circuit-level Pauli errors. Clifford-stabilizer simulation applies to a range of operations that commonly appear in preparation protocols for such logical magic states, including Pauli-stabilizer measurements, logical Clifford measurements, and transversal non-Clifford gates. Our algorithm for Clifford-stabilizer simulation maps a non-Clifford circuit with sampled circuit-level Pauli errors to a Clifford circuit that exactly reproduces its measurement outcome distribution, achieving time and space complexities polynomial in relevant protocol parameters. We perform exact simulation of magic state cultivation up to fault distance 7 by Clifford-stabilizer simulation. Our method provides a route to perform exact benchmarking of large-scale logical magic state preparation protocols required for useful FTQC.
Analysis
Preparing paper insights from the available abstract and paper details.
Discovery
Pau Escofet; Carmen G. Almudéver; Sergi Abadal; Eduard Alarcón
Jong Yeon Lee; Koki Okada; Nishad Maskara; Kenta Kasai; Hengyun Zhou
Jubo Xu; Abbas B. Ziad; Prakash Murali; Hongxiang Fan
Shantanu R. Jha; Shoumik D. Chowdhury; Gabriele Rolleri; Anaida Ali; Lev-Arcady Sellem; Réouven Assouly; David Pahl; Lukas Pahl; Junyoung An; Farid Hassani; Hung-Yu Tsao; Chia-Chin Tsai; Aranya Goswami; Gabriel D. Cutter; Jeremie Boudreault; Jeffrey M. Gertler; Michael A. Gingras; Bethany M. Niedzielski; Jeffrey M. Knecht; Mollie E. Schwartz; Kyle Serniak; Jeffrey A. Grover; Baptiste Royer; Max Hays; William D. Oliver
Frederic St-Amand; Jean-Philippe Burelle; Baptiste Royer
Shantanu R. Jha; Shoumik D. Chowdhury; Gabriele Rolleri; Anaida Ali; Lev-Arcady Sellem; Réouven Assouly; David Pahl; Lukas Pahl; Junyoung An; Farid Hassani; Hung-Yu Tsao; Chia-Chin Tsai; Aranya Goswami; Jeremie Boudreault; Jeffrey M. Gertler; Michael A. Gingras; Bethany M. Niedzielski; Jeffrey M. Knecht; Mollie E. Schwartz; Kyle Serniak; Jeffrey A. Grover; Baptiste Royer; Max Hays; William D. Oliver
Source record