Rohan Mehta; Varun Menon; Hengyun Zhou; Mikhail D. Lukin; J. Pablo Bonilla Ataides · 2026
Paper
Magic state cultivation is a promising method for preparing high-fidelity non-Clifford resource states - a central component of fault-tolerant quantum computing - with low spacetime overhead. In benchmarking cultivation, existing resource estimates assume access to noiseless transversal measurement of the output magic state to allow for postselection during the final escape stage of the cultivation process. However, such measurements would destroy the magic state and are therefore unavailable during computation. We develop an open-boundary postselection method, Caliper, that uses only nondestructive mid-circuit syndrome information and substantially outperforms existing methods operating under these constraints. In some regimes, our postselection method uniquely recovers the resource efficiency of prior estimates. However, in other cases, we observe a tradeoff. At spacetime costs reported in previous works, the achievable logical error rates can be orders of magnitude higher, and recovering the reported logical error rate requires substantially larger codes and longer escape stages. Our results highlight how practical considerations involving mid-circuit postselection can impact the design and performance of magic state cultivation protocols.
Analysis
Preparing paper insights from the available abstract and paper details.
Discovery
Jong Yeon Lee
Sayam Sethi; Aditi Awasthi; Maxwell Poster; Joshua Viszlai; Jonathan Mark Baker
Serban Cercelescu; Mark Koch; Arthur Pesah
J. A. Montanez-Barrera; Kristel Michielsen
Shunta Takahashi; Keisuke Fujii
Yuguo Shao; Zi-Wen Liu
Source record