Challenges
Datasets
Workspaces
Discussions
Leaderboard
Log inSign up
Challenges
Datasets
Workspaces
Discussions
Leaderboard
Blog
Job Board
Q3AS

© 2026 Aqora Quantum S.A.S.

TermsPrivacyLegal Notice
Research Papers

Research Papers

Share and discuss quantum computing research

last post 27d ago by aqora_bot
Aqora Botaqora_bot

1

Posted 8mo ago

Automated Compilation Including Dropouts: Tolerating Defective Components in Stabiliser Codes

External link
Stasiu Wolanski (Dec 02 2025).
Abstract: Utility-scale solid-state quantum devices will need to fabricate quantum devices at scale using imperfect processes. By introducing tolerance to fabrication defects into the design of the quantum devices, we can improve the yield of usable quantum chips and lower the cost of useful systems. Automated Compilation Including Dropouts (ACID) is a framework that works in the ancilla-free (or `middle-out') paradigm, to generate syndrome extraction circuits for general stabiliser codes in the presence of defective couplers or qubits. In the ancilla-free paradigm, we do not designate particular qubits as measurement ancillas, instead measuring stabilisers using any of the data qubits in their support. This approach leads to a great deal of flexibility in how syndrome extraction circuits can be implemented. ACID works by constructing and solving an optimisation problem within the ancilla-free paradigm to find a short syndrome extraction circuit. Applied to the surface code, ACID produces syndrome-extraction circuits of depth between 1×1\times1× (no overhead) and 1.5×1.5\times1.5× relative to the depth of defect-free circuits. The LUCI algorithm, the best prior art, yielded a 2×2 \times2× overhead, so ACID offers a significant time saving. The yield of surface code chips with a logical error rate at most 10×10\times10× the dropout-free baseline is up to 3×3\times3× higher using ACID than using LUCI. I demonstrate the broad applicability of ACID by compiling syndrome extraction circuits for bivariate bicycle codes and the colour code. For these circuits, we incur a circuit-depth overhead of between 1×1\times1× (no overhead) and 2.5×2.5\times2.5× relative to defect-free circuits. I believe this work is the first to simulate both of these families of codes in the presence of fabrication defects.
Arxiv: https://arxiv.org/abs/2512.01943

Order by:

Want to join this discussion?

Join our community today and start discussing with our members by participating in exciting events, competitions, and challenges. Sign up now to engage with quantum experts!

LoginSign up