Addressable fault-tolerant universal quantum gate operations for high-rate lift-connected surface codes
Josias Old, Juval Bechar, Markus M\"uller, Sascha Heu{\ss}en

TL;DR
This paper introduces a method to implement universal fault-tolerant quantum gates on lift-connected surface codes, enabling practical, high-rate quantum error correction with promising thresholds for near-term quantum computing.
Contribution
It presents a construction for fault-tolerant Clifford and magic state gates on 3D-local lift-connected surface codes, advancing their practical implementation.
Findings
Achieves fault-tolerant universal gates with moderate qubit overhead.
Demonstrates pseudothresholds around 0.005-0.012 under circuit noise.
Provides feasible schemes for near-term quantum error correction.
Abstract
Quantum low-density parity check (qLDPC) codes are among the leading candidates to realize error-corrected quantum memories with low qubit overhead. Potentially high encoding rates and large distance relative to their block size make them appealing for practical suppression of noise in near-term quantum computers. In addition to increased qubit-connectivity requirements compared to more conventional topological quantum error correcting codes, qLDPC codes remain notoriously hard to compute with. In this work, we introduce a construction to implement all Clifford quantum gate operations on the recently introduced lift-connected surface (LCS) codes (Old et al. 2024). These codes can be implemented in a 3D-local architecture and achieve asymptotic scaling . In particular, LCS codes realize favorable instances with small numbers of qubits:…
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