Flagging the Clifford hierarchy:~Fault-tolerant logical $\fracπ{2^l}$ rotations via measuring circuit gauge operators of non-Cliffords
Abstract
We provide a recursively defined sequence of flag circuits which will detect logical errors induced by non-fault-tolerant gates on CSS codes with a fault distance of two. As applications, we give a family of circuits with gates and ancillae which implement fault-tolerant logical or gates on any iceberg code and fault-tolerant circuits of size for preparing resource states in the code, which can be used to perform fault-tolerant rotations via gate teleportation, allowing for implementations of these gates that bypass the high overheads of gate synthesis when is small relative to the precision required. We show how the circuits above can be generalized to rotations with identical overheads in , which could be useful in quantum simulations where time is digitized in binary. Finally, we illustrate two approaches to increase the fault-distance of our construction. We show how to increase the fault distance of a Cliffordized version of the T gate circuit to in the Steane code and how to increase the fault-distance of the iceberg circuit to through concatenation in two-level iceberg codes. This yields a targeted logical gate with fault distance on any row of logical qubits in an code.
Source: arXiv:2603.24573v1 - http://arxiv.org/abs/2603.24573v1 PDF: https://arxiv.org/pdf/2603.24573v1 Original Link: http://arxiv.org/abs/2603.24573v1