Error Aware Clifford Circuit Compilation
Alan Martin Robertson · The Sydney eScholarship Repository (The University of Sydney) · 2019
We demonstrate that small quantum memories, realised via quantum error correction in multi-qubit devices and implemented using noisy Clifford circuits, can benefit significantly from tailoring the choice of code to the error model of the Cliffords gates and environment. We present a simulation of these errors and the results of searching across random quantum error correcting codes and implementing the associated Clifford encoding circuits. This modeling incorporates a better representation of the experimental complexity involved in implementing these codes and demonstrates that tailored codes can outperform the Steane code with more realistic experimental noise. Depending on the error model, they are required to surpass the fault tolerant threshold. These Pauli error models correspond to individual Clifford generators and environmental noise on the wires. We present error models which incorporate independent identically distributed (IID) errors and biased Pauli errors in the construction and optimisation of Clifford circuits associated with maintaining a quantum memory.