Codesign of quantum error-correcting codes and modular chiplets in the presence of defects
Sophia Fuhui Lin, Joshua Viszlai, Kaitlin N. Smith, Gokul Subramanian Ravi, Charles Yuan, Frederic T. Chong, Benjamin J. Brown
Abstract
Fabrication errors pose a significant challenge in scaling up solid-state quantum devices to the sizes required for faulttolerant (FT) quantum applications. To mitigate the resource overhead caused by fabrication errors, we combine two approaches: (1) leveraging the flexibility of a modular architecture, (2) adapting the procedure of quantum error correction (QEC) to account for fabrication defects.
We simulate the surface code adapted to defective qubit arrays to find metrics that characterize how defects affect fidelity. We then use our simulations to determine the impact of defects on the resource overhead of realizing a faulttolerant quantum computer on a chiplet-based modular architecture. Our QEC simulation adapts the syndrome readout circuit for the surface code to account for an arbitrary distribution of defects. Our simulations show that our strategy for dealing with fabrication defects demonstrates an exponential suppression of logical failure, where error rates of non-defective physical qubits are ∼ 0.1% for a circuit-based noise model. This is a typical regime on which we imagine running the defect-free surface code. We use our numerical results to establish post-selection criteria for assembling a device with defective chiplets. Using our criteria, we then
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