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quant-ph2025

Excising dead components in the surface code using minimally invasive alterations: A performance study

Ryan V. Mishmash, Vadym Kliuchnikov, Juan Bello-Rivas +7

The physical implementation of a large-scale error-corrected quantum processor will necessarily need to mitigate the presence of defective (thereby "dead") physical components in i…

quant-ph2025

Roadmap to fault tolerant quantum computation using topological qubit arrays

David Aasen, Morteza Aghaee, Zulfi Alam +179

We describe a concrete device roadmap towards a fault-tolerant quantum computing architecture based on noise-resilient, topologically protected Majorana-based qubits. Our roadmap e…

quant-ph2025

Fault-tolerant quantum computation with a neutral atom processor

Ben W. Reichardt, Adam Paetznick, David Aasen +69

Quantum computing experiments are transitioning from running on physical qubits to using encoded, logical qubits. Fault-tolerant computation can identify and correct errors, and ha…

quant-ph2024

A fault-tolerant pairwise measurement-based code on eight qubits

Linnea Grans-Samuelsson, David Aasen, Parsa Bonderson

We construct a pairwise measurement-based code on eight qubits that is error correcting for circuit noise, with fault distance 3. The code can be implemented on a subset of a recta…

quant-ph2024

Improved Pairwise Measurement-Based Surface Code

Linnea Grans-Samuelsson, Ryan V. Mishmash, David Aasen +5

We devise a new realization of the surface code on a rectangular lattice of qubits utilizing single-qubit and nearest-neighbor two-qubit Pauli measurements and three auxiliary qubi…