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20182021
most citedAsymptotic Improvements to Quantum Circuits via Qutrits

102 citations · 150 across the 3 of their papers we have counts for

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quant-ph202110 cited

Realization of real-time fault-tolerant quantum error correction

C. Ryan-Anderson, J. G. Bohnet, K. Lee +14

Correcting errors in real time is essential for reliable large-scale quantum computations. Realizing this high-level function requires a system capable of several low-level primiti…

quant-ph202038 cited

Resource-Efficient Quantum Computing by Breaking Abstractions

Yunong Shi, Pranav Gokhale, Prakash Murali +11

Building a quantum computer that surpasses the computational power of its classical counterpart is a great engineering challenge. Quantum software optimizations can provide an acce…

quant-ph2020

Critical faults of leakage errors on the surface code

Natalie C. Brown, Andrew W. Cross, Kenneth R. Brown

Leakage is a particularly damaging error that occurs when a qubit leaves the defined computational subspace. Leakage errors limit the effectiveness of quantum error correcting code…

quant-ph2019102 cited

Asymptotic Improvements to Quantum Circuits via Qutrits

Pranav Gokhale, Jonathan M. Baker, Casey Duckering +3

Quantum computation is traditionally expressed in terms of quantum bits, or qubits. In this work, we instead consider three-level qu. Past work with qutrits has demonstrated…

quant-ph2019

Leakage mitigation for quantum error correction using a mixed qubit scheme

Natalie C. Brown, Kenneth R. Brown

Leakage errors take qubits out of the computational subspace and will accumulate if not addressed. A leaked qubit will reduce the effectiveness of quantum error correction protocol…

quant-ph2019

Handling Leakage with Subsystem Codes

Natalie C. Brown, Michael Newman, Kenneth R. Brown

Leakage is a particularly damaging error that occurs when a qubit state falls out of its two-level computational subspace. Compared to independent depolarizing noise, leaked qubits…