We develop a classical bit-flip correction method to mitigate measurement errors on quantum computers. This method can be applied to any operator, any number of qubits, and any realistic bit-flip probability. We first demonstrate the successful performance of this method by correcting the noisy measurements of the ground-state energy of the longitudinal Ising model. We then generalize our results to arbitrary operators and test our method both numerically and experimentally on IBM quantum hardware. As a result, our correction method reduces the measurement error on the quantum hardware by up to one order of magnitude. We finally discuss how to pre-process the method and extend it to other errors sources beyond measurement errors. For local ...
Realizing the potential of quantum computing will require achieving sufficiently low logical error r...
The storage and processing of quantum information are susceptible to external noise, resulting in co...
Continuous quantum error correction has been found to have certain advantages over discrete quantum ...
We develop a classical bit-flip correction method to mitigate measurement errors on quantum computer...
Quantum computers are becoming increasingly accessible, and may soon outperform classical computers ...
The storage and processing of quantum information are susceptible to external noise, resulting in co...
Readout errors are among the most dominant errors on current noisy intermediate-scale quantum device...
We present an error mitigation scheme which corrects readout errors on Noisy Intermediate-Scale Quan...
Quantum computers are actively competing to surpass classical supercomputers, but quantum errors rem...
Correcting errors due to noise in quantum circuits run on current and near-term quantum hardware is ...
We present a post-compilation quantum circuit optimization technique that takes into account the var...
Mitigating errors is a significant challenge for near term quantum computers. One of the most import...
Quantum computing devices are inevitably subject to errors. To leverage quantum technologies for com...
The hope of the quantum computing field is that quantum architectures are able to scale up and reali...
Canonical discrete quantum error correction (DQEC) schemes use projective von Neumann measurements o...
Realizing the potential of quantum computing will require achieving sufficiently low logical error r...
The storage and processing of quantum information are susceptible to external noise, resulting in co...
Continuous quantum error correction has been found to have certain advantages over discrete quantum ...
We develop a classical bit-flip correction method to mitigate measurement errors on quantum computer...
Quantum computers are becoming increasingly accessible, and may soon outperform classical computers ...
The storage and processing of quantum information are susceptible to external noise, resulting in co...
Readout errors are among the most dominant errors on current noisy intermediate-scale quantum device...
We present an error mitigation scheme which corrects readout errors on Noisy Intermediate-Scale Quan...
Quantum computers are actively competing to surpass classical supercomputers, but quantum errors rem...
Correcting errors due to noise in quantum circuits run on current and near-term quantum hardware is ...
We present a post-compilation quantum circuit optimization technique that takes into account the var...
Mitigating errors is a significant challenge for near term quantum computers. One of the most import...
Quantum computing devices are inevitably subject to errors. To leverage quantum technologies for com...
The hope of the quantum computing field is that quantum architectures are able to scale up and reali...
Canonical discrete quantum error correction (DQEC) schemes use projective von Neumann measurements o...
Realizing the potential of quantum computing will require achieving sufficiently low logical error r...
The storage and processing of quantum information are susceptible to external noise, resulting in co...
Continuous quantum error correction has been found to have certain advantages over discrete quantum ...