We describe a scheme for quantum error correction that employs feedback and weak measurement rather than the standard tools of projective measurement and fast controlled unitary gates. The advantage of this scheme over previous protocols (for example Ahn et. al, PRA, 65, 042301 (2001)), is that it requires little side processing while remaining robust to measurement inefficiency, and is therefore considerably more practical. We evaluate the performance of our scheme by simulating the correction of bit-flips. We also consider implementation in a solid-state quantum computation architecture and estimate the maximal error rate which could be corrected with current technology
Quantum information science has blossomed into a major research field over the past decade or so. In...
We address the standard quantum error correction using the three-qubit bit-flip code, yet in continu...
We address the standard quantum error correction using the three-qubit bit-flip code, yet in continu...
We describe a scheme for quantum-error correction that employs feedback and weak measurement rather ...
We describe a scheme for quantum error correction that employs feedback and weak measurement rather ...
We show that quantum feedback control can be used as a quantum-error-correction process for errors i...
We show that quantum feedback control can be used as a quantum error correction process for errors i...
We show that quantum feedback control can be used as a quantum error correction process for errors i...
We describe a protocol for continuously protecting unknown quantum states from decoherence that inco...
The standard quantum error correction protocols use projective measurements to extract the error syn...
The standard quantum error correction protocols use projective measurements to extract the error syn...
The advance of experimental techniques in circuit quantum electrodynamics over last decadehas made i...
The advance of experimental techniques in circuit quantum electrodynamics over last decadehas made i...
International audienceWe address the standard quantum error correction using the three-qubit bit-fli...
International audienceWe address the standard quantum error correction using the three-qubit bit-fli...
Quantum information science has blossomed into a major research field over the past decade or so. In...
We address the standard quantum error correction using the three-qubit bit-flip code, yet in continu...
We address the standard quantum error correction using the three-qubit bit-flip code, yet in continu...
We describe a scheme for quantum-error correction that employs feedback and weak measurement rather ...
We describe a scheme for quantum error correction that employs feedback and weak measurement rather ...
We show that quantum feedback control can be used as a quantum-error-correction process for errors i...
We show that quantum feedback control can be used as a quantum error correction process for errors i...
We show that quantum feedback control can be used as a quantum error correction process for errors i...
We describe a protocol for continuously protecting unknown quantum states from decoherence that inco...
The standard quantum error correction protocols use projective measurements to extract the error syn...
The standard quantum error correction protocols use projective measurements to extract the error syn...
The advance of experimental techniques in circuit quantum electrodynamics over last decadehas made i...
The advance of experimental techniques in circuit quantum electrodynamics over last decadehas made i...
International audienceWe address the standard quantum error correction using the three-qubit bit-fli...
International audienceWe address the standard quantum error correction using the three-qubit bit-fli...
Quantum information science has blossomed into a major research field over the past decade or so. In...
We address the standard quantum error correction using the three-qubit bit-flip code, yet in continu...
We address the standard quantum error correction using the three-qubit bit-flip code, yet in continu...