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Autonomous error correction of a single logical qubit using two transmons
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Autonomous error correction of a single logical qubit using two transmons
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Large-scale quantum computers will inevitably need quantum error correction to protect information against decoherence. Traditional error correction typically requires many qubits, along with high-efficiency error syndrome measurement and real-time feedback. Autonomous quantum error correction (AQEC) instead uses steady-state bath engineering to perform the correction in a hardware-efficient manner. We realize an AQEC scheme, implemented with only two transmon qubits in a 2D scalable architecture, that actively corrects single-photon loss and passively suppresses low-frequency dephasing using six microwave drives. Compared to uncorrected encoding, factors of 2.0, 5.1, and 1.4 improvements are experimentally witnessed for the logical zero, one, and superposition states. Our results show the potential of implementing hardware-efficient AQEC to enhance the reliability of a transmon-based quantum information processor.
Forward citations
Cited by 2 Pith papers
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Discovering autonomous quantum error correction via deep reinforcement learning
An RL agent with curriculum learning discovered the autonomous QEC code |0L>=|4>, |1L>=|7> with a distance-1 cascaded recovery operator, which the paper claims beats breakeven under single- and double-photon loss.
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Handbook of Error-Correcting Codes
The paper compiles a curated handbook reference of error-correcting codes, their symbol-based classifications, and interrelations with mathematical objects and physical phases.
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