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John K. Stockton

Researcher at California Institute of Technology

Publications -  41
Citations -  2533

John K. Stockton is an academic researcher from California Institute of Technology. The author has contributed to research in topics: Quantum & Quantum state. The author has an hindex of 20, co-authored 41 publications receiving 2389 citations. Previous affiliations of John K. Stockton include Stanford University & Texas Instruments.

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Feedback control of quantum state reduction

TL;DR: The use of stochastic Lyapunov techniques for the design of feedback controllers for quantum spin systems are explored and the possibility of stabilizing one outcome of a quantum measurement with unit probability is demonstrated.
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Adaptive homodyne measurement of optical phase.

TL;DR: An experimental demonstration of the power of feedback in quantum metrology, confirming the predicted superior performance of an adaptive homodyne technique for single-shot measurement of optical phase and underscore the importance of real-time feedback for reaching quantum limits in measurement and control.
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Real-time quantum feedback control of atomic spin-squeezing.

TL;DR: In this paper, real-time feedback performed during a quantum non-demolition measurement of atomic spin-angular momentum allowed the authors to influence the quantum statistics of the measurement outcome.
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Feedback control of quantum state reduction

TL;DR: In this paper, the authors formulate quantum feedback control as a problem of stochastic nonlinear control by considering separately a quantum filtering problem and a state feedback control problem for the filter and demonstrate the possibility of stabilizing one outcome of a quantum measurement with unit probability.
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Absolute geodetic rotation measurement using atom interferometry.

TL;DR: A cold-atom interferometers gyroscope which overcomes accuracy and dynamic range limitations of previous atom interferometer gyroscopes and can be used for precise determination of latitude, azimuth, and Earth's rotation rate.