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Generation and Coherent Control of Pulsed Quantum Frequency Combs
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Adaptive optimal control of entangled qubits.

David L Goodwin1, Pranav Singh2, Mohammadali Foroozandeh1

  • 1Chemistry Research Laboratory, University of Oxford, Mansfield Road, Oxford OX1 3TA, UK.

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|December 8, 2022
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Summary

We developed QOALA, a fast and accurate quantum optimal control algorithm for interacting qubits. It achieves significant speedups over exact methods by adaptively adjusting computational cost, making quantum control more accessible.

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Area of Science:

  • Quantum Information Science
  • Quantum Computing
  • Quantum Control

Background:

  • Optimal control of quantum systems is crucial but computationally expensive.
  • Existing algorithms often overlook the high computational cost for interacting particle systems.
  • Need for efficient and accurate methods for quantum control applications.

Purpose of the Study:

  • To present a novel, fast, and accurate optimal control algorithm for interacting qubit systems.
  • To address the computational cost limitations of current quantum control methods.
  • To provide a general and accurate solution compatible with diverse Hamiltonian structures.

Main Methods:

  • Introduced QOALA (Quantum Optimal Control by Adaptive Low-cost Algorithm).
  • Employs inexpensive, low-accuracy approximations for propagators far from the optimum.
  • Adaptively switches to higher-accuracy, higher-cost propagators as the optimum is approached.
  • Utilizes analytical Lie algebraic derivatives, avoiding computationally expensive matrix exponentials.

Main Results:

  • QOALA offers a predicted O(M^2) speedup for an M-qubit system compared to state-of-the-art exact methods.
  • The algorithm maintains the overall accuracy of the optimal solution.
  • Demonstrates enhanced performance due to the use of analytical derivatives.

Conclusions:

  • QOALA provides a significant advancement in computational efficiency for quantum optimal control.
  • The adaptive strategy and analytical derivatives make quantum control more accessible and practical.
  • This method is broadly applicable to various quantum systems and Hamiltonian structures.