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Quantum Fourier Transform using Dynamic Circuits

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arxiv 2403.09514 v2 pith:63VQLORW submitted 2024-03-14 quant-ph

classification quant-ph
keywords quantumdynamiccircuitsfouriermeasurementsmid-circuittransformadvantages
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

In dynamic quantum circuits, classical information from mid-circuit measurements is fed forward during circuit execution. This emerging capability of quantum computers confers numerous advantages that can enable more efficient and powerful protocols by drastically reducing the resource requirements for certain core algorithmic primitives. In particular, in the case of the $n$-qubit quantum Fourier transform followed immediately by measurement, the scaling of resource requirements is reduced from $O(n^2)$ two-qubit gates in an all-to-all connectivity in the standard unitary formulation to $O(n)$ mid-circuit measurements in its dynamic counterpart without any connectivity constraints. Here, we demonstrate the advantage of dynamic quantum circuits for the quantum Fourier transform on IBM's superconducting quantum hardware with certified process fidelities of $>50\%$ on up to $16$ qubits and $>1\%$ on up to $37$ qubits, exceeding previous reports across all quantum computing platforms. These results are enabled by our contribution of an efficient method for certifying the process fidelity, as well as of a dynamical decoupling protocol for error suppression during mid-circuit measurements and feed-forward within a dynamic quantum circuit that we call ``feed-forward-compensated dynamical decoupling" (FC-DD). Our results demonstrate the advantages of leveraging dynamic circuits in optimizing the compilation of quantum algorithms.

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Cited by 2 Pith papers

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  1. Readout sweet spots for spin qubits with strong spin-orbit interaction

    quant-ph 2025-05 accept novelty 5.0 of 10

    Readout back-action in spin qubits from g-tensor modulation is minimized when the magnetic field is oriented so the static Zeeman field is parallel to the sensor-induced Zeeman fluctuation (gB parallel to g'B), a cond...

  2. Mid-circuit measurement as an algorithmic primitive

    quant-ph 2025-05 conditional novelty 4.0 of 10

    A single-ancilla Hadamard test post-selects a QAOA state toward low-energy answers, but the implementation sets its parameters from the exact ground energy, making the convergence demonstration self-referential.

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