Realization of Constant-Depth Fan-Out with Real-Time Feedforward on a Superconducting Quantum Processor
ORAL
Abstract
When using unitary gate sequences, the growth in depth of many quantum circuits with output size poses significant obstacles to practical quantum computation. The quantum fan-out operation, which reduces the circuit depth of quantum algorithms such as the quantum Fourier transform and Shor's algorithm, is an example that can be realized in constant depth if assisted with mid-circuit measurement and feedforward control. In this talk, we demonstrate a quantum fan-out operation with real-time feedforward on up to four output qubits using a superconducting quantum processor. By performing quantum state tomography on the output states, we benchmark our sequence with input states spanning the entire Bloch sphere. We decompose the output-state error into a set of independently characterized error contributions. We extrapolate our constant-depth circuit to offer a scaling advantage compared to the unitary fan-out sequence beyond 25 output qubits with feedforward control, or beyond 17 output qubits if the classical feedforward latency is negligible.
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Publication: Y. Song et al., arXiv:2409.06989 (2024)
Presenters
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Yongxin Song
ETH Zurich
Authors
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Yongxin Song
ETH Zurich
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Liberto Beltrán
Zurich Instruments, ETH Zurich
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Ilya Besedin
ETH Zurich
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Michael Kerschbaum
ETH Zurich, ETH Zurich, Paul Scherrer Institute
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Marek Pechal
ETH Zurich
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François Swiadek
ETH Zurich
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Christoph Hellings
ETH Zurich
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Dante Colao Zanuz
ETH Zurich
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Alexander Flasby
ETH Zurich, ETH Zurich, Paul Scherrer Institute, ETH Zürich
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Jean-Claude Besse
ETH Zurich
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Andreas Wallraff
ETH Zurich, ETH Zurich, Paul Scherrer Institute