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Quantum Compiling with Reinforcement Learning on a Superconducting Processor
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To effectively implement quantum algorithms on noisy intermediate-scale quantum (NISQ) processors is a central task in modern quantum technology. NISQ processors feature tens to a few hundreds of noisy qubits with limited coherence times and gate operations with errors, so NISQ algorithms naturally require employing circuits of short lengths via quantum compilation. Here, we develop a reinforcement learning (RL)-based quantum compiler for a superconducting processor and demonstrate its capability of discovering novel and hardware-amenable circuits with short lengths. We show that for the three-qubit quantum Fourier transformation, a compiled circuit using only seven CZ gates with unity circuit fidelity can be achieved. The compiler is also able to find optimal circuits under device topological constraints, with lengths considerably shorter than those by the conventional method. Our study exemplifies the codesign of the software with hardware for efficient quantum compilation, offering valuable insights for the advancement of RL-based compilers.
Forward citations
Cited by 3 Pith papers
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Real-time adaptive quantum error correction by model-free multi-agent learning
Adaptive quantum error correction: multi-agent RL discovers QEC circuits offline; a bandit-controlled variational layer retrains online, cutting logical infidelity about 18x (qubit) and 3x (qutrit) under drifting bit/...
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Microwave Engineering of Tunable Spin Interactions with Superconducting Qubits
A superconducting quantum processor is programmed to realize tunable XYZ, transverse-field Ising, and Dzyaloshinskii-Moriya spin Hamiltonians using single-qubit rotations and native XY coupling.
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Observation of Inelastic Meson Scattering in a Floquet System using a Digital Quantum Simulator
An 8-qubit superconducting processor observed two short-string mesons merging into a longer string meson, demonstrating inelastic meson scattering in a Floquet Z2 lattice gauge theory model.
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