A two-stage PINN optimizes pulse sequences for silicon exchange-only spin qubits to achieve over 99% noise-averaged fidelity while shortening pulse durations by 20-40%.
Malinowski, Peter D
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Proposes a symmetry-protected quantum computing architecture that combines the generalized Kohn theorem, OAM light control, and metamaterial nanofocusing for any parabolic-confinement platform.
citing papers explorer
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Exchange-Only Silicon Based Spin Qubits: Charge Noise, PINN Optimised Pulse Sequences,and Gate-Level Fidelity
A two-stage PINN optimizes pulse sequences for silicon exchange-only spin qubits to achieve over 99% noise-averaged fidelity while shortening pulse durations by 20-40%.
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Symmetry-Protected Quantum Computing using Metamaterials
Proposes a symmetry-protected quantum computing architecture that combines the generalized Kohn theorem, OAM light control, and metamaterial nanofocusing for any parabolic-confinement platform.