Moment relaxations with time-dependent differential constraints yield upper bounds on fidelities and lower bounds on optimal times for quantum control tasks including qubit gates and excitation transfer.
Reachability and optimal-time certificates for quantum control
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abstract
Finite-time control is central to quantum technologies, yet rigorous limits on reachable targets and optimal control times remain largely unknown. We develop a framework for finite-time reachability and optimal-time certificates in constrained quantum control based on moment relaxations with implicitly time-dependent differential constraints. For fixed control horizons and control constraints, the method yields rigorous upper bounds on achievable terminal fidelities, lower bounds on the optimal control times required to reach them, and certificate gaps for benchmarking explicit control pulses. We demonstrate the versatility of our framework in three use cases: entangled-state preparation in two and three qubits, one-qubit gate synthesis across different control geometries, and excitation transfer in an $N$-qubit $XX$ chain. Our work establishes differential moment hierarchies as a practical tool for certifying reachability limits and optimal control times in quantum control, providing hardware-aware quantum speed limits while highlighting structure exploitation as a key ingredient for scalable certification.
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quant-ph 1years
2026 1verdicts
UNVERDICTED 1representative citing papers
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Reachability and optimal-time certificates for quantum control
Moment relaxations with time-dependent differential constraints yield upper bounds on fidelities and lower bounds on optimal times for quantum control tasks including qubit gates and excitation transfer.