| name | singularity-free-invariant-control |
| description | Singularity-free dynamical invariants-based quantum control for finite-dimensional state preparation under arbitrary noise. Use when designing invariant-based quantum control protocols, robust state preparation for NISQ hardware, non-Markovian open quantum systems, SU(2) subspace control, or noise-aware control synthesis. |
| metadata | {"arxiv_id":"2510.15340","published":"2025-10-17","authors":"Ritik Sareen, Akram Youssry, Alberto Peruzzo","tags":["quantum-control","invariant-based","state-preparation","non-Markovian","NISQ","robustness"]} |
Core Concept
Invariant-based inverse engineering provides a principled framework for synthesizing analytic control fields, but existing parameterizations often produce experimentally infeasible singular pulses and are limited to simplified Lindblad noise models. This singularity-free framework extends invariant-based control to realistic open-system regimes with arbitrary noise conditions.
Key Technical Insights
-
SU(2) subspace reduction: Transforms finite-dimensional control problem into equivalent single-qubit problem by restricting dynamics to a designed SU(2) subspace, simplifying the control synthesis.
-
Two-stage protocol:
- Stage 1: Construct a family of bounded pulses achieving perfect state preparation in closed systems
- Stage 2: Identify the optimal member minimizing noise effects — produces smooth, hardware-feasible control fields
-
Dual noise handling:
- Characterized noise: Noise-aware control synthesis using full master-equation description
- Uncharacterized noise: Noise-agnostic variant preserves robustness without requiring master-equation description
Design Principles
- Bounded pulses over singular ones: Avoid experimentally infeasible control fields
- SU(2) reduction: Simplify high-dimensional control to single-qubit equivalent
- Noise-agnostic fallback: Maintain robustness when noise characterization is unavailable
- Hardware-feasible fields: Smooth, bounded control fields compatible with NISQ hardware
Applications
- High-fidelity state preparation on NISQ devices
- Non-Markovian open quantum system control
- Quantum state engineering with environmental memory
- Communication and sensing state preparation
Activation Keywords
singularity-free quantum control, dynamical invariants, invariant-based inverse engineering, SU(2) subspace control, non-Markovian quantum control, bounded pulses, NISQ state preparation, noise-aware control synthesis, open quantum systems