Simultaneous Measurement of Multiple Incompatible Observables and Tradeoff in Multiparameter Quantum Estimation
arXiv:2310.11925 · doi:10.1038/s41534-024-00894-x
Abstract
How well can multiple incompatible observables be implemented by a single measurement? This is a fundamental problem in quantum mechanics with wide implications for the performance optimization of numerous tasks in quantum information science. While existing studies have been mostly focusing on the approximation of two observables with a single measurement, in practice multiple observables are often encountered, for which the errors of the approximations are little understood. Here we provide a framework to study the implementation of an arbitrary finite number of observables with a single measurement. Our methodology yields novel analytical bounds on the errors of these implementations, significantly advancing our understanding of this fundamental problem. Additionally, we introduce a more stringent bound utilizing semi-definite programming that, in the context of two observables, generates an analytical bound tighter than previously known bounds. The derived bounds have direct applications in assessing the trade-off between the precision of estimating multiple parameters in quantum metrology, an area with crucial theoretical and practical implications. To validate the validity of our findings, we conducted experimental verification using a superconducting quantum processor. This experimental validation not only confirms the theoretical results but also effectively bridges the gap between the derived bounds and empirical data obtained from real-world experiments. Our work paves the way for optimizing various tasks in quantum information science that involve multiple noncommutative observables.
References in corpus (12)
- Heisenberg's Uncertainty Principle
- On quantumness in multi-parameter quantum estimation
- Optimal estimation of joint parameters in phase space
- Control-enhanced multiparameter quantum estimation
- Incompatibility in Quantum Parameter Estimation
- Universally Fisher-Symmetric Informationally Complete Measurements
- Maximal quantum Fisher information matrix
- Information geometry under hierarchical quantum measurement
- Optimal joint estimation of multiple Rabi frequencies
- Incompatibility measures in multi-parameter quantum estimation under hierarchical quantum measurements
- Uncertainties of genuinely incompatible triple measurements based on statistical distance
- A Geometrical Approach to Quantum Estimation Theory
Cited by in corpus (6)
- Achieving the Multi-parameter Quantum Cramér-Rao Bound with Antiunitary Symmetry
- Simultaneous optical phase and loss estimation revisited: measurement and probe incompatibility
- Quantum multiphase estimation
- Approaching the Multiparameter Quantum Cramér-Rao Bound via Classical Correlation and Entangling Measurements
- Minimal Trade-off and Optimal Measurement for Multiparameter Quantum Estimation
- Experimental Joint Estimation of Phase and Phase Diffusion via Deterministic Bell Measurements