Variational Quantum Algorithms for Trace Distance and Fidelity Estimation
arXiv:2012.05768 · doi:10.1088/2058-9565/ac38ba
Abstract
Estimating the difference between quantum data is crucial in quantum computing. However, as typical characterizations of quantum data similarity, the trace distance and quantum fidelity are believed to be exponentially-hard to evaluate in general. In this work, we introduce hybrid quantum-classical algorithms for these two distance measures on near-term quantum devices where no assumption of input state is required. First, we introduce the Variational Trace Distance Estimation (VTDE) algorithm. We in particular provide the technique to extract the desired spectrum information of any Hermitian matrix by local measurement. A novel variational algorithm for trace distance estimation is then derived from this technique, with the assistance of a single ancillary qubit. Notably, VTDE could avoid the barren plateau issue with logarithmic depth circuits due to a local cost function. Second, we introduce the Variational Fidelity Estimation (VFE) algorithm. We combine Uhlmann's theorem and the freedom in purification to translate the estimation task into an optimization problem over a unitary on an ancillary system with fixed purified inputs. We then provide a purification subroutine to complete the translation. Both algorithms are verified by numerical simulations and experimental implementations, exhibiting high accuracy for randomly generated mixed states.
15 pages, v2 updated some results; v3 published version
References in corpus (9)
- Variational Quantum Algorithms
- An introduction to quantum machine learning
- Cost of quantum entanglement simplified
- A Variational Quantum Algorithm for Preparing Quantum Gibbs States
- Variational Hamiltonian Diagonalization for Dynamical Quantum Simulation
- Subsystem Trace Distance in Quantum Field Theory
- Practical distributed quantum information processing with LOCCNet
- Simpler semidefinite programs for completely bounded norms
- What The Trace Distance Security Criterion in Quantum Key Distribution Does And Does Not Guarantee