Sketch Tomography: Hybridizing Classical Shadow and Matrix Product State
By: Xun Tang , Haoxuan Chen , Yuehaw Khoo and more
Potential Business Impact:
Figures out hidden quantum states faster and better.
We introduce Sketch Tomography, an efficient procedure for quantum state tomography based on the classical shadow protocol used for quantum observable estimations. The procedure applies to the case where the ground truth quantum state is a matrix product state (MPS). The density matrix of the ground truth state admits a tensor train ansatz as a result of the MPS assumption, and we estimate the tensor components of the ansatz through a series of observable estimations, thus outputting an approximation of the density matrix. The procedure is provably convergent with a sample complexity that scales quadratically in the system size. We conduct extensive numerical experiments to show that the procedure outputs an accurate approximation to the quantum state. For observable estimation tasks involving moderately large subsystems, we show that our procedure gives rise to a more accurate estimation than the classical shadow protocol. We also show that sketch tomography is more accurate in observable estimation than quantum states trained from the maximum likelihood estimation formulation.
Similar Papers
Agnostic Product Mixed State Tomography via Robust Statistics
Quantum Physics
Helps computers understand quantum states better.
A Random Matrix Theory of Pauli Tomography
Quantum Physics
Improves how we understand quantum computer mistakes.
The Efficiency Frontier: Classical Shadows versus Quantum Footage
Quantum Physics
Helps quantum computers work better with regular computers.