Optimal Allocation of Pauli Measurements for Low-rank Quantum State Tomography
Zhen Qin, Casey Jameson, Zhexuan Gong, Michael B. Wakin and, Zhihui Zhu

TL;DR
This paper analyzes the trade-off between the number of measurement settings and repeated measurements in quantum state tomography, showing that fewer repetitions per setting can be optimal for low-rank states.
Contribution
It provides a theoretical framework for understanding measurement setting and repetition trade-offs in low-rank quantum state tomography using Pauli measurements.
Findings
Bounded recovery error for all second-order critical points.
Minimizing repeated measurements per setting is advantageous.
Wirtinger gradient descent converges linearly to critical points.
Abstract
The process of reconstructing quantum states from experimental measurements, accomplished through quantum state tomography (QST), plays a crucial role in verifying and benchmarking quantum devices. A key challenge of QST is to find out how the accuracy of the reconstruction depends on the number of state copies used in the measurements. When multiple measurement settings are used, the total number of state copies is determined by multiplying the number of measurement settings with the number of repeated measurements for each setting. Due to statistical noise intrinsic to quantum measurements, a large number of repeated measurements is often used in practice. However, recent studies have shown that even with single-sample measurements--where only one measurement sample is obtained for each measurement setting--high accuracy QST can still be achieved with a sufficiently large number of…
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Taxonomy
TopicsElectronic and Structural Properties of Oxides · Advanced Electron Microscopy Techniques and Applications · Force Microscopy Techniques and Applications
