Quantum State and Process Tomography via Adaptive Measurements
Abstract
We investigate quantum state tomography (QST) for pure states and quantum process tomography (QPT) for unitary channels via measurements. For a quantum system with a -dimensional Hilbert space, we first propose an adaptive protocol where only measurement outcomes are used to accomplish the QST for pure states. This idea is then extended to study QPT for unitary channels, where an adaptive unitary process tomography (AUPT) protocol of measurement outcomes is constructed for any unitary channel. We experimentally implement the AUPT protocol in a 2-qubit nuclear magnetic resonance system. We examine the performance of the AUPT protocol when applied to Hadamard gate, gate ( phase gate), and controlled-NOT gate, respectively, as these gates form the universal gate set for quantum information processing purpose. As a comparison, standard QPT is also implemented for each gate. Our experimental results show that the AUPT protocol that reconstructing unitary channels via adaptive measurements significantly reduce the number of experiments required by standard QPT without considerable loss of fidelity.
Cite
@article{arxiv.1604.06277,
title = {Quantum State and Process Tomography via Adaptive Measurements},
author = {Hengyan Wang and Wenqiang Zheng and Nengkun Yu and Keren Li and Dawei Lu and Tao Xin and Carson Li and Zhengfeng Ji and David Kribs and Bei Zeng and Xinhua Peng and Jiangfeng Du},
journal= {arXiv preprint arXiv:1604.06277},
year = {2016}
}
Comments
8 pages, 2 figures and 2 tables. All comments are welcome!