Quantum state and process tomography via adaptive measurements

被引:0
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作者
HengYan Wang
WenQiang Zheng
NengKun Yu
KeRen Li
DaWei Lu
Tao Xin
Carson Li
ZhengFeng Ji
David Kribs
Bei Zeng
XinHua Peng
JiangFeng Du
机构
[1] University of Science and Technology of China,Hefei National Laboratory for Physical Sciences at Microscale and Department of Modern Physics
[2] Zhejiang University of Technology,Department of Applied Physics
[3] University of Waterloo,Institute for Quantum Computing
[4] University of Guelph,Department of Mathematics & Statistics
[5] University of Technology Sydney,Centre for Quantum Computation & Intelligent Systems, Faculty of Engineering and Information Technology
[6] Tsinghua University,State Key Laboratory of Low
[7] University of Guelph,Dimensional Quantum Physics and Department of Physics
[8] Chinese Academy of Sciences,Department of Physics
[9] Canadian Institute for Advanced Research,State Key Laboratory of Computer Science, Institute of Software
关键词
quantum tomography; state reconstruction; nuclear magnetic resonance;
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学科分类号
摘要
We investigate quantum state tomography (QST) for pure states and quantum process tomography (QPT) for unitary channels via adaptive measurements. For a quantum system with a d-dimensional Hilbert space, we first propose an adaptive protocol where only 2d − 1 measurement outcomes are used to accomplish the QST for all pure states. This idea is then extended to study QPT for unitary channels, where an adaptive unitary process tomography (AUPT) protocol of d2+d−1 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, T gate (π/8 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.
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