Adaptive Quantum State Tomography with Active Learning
Hannah Lange, Matja\v{z} Kebri\v{c}, Maximilian Buser, Ulrich, Schollw\"ock, Fabian Grusdt, Annabelle Bohrdt

TL;DR
This paper introduces an active learning-based quantum state tomography method that adaptively selects measurement bases to efficiently reconstruct quantum states, significantly reducing measurement resources needed for large quantum systems.
Contribution
The authors develop and demonstrate an adaptive quantum state tomography scheme that outperforms random measurement strategies, enabling scalable and efficient quantum state characterization.
Findings
Enhanced reconstruction accuracy with fewer measurements
Effective application to multi-qubit and many-body states
Potential for scalable quantum system characterization
Abstract
Recently, tremendous progress has been made in the field of quantum science and technologies: different platforms for quantum simulation as well as quantum computing, ranging from superconducting qubits to neutral atoms, are starting to reach unprecedentedly large systems. In order to benchmark these systems and gain physical insights, the need for efficient tools to characterize quantum states arises. The exponential growth of the Hilbert space with system size renders a full reconstruction of the quantum state prohibitively demanding in terms of the number of necessary measurements. Here we propose and implement an efficient scheme for quantum state tomography using active learning. Based on a few initial measurements, the active learning protocol proposes the next measurement basis, designed to yield the maximum information gain. We apply the active learning quantum state tomography…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum Information and Cryptography · Quantum many-body systems
