30 October 2025
National Central University
Asia/Taipei timezone

Enhancing the Dynamic Range of Quantum Sensing via Quantum Circuit Learning

30 Oct 2025, 10:10
1h
Chien-Shiung Building (Physics Building) room 209 (National Central University)

Chien-Shiung Building (Physics Building) room 209

National Central University

Speaker

Prof. Yuichiro Matsuzaki (Chuo University)

Description

abstract: Quantum metrology is a promising application of quantum technologies, enabling the precise measurement of weak external fields at a local scale. In typical quantum sensing protocols, a qubit interacts with an external field, and the amplitude of the field is estimated by analyzing the expectation value of a measured observable. Sensitivity can, in principle, be enhanced by increasing the number of qubits within a fixed volume, thereby maintaining spatial resolution. However, at high qubit densities, inter-qubit interactions induce complex many-body dynamics, resulting in multiple oscillations in the expectation value of the observable even for small field amplitudes. This ambiguity reduces the dynamic range of the sensing protocol. We propose a method to overcome the limitation in quantum metrology by adopting a quantum circuit learning framework using a parameterized quantum circuit to approximate a target function by optimizing the circuit parameters. In our method, after the qubits interact with the external field, we apply a sequence of parameterized quantum gates and measure a suitable observable. By optimizing the gate parameters, the expectation value is trained to exhibit a monotonic response within a target range of field amplitudes, thereby eliminating multiple oscillations and enhancing the dynamic range. This method offers a strategy for improving quantum sensing performance in dense qubit systems.

Kawaguchi, H., Mori, Y., Satoh, T., & Matsuzaki, Y. (2025). Enhancing the Dynamic Range of Quantum Sensing via Quantum Circuit Learning. arXiv preprint arXiv:2505.04958.

Author

Prof. Yuichiro Matsuzaki (Chuo University)

Presentation materials