Adaptive Quantum Tomography in Weak Measurement with Superconducting Circuits

Cited 0 time in webofscience Cited 0 time in scopus
  • Hit : 57
  • Download : 0
Adaptive tomography has been widely investigated to obtain faster state tomography process for quantum computation. Infidelity [1 - F (rho, sigma)] on nearly pure states in quantum information process scales generally as O(1/N), which requires a large number of statistical ensembles in comparison to the hifidelity scaling on mixed states of O(1/root N). Recently, optimization of a measurement basis in a photonic qubit system, whose state tomography uses projective measurements, reported improved infidelity scaled as O (1/root N). However, this dramatic improvement cannot be applied to a weak-value based measurement system, which can be attributed to the fact that one cannot distinguish two quantum states with perfect measurement reliability. We introduce new optimal measurement basis to achieve a fast adaptive quantum state tomography and minimum magnitude of infidelity in this weak measurement system. This novel protocol allows us to accomplish approximately 80% error reduction without changing the scaling of O(1/root N) in numerical simulations and realize approximately 90% error reduction in superconducting circuit QED experiments.
Publisher
IEEE COMPUTER SOC
Issue Date
2022-09
Language
English
Citation

3rd IEEE International Conference on Quantum Computing and Engineering (QCE), pp.733 - 735

DOI
10.1109/QCE53715.2022.00101
URI
http://hdl.handle.net/10203/305872
Appears in Collection
PH-Conference Papers(학술회의논문)
Files in This Item
There are no files associated with this item.

qr_code

  • mendeley

    citeulike


rss_1.0 rss_2.0 atom_1.0