arXiv Analytics

Sign in

arXiv:1309.0840 [quant-ph]AbstractReferencesReviewsResources

Process tomography for unitary quantum channels

Gus Gutoski, Nathaniel Johnston

Published 2013-09-03, updated 2014-03-28Version 3

We study the number of measurements required for quantum process tomography under prior information, such as a promise that the unknown channel is unitary. We introduce the notion of an interactive observable and we show that any unitary channel acting on a $d$-level quantum system can be uniquely identified among all other channels (unitary or otherwise) with only $O(d^2)$ interactive observables, as opposed to the $O(d^4)$ required for tomography of arbitrary channels. This result generalizes, so that channels with at most $q$ Kraus operators can be identified with only $O(qd^2)$ interactive observables. Slight improvements can be obtained if we wish to identify such a channel only among unital channels or among other channels with $q$ Kraus operators. These results are proven via explicit construction of large subspaces of Hermitian matrices with various conditions on rank, eigenvalues, and partial trace. Our constructions are built upon various forms of totally nonsingular matrices.

Comments: 24 pages. v2,v3: minor revisions, added references and discussion
Journal: J. Math. Phys. 55, 032201 (2014)
Categories: quant-ph
Related articles: Most relevant | Search more
arXiv:quant-ph/0201119 (Published 2002-01-25)
Choi's Proof and Quantum Process Tomography
arXiv:1808.10336 [quant-ph] (Published 2018-08-30)
Consistency test for quantum process tomography
arXiv:1806.06128 [quant-ph] (Published 2018-06-15)
Characterizing $d-$dimensional quantum channels by means of quantum process tomography