TY - JOUR
T1 - Bounding the quantum capacity with flagged extensions
AU - Kianvash, Farzad
AU - Fanizza, Marco
AU - Giovannetti, Vittorio
N1 - Funding Information:
We thank Felix Leditzky, Matteo Rosati and Xin Wang for valuable comments. The authors acknowledge support by MIUR via PRIN 2017 (Progetto di Ricerca di Interesse Nazionale): project QUSHIP (2017SRNBRK).
Publisher Copyright:
© 2022 Verein zur Forderung des Open Access Publizierens in den Quantenwissenschaften. All Rights Reserved.
PY - 2022
Y1 - 2022
N2 - In this article we consider agged extensions of convex combination of quantum channels, and find general sufficient conditions for the degradability of the agged extension. An immediate application is a bound on the quantum Q and private P capacities of any channel being a mixture of a unitary map and another channel, with the probability associated to the unitary component being larger than 1/2. We then specialize our sufficient conditions to agged Pauli channels, obtaining a family of upper bounds on quantum and private capacities of Pauli channels. In particular, we establish new state-of-the-art upper bounds on the quantum and private capacities of the depolarizing channel, BB84 channel and generalized amplitude damping channel. Moreover, the agged construction can be naturally applied to tensor powers of channels with less restricting degradability conditions, suggesting that better upper bounds could be found by considering a larger number of channel uses.
AB - In this article we consider agged extensions of convex combination of quantum channels, and find general sufficient conditions for the degradability of the agged extension. An immediate application is a bound on the quantum Q and private P capacities of any channel being a mixture of a unitary map and another channel, with the probability associated to the unitary component being larger than 1/2. We then specialize our sufficient conditions to agged Pauli channels, obtaining a family of upper bounds on quantum and private capacities of Pauli channels. In particular, we establish new state-of-the-art upper bounds on the quantum and private capacities of the depolarizing channel, BB84 channel and generalized amplitude damping channel. Moreover, the agged construction can be naturally applied to tensor powers of channels with less restricting degradability conditions, suggesting that better upper bounds could be found by considering a larger number of channel uses.
UR - https://www.scopus.com/pages/publications/85125842576
U2 - 10.22331/Q-2022-02-09-647
DO - 10.22331/Q-2022-02-09-647
M3 - Article
AN - SCOPUS:85125842576
SN - 2521-327X
VL - 6
JO - Quantum
JF - Quantum
ER -