The platypus of the quantum channel zoo
Felix Leditzky, Debbie Leung, Vikesh Siddhu, Graeme Smith and, John A. Smolin

TL;DR
This paper investigates a simple, low-dimensional quantum channel with exotic capacity behaviors, providing explicit calculations and conjectures, revealing complex phenomena in quantum information theory.
Contribution
It introduces a novel family of quantum channels with rich capacity behaviors and provides explicit capacity calculations, including a new conjecture and its partial proof.
Findings
Private and classical capacities coincide and are explicitly calculable.
Quantum capacity can be explicitly computed under a new conjecture.
Channels exhibit superadditivity when combined with assisting channels.
Abstract
Understanding quantum channels and the strange behavior of their capacities is a key objective of quantum information theory. Here we study a remarkably simple, low-dimensional, single-parameter family of quantum channels with exotic quantum information-theoretic features. As the simplest example from this family, we focus on a qutrit-to-qutrit channel that is intuitively obtained by hybridizing together a simple degradable channel and a completely useless qubit channel. Such hybridizing makes this channel's capacities behave in a variety of interesting ways. For instance, the private and classical capacity of this channel coincide and can be explicitly calculated, even though the channel does not belong to any class for which the underlying information quantities are known to be additive. Moreover, the quantum capacity of the channel can be computed explicitly, given a clear and…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum Information and Cryptography · Quantum Mechanics and Applications
