The Information-carrying capacity of certain quantum channels

C. Morgan
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引用次数: 1

Abstract

In this thesis we analyse the type of states and ensembles which achieve the capacity for certain quantum channels carrying classical information. We first concentrate on the product-state capacity of a particular quantum channel, that is, the capacity which is achieved by encoding the output states from a source into codewords comprised of states taken from ensembles of non-entangled states and sending them over copies of the quantum channel. Using the "single-letter" formula proved independently by Holevo and by Schumacher and Westmoreland we obtain the product-state capacity of the qubit quantum amplitude-damping channel, which is determined by a transcendental equation in a single real variable and can be solved numerically. We demonstrate that the product-state capacity of this channel can be achieved using a minimal ensemble of non-orthogonal pure states. Next we consider the classical capacity of two quantum channels with memory, namely a periodic channel with quantum depolarising channel branches and a convex combination of quantum channels. We prove that the classical capacity for each of the classical memory channels mentioned above is, in fact, equal to the respective product-state capacities. For those channels this means that the classical capacity is achieved without the use of entangled input-states. Next we introduce the channel coding theorem for memoryless quantum channels, providing a known proof by Winter for the strong converse of the theorem. We then consider the strong converse to the channel coding theorem for a periodic quantum channel.
某些量子信道的信息承载能力
在本文中,我们分析了实现某些量子信道承载经典信息的能力的状态和系综类型。我们首先关注特定量子信道的积态容量,即通过将源的输出状态编码为由非纠缠态集合的状态组成的码字并将其发送到量子信道的副本上来实现的容量。利用Holevo、Schumacher和Westmoreland独立证明的“单字母”公式,我们得到了量子位量子振幅衰减信道的乘积态容量,该容量由单个实变量的超越方程决定,可以数值求解。我们证明了该通道的积态容量可以使用非正交纯态的最小集合来实现。接下来,我们考虑了两个具有记忆的量子通道的经典容量,即具有量子去极化通道分支的周期通道和量子通道的凸组合。我们证明了上述每个经典存储通道的经典容量实际上等于各自的产品状态容量。对于这些信道,这意味着在不使用纠缠输入状态的情况下实现经典容量。接下来,我们介绍了无记忆量子信道的信道编码定理,并提供了Winter对该定理强逆的已知证明。然后,我们考虑周期量子信道编码定理的强逆定理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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