One of the predominant challenges when engineering future quantum information processors is that large quantum systems are notoriously hard to maintain and control accurately. It is therefore of immediate practical relevance to investigate quantum information processing with limited physical resources, for example to ask: How well can we perform information processing tasks if we only have access to a small quantum device? Can we beat fundamental limits imposed on information processing with classical resources? This book will introduce the reader to the mathematical framework required to answer such questions. A strong emphasis is given to information measures that are essential for the study of devices of finite size, including R\'enyi entropies and smooth entropies. The presentation is self-contained and includes rigorous and concise proofs of the most important properties of these measures. The first chapters will introduce the formalism of quantum mechanics, with particular emphasis on norms and metrics for quantum states. This is necessary to explore quantum generalizations of R\'enyi divergence and conditional entropy, information measures that lie at the core of information theory. The smooth entropy framework is discussed next and provides a natural means to lift many arguments from information theory to the quantum setting. Finally selected applications of the theory to statistics and cryptography are discussed.
翻译:在设计未来量子信息处理器时,最主要的挑战之一是大型量子系统很难准确维护和控制,因此,用有限的物理资源调查量子信息处理具有直接的实际意义,例如,问:如果我们只能使用一个小量子装置,我们如何能执行信息处理任务?我们能否克服对使用古典资源的信息处理施加的基本限制?这本书将向读者介绍解答这些问题所需的数学框架;大力强调对研究有限尺寸装置至关重要的信息措施,包括R'enyi元素和光滑剂。演示是自成一体的,包括严格和简明地证明这些措施最重要的特性。第一章将介绍量子机械学的形式,特别强调量子状态的规范和衡量标准。这是探讨R\'enyi差异的量子概括和作为信息理论核心的信息测量标准所必须的。下面讨论的是光滑的摄取框架,它提供了自然手段,将信息理论的许多论点从信息理论推向量子设置。最后讨论了理论的理论应用和密码学。