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Explicit capacity-achieving receivers for optical communication and quantum reading

机译:用于光通信和量子读取的显式实现容量的接收器

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An important practical open question has been to design explicit, structured optical receivers that achieve the Holevo limit in the contexts of optical communication and “quantum reading.” The Holevo limit is an achievable rate that is higher than the Shannon limit of any known optical receiver. We demonstrate how a sequential decoding approach can achieve the Holevo limit for both of these settings. A crucial part of our scheme for both settings is a non-destructive “vacuum-or-not” measurement that projects an n-symbol modulated codeword onto the n-fold vacuum state or its orthogonal complement, such that the post-measurement state is either the n-fold vacuum or has the vacuum removed from the support of the n symbols'' joint quantum state. The sequential decoder for optical communication requires the additional ability to perform multimode optical phase-space displacements — realizable using a beamsplitter and a laser, while the sequential decoder for quantum reading also requires the ability to perform phase-shifting (realizable using a phase plate) and online squeezing (a phase-sensitive amplifier).
机译:一个重要的实际未解决的问题是设计显式的结构化光接收器,该接收器在光通信和“量子读取”的情况下达到Holevo极限。 Holevo极限的可达到速率高于任何已知光学接收器的Shannon极限。我们演示了对于这两个设置,顺序解码方法如何都能达到Holevo限制。对于这两种设置,我们方案的关键部分是非破坏性的“真空或非真空”测量,该测量将n符号调制的码字投影到n倍真空状态或其正交补码上,从而使后测量状态为n倍真空或从n个符号的联合量子态的支撑中除去真空。用于光通信的顺序解码器需要执行多模光学相空间位移的附加功能-使用分束器和激光可以实现,而用于量子读取的顺序解码器还需要执行相移的能力(可以使用相板实现)和在线压缩(相敏放大器)。

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