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Optical Implementation of 2 × 2 Universal Unitary Matrix Transformations

机译:光学实现2×2通用酉矩阵变换

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Unitary operations are a specific class of linear transformations that have become an essential ingredient for the realization of classical and quantum information processing. The ability of implementing any n-dimensional unitary signal transformation by using a reconfigurable optical hardware has recently led to the pioneering concept of programmable linear optical processor, whose basic building block (BB) must be correctly designed to guarantee that the whole system is able to perform nxn universal (i.e., arbitrary) unitary matrix transformations. Here, it is demonstrated that the present architectures of the BB do not fulfil the universal unitary property (at least) in 2x2 optical processors, limiting the number of unitary matrix transformations that may be generated. Aiming to solve this fundamental constraint, the theoretical tools required to analyze and design 2x2 universal unitary optical circuits and their corresponding BBs are presented. The consequences of this mathematical framework are explored, obtaining a simple route to implement different BB architectures, all of them guaranteeing a true universal unitary functionality in the resulting 2x2 optical processors. These findings may pave the way to revisit the design of high-dimensional unitary optical processors, unleashing the potential of programmable integrated photonics technology.
机译:单一操作是一种特定的线性变换,已成为实现经典和量子信息处理的基本成分。通过使用可重新配置的光学硬件实现任何N维酉信号变换的能力最近导致了可编程线性光学处理器的开创性概念,其基本构建块(BB)必须正确地设计,以保证整个系统能够执行NXN Universal(即任意)酉矩阵变换。这里,证明BB的本发明架构不符合2x2光学处理器中的通用酉特性(至少),限制了可以生成的单一矩阵变换的数量。旨在解决这一基本限制,提出了分析和设计2x2通用统一光电路及其相应的BB所需的理论工具。探索了该数学框架的后果,获得了实现不同BB架构的简单路由,所有这些路线都保证了所得2x2光学处理器中的真正通用统一功能。这些发现可以铺平借助可编程集成光子技术的潜力来重新审视高维酉光学处理器的方法。

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