论文标题

衍射互连:使用衍射网络的全光置换操作

Diffractive Interconnects: All-Optical Permutation Operation Using Diffractive Networks

论文作者

Mengu, Deniz, Zhao, Yifan, Tabassum, Anika, Jarrahi, Mona, Ozcan, Aydogan

论文摘要

置换矩阵构成了一个重要的计算构建块,这些构建块在各个领域中经常使用,例如通信,信息安全和数据处理。非常需要基于发电,快速和紧凑的平台的输入输出互连的置换运算符的光学实现。在这里,我们介绍了通过深度学习设计的衍射光学网络,以全方位地进行置换操作,可以使用被动的传播层在输入和视野之间进行数十万个互连,这些互连是使用被动的传播层,这些层是单独构造的,这些层是在波长​​刻度上分别结构的。我们的发现表明,衍射光网络在近似给定置换操作中的容量与系统中衍射层和可训练的传输元件的数量成正比。这种更深的衍射网络设计可以在系统的物理对齐和输出衍射效率方面构成实际挑战。我们通过设计可能会全面执行任意选择的置换操作的差异衍射设计来解决这些挑战,并首次在实验上证明了在频谱的THZ部分运行的衍射排列网络。衍射排列网络可能会在例如安全性,图像加密和数据处理以及电信中找到各种应用程序;尤其是在无线通信中的载流频率接近THZ波段时,提出的衍射置换网络可以潜在地充当无线网络中的通道路由和互连面板。

Permutation matrices form an important computational building block frequently used in various fields including e.g., communications, information security and data processing. Optical implementation of permutation operators with relatively large number of input-output interconnections based on power-efficient, fast, and compact platforms is highly desirable. Here, we present diffractive optical networks engineered through deep learning to all-optically perform permutation operations that can scale to hundreds of thousands of interconnections between an input and an output field-of-view using passive transmissive layers that are individually structured at the wavelength scale. Our findings indicate that the capacity of the diffractive optical network in approximating a given permutation operation increases proportional to the number of diffractive layers and trainable transmission elements in the system. Such deeper diffractive network designs can pose practical challenges in terms of physical alignment and output diffraction efficiency of the system. We addressed these challenges by designing misalignment tolerant diffractive designs that can all-optically perform arbitrarily-selected permutation operations, and experimentally demonstrated, for the first time, a diffractive permutation network that operates at THz part of the spectrum. Diffractive permutation networks might find various applications in e.g., security, image encryption and data processing, along with telecommunications; especially with the carrier frequencies in wireless communications approaching THz-bands, the presented diffractive permutation networks can potentially serve as channel routing and interconnection panels in wireless networks.

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