论文标题

使用密度连接的卷积网络对多模纤维上的仅强度模式分解

Intensity-only Mode Decomposition on Multimode Fibers using a Densely Connected Convolutional Network

论文作者

Rothe, Stefan, Zhang, Qian, Koukourakis, Nektarios, Czarske, Jürgen W.

论文摘要

多模纤维的使用在通信技术领域提供了可转移信息密度和信息安全性的优势。对于使用物理层安全性或模式分层多路复用的应用程序,必须知道复杂的传输矩阵。为了测量传输矩阵,多模纤维的各个模式在输入处依次激发,并在输出处执行模式分解。通常使用数字全息图进行模式分解,这需要提供参考波,并导致巨大的努力。为了克服这些缺点,提出了一个神经网络,该神经网络通过多模纤维方面的仅强度相机记录执行模式分解。由于问题的计算复杂性很高,因此该方法通常仅限于6个模式。在这项工作中,可以首次证明,通过使用具有121层的Densenet,可以突破6个模式的障碍。实验模式的模式分解证明了进步。培训过程基于合成数据。与数字全息图相比,该方法与常规方法进行了定量的比较。此外,还表明网络可以在55模式光纤上执行模式分解,这也支持神经网络未知的模式。使用densenet的智能检测为在光学通信网络中应用多模纤维的新方法开辟了新方法,以进行物理层安全性。

The use of multimode fibers offers advantages in the field of communication technology in terms of transferable information density and information security. For applications using physical layer security or mode division multiplexing, the complex transmission matrix must be known. To measure the transmission matrix, the individual modes of the multimode fiber are excited sequentially at the input and a mode decomposition is performed at the output. Mode decomposition is usually performed using digital holography, which requires the provision of a reference wave and leads to high efforts. To overcome these drawbacks, a neural network is proposed, which performs mode decomposition with intensity-only camera recordings of the multimode fiber facet. Due to the high computational complexity of the problem, this approach was usually limited to a number of 6 modes. In this work, it could be shown for the first time that by using a DenseNet with 121 layers it is possible to break through the hurdle of 6 modes. The advancement is demonstrated by a mode decomposition with 10 modes experimentally. The training process is based on synthetic data. The proposed method is quantitatively compared to the conventional approach with digital holography. In addition, it is shown that the network can perform mode decomposition on a 55-mode fiber, which also supports modes unknown to the neural network. The smart detection using a DenseNet opens new ways for the application of multimode fibers in optical communication networks for physical layer security.

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