作者
Tomasz Maniak, Rahat Iqbal, Zoran Vujicic, Charalampos Karyotis, Nikos Passas, Faiyaz Doctor
发表日期
2022/12/7
研讨会论文
2022 5th International Conference on Signal Processing and Information Security (ICSPIS)
页码范围
134-137
出版商
IEEE
简介
The mitigation of transmission impairments in optical communication systems requires implementation of digital signal processing that can easily adapt to changing conditions and work on continuous streams of data. In this paper, the application of continual learning in deep neural networks for transmission impairments in long haul transmission systems is considered. This work investigates the novel use of continual learning to overcome the problem of catastrophic forgetting and remembrance in deep neural networks that can be used for dispersion and nonlinearity mitigation in long-haul transmission systems. We perform comparisons between state-of-the-art methods such as iCaRL, DGR, EWC, XdG and traditional DNNs implementations typically used in optical networks. We demonstrate improvements in training accuracy towards signal recovery, and increased flexibility for DNN equalization applications. The …
引用总数
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