Nonlinearity compensation in fiber optical communication systems has been for a long time considered a key enabler for going beyond the "capacity crunch". One of the guiding principles for the design of practical nonlinearity compensation schemes appears to be that fewer steps are better and more efficient. In this paper, we challenge this assumption and show how to carefully design multi-step approaches that can lead to better performance-complexity trade-offs than their few-step counterparts. We consider the recently proposed learned digital backpropagation (LDBP) approach, where the linear steps in the split-step method are re-interpreted as general linear functions, similar to the weight matrices in a deep neural network. Our main contr...
We propose a modification of the conventional perturbation-based approach of fiber nonlinearity comp...
We propose and experimentally validate a low-complexity time-domain (TD) digital backpropagation (DB...
We investigate a digital back-propagation simplification method to enable computationally-efficient ...
Nonlinearity compensation in fiber optical communication systems has been for a long time considered...
For the efficient compensation of fiber nonlinearity, one of the guiding principles appears to be: f...
Using digital backpropagation (DBP) based on the split step Fourier method (SSFM) aided by a memory ...
Nonlinearity mitigation using digital signal processing has been shown to increase the achievable da...
A neural-network-based approach is presented to efficiently implement digital backpropagation (DBP)....
Fiber nonlinearities from Kerr effect are considered as major constraints for enhancing the transmis...
The performance of long-haul coherent optical systems is fundamentally limited by fiber nonlinearity...
Fiber-optical communication systems form the backbone of the internet, enabling global broadband dat...
Practical implementation of digital signal processing for mitigation of transmission impairments in ...
In this paper, we propose a novel detector for single-channel long-haul coherent optical communicati...
We propose a modification of the conventional perturbation-based approach of fiber nonlinearity comp...
We propose and experimentally validate a low-complexity time-domain (TD) digital backpropagation (DB...
We investigate a digital back-propagation simplification method to enable computationally-efficient ...
Nonlinearity compensation in fiber optical communication systems has been for a long time considered...
For the efficient compensation of fiber nonlinearity, one of the guiding principles appears to be: f...
Using digital backpropagation (DBP) based on the split step Fourier method (SSFM) aided by a memory ...
Nonlinearity mitigation using digital signal processing has been shown to increase the achievable da...
A neural-network-based approach is presented to efficiently implement digital backpropagation (DBP)....
Fiber nonlinearities from Kerr effect are considered as major constraints for enhancing the transmis...
The performance of long-haul coherent optical systems is fundamentally limited by fiber nonlinearity...
Fiber-optical communication systems form the backbone of the internet, enabling global broadband dat...
Practical implementation of digital signal processing for mitigation of transmission impairments in ...
In this paper, we propose a novel detector for single-channel long-haul coherent optical communicati...
We propose a modification of the conventional perturbation-based approach of fiber nonlinearity comp...
We propose and experimentally validate a low-complexity time-domain (TD) digital backpropagation (DB...
We investigate a digital back-propagation simplification method to enable computationally-efficient ...