arrow
Return

Sparse Adaptive Frequency Domain Equalizers for Mode-Group Division Multiplexing

delete2015-01-15
delete18
delete
OA
AI
K
Kai Shi *
B
Benn C. Thomsen
DOI:10.1109/JLT.2014.2374837delete
deleteOriginal
deleteShare
deleteSave
View PDF
Abstract

Abstract

En 中文
In this paper, we develop low complexity sparse frequency domain equalizers (FDEs) that exploit the sparsity that we observe in the graded index multimode fiber multiple-input multiple-output channel. The sparse channel impulse response is caused by the strong crosstalk at the mode MUX/DEMUX and weak coupling in the fiber between different mode groups. Two sparse FDE designs are proposed in order to compensate the crosstalk with relatively low computational complexity. The first method is based on a priori knowledge of the channel impulse response, which is used to generate a mask of taps with significant magnitudes. The second method is based on the improved proportionate normalized least-mean-square algorithm, where the active and inactive taps are adjusted at different rates of convergence. The computational complexity and the system performance of the proposed algorithms are analyzed. It is shown that the sparse FDEs offer low complexity relative to the sparse equalizers that use delay buffers, while maintaining improved performance over non-sparse equalizers in the presence of noise.
Keywords:
Active taps mask
mode-group multiplexing
sparse adaptive equalizer
AI Summary

AI Summary

Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.

Journal

Journal of Lightwave Technology cover
Journal of Lightwave Technology
IF:
4.8
Papers:
1.7W
Citations:
3.8W

Organization

U
university of london
Scholars:
21.5W
Papers: 19.7W
Citations: 305
Cited Papers

Cited Papers

Proactive Management of Air Quality
err2001-02-01
err0
PREAI
errR. P. Angle; H. S. Sandhu
errShare
errSave
Upstream ORFs Prevent MAVS Spontaneous Aggregation and Regulate Innate Immune Homeostasis
err2020-05-01
err0
errOAAI
errYuheng Shi; Jing Wu; Tiansheng Zhong; Wenting Zhu; Guolan She; Hao Tang; Wei Du; Bang-Ce Ye; Nan Qi
errShare
errSave
Mode-Division Multiplexing Transmission System With DMD-Independent Low Complexity MIMO Processing
err2013-07-01
err41
PREAI
errSakamoto, Taiji; Mori, Takayoshi; Yamamoto, Takashi; Hanzawa, Nobutomo; Tomita, Shigeru; Yamamoto, Fumihiko; Saitoh, Kunimasa; Koshiba, Masanori
errShare
errSave
errShare
errSave
errShare
errSave
Field demonstration of mode-division multiplexing upgrade scenarios on commercial networks
err2013-12-09
err26
errOAAI
errSleiffer, V. A. J. M.; Chen, H.; Jung, Y.; Leoni, P.; Kuschnerov, M.; Simperler, A.; Fabian, H.; Schuh, H.; Kub, F.; Richardson, D. J.; Alam, S. U.; Gruner-Nielsen, L.; Sun, Y.; Koonen, A. M. J.; de Waardt, H.
errShare
errSave
Degenerate Mode-Group Division Multiplexing
err2012-12-01
err130
PREAI
errCarpenter, Joel; Thomsen, Benn C.; Wilkinson, Timothy D.
errShare
errSave
researcher View more