Published September 30, 2023 | Version CC BY-NC-ND 4.0
Journal article Open

Crosstalk Characterization and Reduction in Power Lines

  • 1. Laboratory of Electrotechnics, Automatics and Energy, Department of Electrical Engineering, Higher Technical Teachers, Training College (HTTTC) of Ebolowa, University of Ebolowa, P.O. Box 886 Ebolowa, Cameroon.
  • 2. Higher Teacher Training College of Yaounde, University of Yaounde I, P.O. Box 47 Yaounde, Cameroon.

Contributors

  • 1. Laboratory of Electrotechnics, Automatics and Energy, Department of Electrical Engineering, Higher Technical Teachers, Training College (HTTTC) of Ebolowa, University of Ebolowa, P.O. Box 886 Ebolowa, Cameroon.

Description

We propose a technique of crosstalk reduction through power lines. This crosstalk reduction technique uses the pseudo-matched impedances’ method that determines the characteristic parameters of the chosen line through the transmission lines’ theory. Besides, we establish the telegrapher's equations to determine the characteristic impedances of the line. Further, two types of lines are employed here to apply the pseudo-matched impedances’ method. The far-and near-ends crosstalk are measured with two strategies known as Simulink diagram and Matlab code. The Simulink diagram of the power line provides crosstalk curves and the Matlab code directly returns crosstalk values. It appears that the crosstalk has a reduction rate between 20 and 50% compared to previous investigations using pseudo-matched impedances in literature. Moreover, the variation of two different types of impedances leads to a crosstalk reduction rate that approaches 99%.

Notes

Published By: Blue Eyes Intelligence Engineering and Sciences Publication (BEIESP) © Copyright: All rights reserved.

Files

C78830912323.pdf

Files (1.7 MB)

Name Size Download all
md5:cdd987514ab4de4c9d39c2a960068c0f
1.7 MB Preview Download

Additional details

Related works

Is cited by
Journal article: 2319-9598 (ISSN)

References

  • Chunming Qiao, Member, ZEEE, Rami Georges Melhem, Donald M. Chiarulli, and Steven P. Levitan, 'A Time Domain Approach for Avoiding Crosstalk in Optical Blocking Multistage Interconnection Networks. JOURNAL OF LIGHTWAVE TECHNOLOGY, VOL. 12, NO. 10, OCTOBER 1994. https://doi.org/10.1109/50.337500
  • Yunfeng Shen, Kejie Lu, and Wanyi Gu, Coherent and Incoherent Crosstalk Coherent and Incoherent Crosstalk in WDM Optical Networks. JOURNAL OF LIGHTWAVE TECHNOLOGY, VOL. 17, NO. 5, MAY 1999 https://doi.org/10.1109/50.762889
  • Faten Sahel, Pascal Guilbault, Farouk Vallette, Sylvain Feruglio. A Crosstalk Modelling Method between a Power Supply and a Nearby Signal in High-density Interconnection PCBs. 2021 22nd International Symposium on Quality Electronic Design (ISQED), Apr 2021, Santa Clara, CA, United States. pp.227-232, ff10.1109/ISQED51717.2021.9424304ff. ffhal-03225181ff . https://doi.org/10.1109/ISQED51717.2021.9424304
  • Rza Bashirov *, Tolgay Karanfiller, On path dependent loss and switch crosstalk reduction in optical networks. Information Sciences 180 (2010) 1040–1050. https://doi.org/10.1016/j.ins.2009.11.017
  • Isaak E. Müller, Jacob R. Rubens, Tomi Jun, Daniel Graham, Ramnik Xavier and Timothy K. Lu, Gene networks that compensate for crosstalk with crosstalk. NATURE COMMUNICATIONS (2019) 10:4028 | https://doi.org/10.1038/s41467-019-12021-y https://doi.org/10.1038/s41467-019-12021-y
  • E. L. Goldstein, L. Eskildsen, and A. F. Elrefaie, "Performance implications of component crosstalk in transparent lightwave networks," IEEE Photon. Technol. Lett., vol. 6, pp. 657–660, May 1994. https://doi.org/10.1109/68.285571
  • C. S. Li and F. Tong, "Crosstalk and interference penalty in all-optical networks using static wavelength routers," J. Lightwave Technol., vol. 14, pp. 1120–1126, June 1996. https://doi.org/10.1109/50.511613
  • H. Takahashi, K. Oda, and H. Toba, "Impact of crosstalk in an arrayedwaveguide multiplexer on N N optical interconnection," J. Lightwave Technol., vol. 14, pp. 1097–1105, June 1996. https://doi.org/10.1109/50.511611
  • M.M. Vaez, C.T. Lea, Strictly nonblocking directional-coupler based switching networks under crosstalk constraint, IEEE Transactions on Communication 48 (2000) 316–323. https://doi.org/10.1109/26.823564
  • A.K. Katangur, S. Akkaladevi, Y. Pan, Analyzing the performance of optical multistage interconnection networks with limited crosstalk, Cluster Computing 10 (2007) 241–250 https://doi.org/10.1007/s10586-007-0018-7
  • X. Jiang, H. Sheng, M.R. Khandker, S. Horiguchi, Blocking behaviors of crosstalk-free optical banyan networks on vertical stacking, IEEE/ACM Transactions on Networking 11 (2003) 982–993. https://doi.org/10.1109/TNET.2003.820425
  • Rowland, M. A. & Deeds, E. J. Crosstalk and the evolution of specificity in two-component signaling. Proc. Natl Acad. Sci. USA 111, 5550–5555 (2014). https://doi.org/10.1073/pnas.1317178111
  • S. D. Dods, J. P. R. Lacey, and R. S. Tucker, "Homodyne crosstalk in WDM ring and bus networks," IEEE Photon. Technol. Lett., vol. 9, pp. 1285–1287, Sept. 1997. https://doi.org/10.1109/68.618506
  • Rhodius, V. A. et al. Design of orthogonal genetic switches based on a crosstalk map of σs, anti-σs, and promoters. Mol. Syst. Biol. 9, 702 (2013). https://doi.org/10.1038/msb.2013.58
  • Capra, E. J., Perchuk, B. S., Skerker, J. M. & Laub, M. T. Adaptive mutations that prevent crosstalk enable the expansion of paralogous signaling protein families. Cell 150, 222–232 (2012) https://doi.org/10.1016/j.cell.2012.05.033
  • Guo, X. & Wang, X. F. Signaling cross-talk between TGF-β/BMP and other pathways. Cell. Res. 19, 71–88 (2009). https://doi.org/10.1038/cr.2008.302
  • Vert, G. & Chory, J. Crosstalk in cellular signaling: background noise or the real thing? Dev. Cell 21, 985–991 (2011) https://doi.org/10.1016/j.devcel.2011.11.006
  • Wu, F., Menn, D. J. & Wang, X. Quorum-sensing crosstalk-driven synthetic circuits : from unimodality to trimodality. Chem. Biol. 21, 1629–1638 (2014). https://doi.org/10.1016/j.chembiol.2014.10.008
  • Morey, K. J. et al. Crosstalk between endogenous and synthetic components - synthetic signaling meets endogenous components. Biotechnol. J. 7, 846–855 (2012). https://doi.org/10.1002/biot.201100487
  • T. Ditchi. ''les lignes de transmission''. Course on transmission lines. University of SORBONNE, page 1-74, (2015).
  • S. Roblot. ''Caractérisation des couplages électromagnétiques dans les réseaux filaires cuivre en vue d'optimiser les transmissions à haut débit''. Dotorate thesis of University of Limoges. 1-164, (2007).
  • M. Kachout, ''Interference reduction for RF signal integrity''. 1-118, (2016).
  • F. Broydé, ''Radically eliminating crosstalk in interconnections'' Electronique, No.140, pp. 57-61, 2003.

Subjects

ISSN: 2319-9598 (Online)
https://portal.issn.org/resource/ISSN/2319-9598#
Retrieval Number: 100.1/ijies.C78830912323
https://www.ijies.org/portfolio-item/C78830912323/
Journal Website: www.ijies.org
https://www.ijies.org/
Publisher: Blue Eyes Intelligence Engineering and Sciences Publication (BEIESP)
https://www.blueeyesintelligence.org/