Neuroplasticity and Microglia Functions Applied in Dense Wireless Networks

Authors

DOI:

https://doi.org/10.26636/jtit.2019.130618

Keywords:

ad-hoc network, brain inspired communication, glial cell, neurons

Abstract

This paper presents developments in the area of brain-inspired wireless communications relied upon in dense wireless networks. Classic approaches to network design are complemented, firstly, by the neuroplasticity feature enabling to add the learning ability to the network. Secondly, the microglia ability enabling to repair a network with damaged neurons is considered. When combined, these two functionalities guarantee a certain level of fault-tolerance and self-repair of the network. This work is inspired primarily by observations of extremely energy efficient functions of the brain, and of the role that microglia cells play in the active immune defense system. The concept is verified by computer simulations, where messages are transferred through a dense wireless network based on the assumption of minimized energy consumption. Simulation encompasses three different network topologies which show the impact that the location of microglia nodes and their quantity exerts on network performance. Based on the results achieved, some algorithm improvements and potential future work directions have been identified.

Downloads

Download data is not yet available.

References

[1] M. Kamel, W. Hamounda, and A. Youssef, „Ultra-Dense Networks: A survey", IEEE Commun. Surveys & Tutor., vol. 18, no. 4, pp. 2522-2545, 2016. DOI: https://doi.org/10.1109/COMST.2016.2571730
View in Google Scholar

[2] M. M. Mowla, I. Ahmad, D. Habibi, and V. Phung, „Energy efficient backhauling for 5G small cell networks", IEEE Trans. on Sustain. Comput., 2018. DOI: https://doi.org/10.1109/TSUSC.2018.2838116
View in Google Scholar

[3] D. Goyal and M. R. Tripathy, „Routing protocols in wireless sensor networks: A survey", in Proc. 2nd Int. Conf. on Adv. Comput. & Commun. Technol., Rohtak, Haryana, India, 2012. DOI: https://doi.org/10.1109/ACCT.2012.98
View in Google Scholar

[4] G. Gilli, L. Benso, and L. M. Schell (Eds.), Human Growth from Conception to Maturity. London: Smith-Gordon, 2002, pp. 36-49 (ISBN: 9781854632166).
View in Google Scholar

[5] D. Purves, G. Augustine, and D. Fitzpatrick, Neuroscience, 2nd ed. Sunderland (MA): Sinauer Associates, Neural Circuits, 2001 (ISBN: 978-0-87893-742-0).
View in Google Scholar

[6] S. Löwel and W. Singer, „Selection of intrinsic horizontal connections in the visual cortex by correlated neuronal activity", Science, vol. 255, no. 5041, pp. 209-212, 1992. DOI: https://doi.org/10.1126/science.1372754
View in Google Scholar

[7] A. J. Barkovich, „Concepts of myelin and myelination in neuroradiology", Amer. J. of Neurorad. AJNR, vol. 21, no. 6, pp. 1099-1109, 2000.
View in Google Scholar

[8] A. London, M. Cohen, and M. Schwartz, „Microglia and monocytederived macrophages: functionally distinct populations that act in concert in CNS plasticity and repair", Front. in Cell. Neurosci., 2013, vol. 7, article 34. DOI: https://doi.org/10.3389/fncel.2013.00034
View in Google Scholar

Downloads

Submitted

2023-05-22

Published

2019-03-30

Issue

Section

ARTICLES FROM THIS ISSUE

How to Cite

[1]
Łukasz Kułacz and A. Kliks, “Neuroplasticity and Microglia Functions Applied in Dense Wireless Networks”, JTIT, vol. 75, no. 1, pp. 39–46, Mar. 2019, doi: 10.26636/jtit.2019.130618.

Most read articles by the same author(s)