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Distributed Collaborative Beamforming for Real-World WSN Applications

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Ad Hoc Networks

Abstract

In this paper, we consider a collaborative beamformer (CB) design that achieves a dual-hop communication from a source to a receiver in highly-scattered environments, through a wireless sensor network (WSN) comprised of K independent and autonomous sensor nodes. The weights of the considered CB design at these nodes, derived to maximize the received signal-to-noise ratio (SNR) subject to constraint over the nodes total transmit power, have expressions that inevitably depend on some form of the channel state information (CSI). Only those requiring the local CSI (LCSI) available at their respective nodes lend themselves to a truly distributed implementation. The latter has the colossal advantage of significantly minimizing the huge overhead resulting otherwise from non-local CSI (NLCSI) exchange required between nodes, which becomes prohibitive for large K and/or high Doppler. We derive the closed-form expression of the SNR-optimal CB (OCB) and verify that it is a NLCSI-based design. Exploiting, however, the polychromatic (i.e., multi-ray) structure of scattered channels as a superposition of L impinging rays or chromatics, we propose a novel LCSI-based distributed CB (DCB) design that requires a minimum overhead cost and, further, performs nearly as well as its NLCSI-based OCB counterpart. Furthermore, we prove that the proposed LCSI-based DCB outperforms two other DCB benchmarks: the monochromatic (i.e., single-ray) DCB and the bichromatic (i.e., two-ray) DCB (B-DCB).

Work supported by the CRD, DG, and CREATE PERSWADE <www.create-perswade.ca> Programs of NSERC and a Discovery Accelerator Supplement Award from NSERC.

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Notes

  1. 1.

    In the Gaussian and Uniform distribution cases, \(\varTheta = [-\inf , +\inf ]\) and \(\varTheta = [-\sqrt{3}\sigma _{\theta },+\sqrt{3}\sigma _{\theta }]\), respectively.

References

  1. Ochiai, H., Mitran, P., Poor, H.V., Tarokh, V.: Collaborative beamforming for distributed wireless ad hoc sensor networks. IEEE Trans. Sign. Process. 53, 4110–4124 (2005)

    Article  MathSciNet  Google Scholar 

  2. Ahmed, M.F.A., Vorobyov, S.A.: Collaborative beamforming for wireless sensor networks with Gaussian distributed sensor nodes. IEEE Trans. Wirel. Commun. 8, 638–643 (2009)

    Article  Google Scholar 

  3. Huang, J., Wang, P., Wan, Q.: Collaborative beamforming for wireless sensor networks with arbitrary distributed sensors. IEEE Commun. Lett. 16, 1118–1120 (2012)

    Article  Google Scholar 

  4. Zarifi, K., Ghrayeb, A., Affes, S.: Distributed beamforming for wireless sensor networks with improved graph connectivity and energy efficiency. IEEE Trans. Sign. Process. 58, 1904–1921 (2010)

    Article  MathSciNet  Google Scholar 

  5. Ahmed, M.F.A., Vorobyov, S.A.: Sidelobe control in collaborative beamforming via node selection. IEEE Trans. Sign. Process. 58, 6168–6180 (2010)

    Article  MathSciNet  Google Scholar 

  6. Mudumbai, R., Barriac, G., Madhow, U.: On the feasibility of distributed beamforming in wireless networks. IEEE Trans. Wirel. Commun. 6, 1754–1763 (2007)

    Article  Google Scholar 

  7. Mudumbai, R., Brown, D.R., Madhow, U., Poor, H.V.: Distributed transmit beamforming: challenges and recent progress. IEEE Commun. Mag. 47, 102–110 (2009)

    Article  Google Scholar 

  8. Han, Z., Poor, H.V.: Lifetime improvement in wireless sensor networks via collaborative beamforming and cooperative transmission. IET Microw. Antennas Propag. 1, 1103–1110 (2007)

    Article  Google Scholar 

  9. Dong, L., Petropulu, A.P., Poor, H.V.: A cross-layer approach to collaborative beamforming for wireless ad hoc networks. IEEE Trans. Sign. Process. 56, 2981–2993 (2008)

    Article  MathSciNet  Google Scholar 

  10. Godara, L.C.: Application of antenna arrays to mobile communications, part II: Beam-forming and direction-of-arrival considerations. Proc. IEEE 85, 1195–1245 (1997)

    Article  Google Scholar 

  11. Zarifi, K., Zaidi, S., Affes, S., Ghrayeb, A.: A distributed amplify-and-forward beamforming technique in wireless sensor networks. IEEE Trans. Sign. Process. 59, 3657–3674 (2011)

    Article  MathSciNet  Google Scholar 

  12. Zarifi, K., Affes, S., Ghrayeb, A.: Collaborative null-steering beamforming for uniformly distrubuted wireless sensor networks. IEEE Trans. Sign. Process. 58, 1889–1903 (2010)

    Article  Google Scholar 

  13. Astly, D., Ottersten, B.: The effects of local scattering on direction of arrival estimation with MUSIC. IEEE Trans. Sign. Process. 47, 3220–3234 (1999)

    Article  Google Scholar 

  14. Shahbazpanahi, S., Valaee, S., Gershman, A.B.: A covariance fitting approach to parametric localization of multiple incoherently distributed sources. IEEE Trans. Sign. Process. 52, 592–600 (2004)

    Article  MathSciNet  Google Scholar 

  15. Souden, M., Affes, S., Benesty, J.: A two-stage approach to estimate the angles of arrival and the angular spreads of locally scattered sources. IEEE Trans. Sign. Process. 56, 1968–1983 (2008)

    Article  MathSciNet  Google Scholar 

  16. Bengtsson, M., Ottersten, B.: Low-complexity estimators for distributed sources. IEEE Trans. Sign. Process. 48, 2185–2194 (2000)

    Article  Google Scholar 

  17. Besson, O., Stoica, P., Gershman, A.B.: Simple and accurate direction of arrival estimator in the case of imperfect spatial coherence. IEEE Trans. Sign. Process. 49, 730–737 (2001)

    Article  Google Scholar 

  18. Amar, A.: The effect of local scattering on the gain and beamwidth of a collaborative beampattern for wireless sensor networks. IEEE Trans. Wirel. Commun. 9, 2730–2736 (2010)

    Article  Google Scholar 

  19. Zaidi, S., Affes, S.: Distributed beamforming for wireless sensor networks in local scattering environments. In: Proceedings of IEEE VTC 2012-Fall, Québec City, Canada, 3–6 September (2012)

    Google Scholar 

  20. Zaidi, S., Affes, S.: Distributed collaborative beamforming with minimum overhead for local scattering environments. In: Proceedings of IEEE IWCMC 2012, Cyprus, 27–31 August (2012, Invited Paper)

    Google Scholar 

  21. Zaidi, S., Affes, S.: Spectrum-efficient distributed collaborative beamforming in the presence of local scattering and interference. In: Proceedings of IEEE GLOBECOM 2012, Anaheim, CA, USA, 3–7 December (2012)

    Google Scholar 

  22. Zaidi, S., Affes, S.: Distributed collaborative beamforming in the presence of angular scattering. IEEE Trans. Commun. 62, 1668–1680 (2014)

    Article  Google Scholar 

  23. Zaidi, S., Affes, S.: Distributed collaborative beamforming design for maximized throughput in interfered and scattered environments. IEEE Trans. Commun. 63, 4905–4919 (2015)

    Article  Google Scholar 

  24. Zaidi, S., Affes, S.: SNR and throughput analysis of distributed collaborative beamforming in locally-scattered environments. Wireless Commun. Mobile Comput. 12, 1620–1633 (2012, Invited Paper). Wiley Journal

    Google Scholar 

  25. Zaidi, S., Affes, S.: Analysis of collaborative beamforming designs in real-world environments. In: Proceedings of IEEE WCNC 2013, Shanghai, China, 7–10 April (2013)

    Google Scholar 

  26. Havary-Nassab, V., Shahbazpanahi, S., Grami, A., Luo, Z.-Q.: Distributed beamforming for relay networks based on second-order statistics of the channel state information. IEEE Trans. Signal Process. 56, 4306–4316 (2008)

    Article  MathSciNet  Google Scholar 

  27. Zaidi, S., Hmidet, B., Affes, S.: Power-constrained distributed implementation of SNR-optimal collaborative beamforming in highly-scattered environments. IEEE Wirel. Commun. Lett. 4, 457–460 (2015)

    Article  Google Scholar 

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Correspondence to Slim Zaidi .

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© 2017 ICST Institute for Computer Sciences, Social Informatics and Telecommunications Engineering

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Zaidi, S., Hmidet, B., Affes, S. (2017). Distributed Collaborative Beamforming for Real-World WSN Applications. In: Zhou, Y., Kunz, T. (eds) Ad Hoc Networks. Lecture Notes of the Institute for Computer Sciences, Social Informatics and Telecommunications Engineering, vol 184. Springer, Cham. https://doi.org/10.1007/978-3-319-51204-4_26

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  • DOI: https://doi.org/10.1007/978-3-319-51204-4_26

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