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Burst communication – a solution for the underwater information management

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The performance of collaborating information systems in the hydrosphere is based on the robustness and tolerance of the wireless communication task. It is strongly intertwined with the cooperation and coordination reliability under water for sharing resources and common purposes. Key technology and bottleneck is the physical layer communication in the underwater ''chameleon'' acoustic channel environment and the challenges of non trivial channel effects like the multipath propagation - which is rapidly varying over time and space. In this contribution we introduce the burst communication as one possible solution. These transmissions are supposed to be of a very short duration. The purpose is to occupy the acoustical channel in the underwater column only for a short time window, like in impulse and click communication (similar to the use by marine mammal, Khoisan and wugbe languages), e.g. to reduce the probability of transmission collisions and allows an efficient EMission CONtrol (EMCON).
Czasopismo
Rocznik
Tom
Strony
113--126
Opis fizyczny
Bibliogr. 30 poz., rys., tab.
Twórcy
autor
  • German Technical Center for Ships and Naval Weapons, Naval Technology and Research (WTD 71), Research Department for Underwater Acoustics and Marine Geophysics (FWG), Kiel, Germany
Bibliografia
  • [1] Timo Brechetsbauer, Zuordnung von Unterwasserschallkanalkenntnissen in Impulsantwort-Cluster, Cooperation FWG with Fachhochschule Kiel University of Applied Sciences, Kiel, Master-Thesis, August 2011
  • [2] Ivor Nissen, Pilot-Based OFDM Systems for Underwater Communication Applications, in Proc. Conf. on New Concepts for Harbour Protection, Littoral Security and Underwater Acoustic Communications, Istanbul, Turkey, July 2005.
  • [3] Shashishekar Ramakrishna and Ivor Nissen, Next generation cognitive system approaches in the underwater communication area. Applied Ocean Research, 10/2012; 38:136 141. DOI: 10.1016/j.apor.2012.07.007
  • [4] Iwona Kocha_nska and Henryk Lasota, Application of OFDM Technique to underwater Acoustic Data Transnission, in Proc. Hydroacoustics, Volume 14, Annual Journal, Polish Acoustical Society - Gdansk Division, Gdansk, Poland, 2011.
  • [5] Ivor Nissen, Alternativer Ansatz zur verratsarmen Unterwasserkommunikation durch Verwendung eines Transienten im Kontext von IFS und JUWEL. WTD71/FWG Tech. Rep., Jan. 2009-3.
  • [6] John Robert Potter, Joao Alves, Dale Green, Giovanni Zappa, Kim McCoy, Ivor Nissen. The JANUS Underwater Communications Standard. IEEE OES UComms 14 Underwater Communications Networking Conference, At Sestri Levante. 2014
  • [7] Frank Berning, Thomas Radtke, Stephan Rautenberg, Markus Motz, and Ivor Nissen. A Realization of the Software De_ned Radio Concept in an Underwater Communication Modem, Sestri Levante, 3-5 September 2014, www.ucomms.net, Underwater Communications and Networking (UComms), DOI: 10.1109/UComms.2014.7017155
  • [8] Thomas Radtke, Markus Motz, Frank Berning. Unterwasserkommunikation mit Spezialkrften, in Schall und Schwingungen Wellen und Turbulenz in sensibler Umgebung, DWT-Tagung 2012 edited by Ivor Nissen, Bodo Nolte, 09/2012, ISBN: 978-3-935938-94-5
  • [9] C. P. Shah, C. C. Tsimenidis, B. S. Sharif, and J. A. Neasham, Low Complexity Iterative Receiver Design for Shallow Water Acoustic Channels, EURASIP Journal on Applied Signal Processing, vol. 2010, pp. 113, Mar. 2010, article ID: 590458.
  • [10] P. C. Carrascosa and M. Stojanovic, Adaptive MIMO Detection of OFDM Signals in an Underwater Acoustic Channel, in Proc. MTS/IEEE OCEANS Conf., Sep 2008, Quebec City, Canada.
  • [11] Y. Emre, V. Kandasamy, T. M. Duman, P. Hursky, and S. Roy, Multi-input multi-output OFDM for Shallow-Water UWA Communications, in Proc. Acoustics Conference, Paris, France, July 2008.
  • [12] B. Li, J. Huang, S. Zhou, K. Ball, M. Stojanovic, L. Freitag, and P. Willett, MIMO-OFDM for High-Rate Underwater Acoustic Communications, IEEE J. Oceanic Eng., vol. 34, no. 4, pp. 634-644, Dec. 2009.
  • [13] S. Mason, C. Berger, S. Zhou, K. Ball, L. Freitag, and P. Willett, An OFDM Design for Underwater Acoustic Channels with Doppler Spread. in Proc. of the 13th DSP Workshop, Marco Island, FL, January 4-7, 2009.
  • [14] J. Hagenauer, E. Oer and L. Papke, Iterative Decoding of Binary Block and Convolutional Codes. IEEE Trans. on Inform. Theory, 1996, vol. 42, pp. 429-445.
  • [15] Justus Fricke. Zuverlassigkeitsbasierter Cross-Layer-Entwurf digitaler  Ubertragungssysteme. Dissertation. 978-3-8322-8093-2, 9783832280932, 2009.
  • [16] D. J. C. MacKay, Information Theory, Inference, and Learning Algorithms. Cambridge University Press, 2005.
  • [17] C. Schroder, I. Nissen, Channel Coding Strategies for robust Burst Underwater Communications. DAGA2011/348, Dusseldorf, 2011
  • [18] Ivor Nissen, Lecture notes on System Identication: Adaptive Systems for Mobile Underwater Communications with a p(oste)riori Channel Knowledge, Information and Coding Theory Lab, Faculty of Engineering, University of Kiel, Dec. 2008, FWG report 59 and FWG report 61.
  • [19] J. Gomes and M. Stojanovic, Performance Analysis of Filtered Multitone Modulation Systems for Underwater Communication, in Proc. MTS/IEEE OCEANS Conf., Oct. 2009, Biloxi, MS.
  • [20] M. Frater and M. Ryan, Electronic Warfare for the Digitized Battleeld (_rst ed.), Artech House Publishers, 2001
  • [21] European Commission, Joint Research Centre Institute for Environment and Sustainability, Monitoring Guidance for Underwater Noise in European Seas Part I, JRC 88733, ISBN 978-92-79-36341-2, Luxembourg: Publications Oce of the European Union, 2014 (https://ec.europa.eu/jrc/sites/default/_les/lb-na-26557-en-n.pdf)
  • [22] R. J. Peters, The Noise & Acoustics Monitoring Handbook, Coxmoore Publishing Company, Oxford (2002), page 128
  • [23] Gerd Leus and Paul A. vanWalree, Multiband OFDM for Covert Acoustic Communications, IEEE J. Select. Areas Commun., vol. 26, no. 9, pp. 1662-1673, Dec. 2008.
  • [24] Michael Goetz and Ivor Nissen, Akustisches mobiles ad-hoc Netzwerkprotokoll - GUWMANET., in DAGA 2015, Nurnberg, Marz 2015.
  • [25] Cristiano Tapparello, Paolo Casari, Giovanni Toso, Ivano Calabrese, Roald Otnes, Paul van Walree, Michael Goetz, Ivor Nissen, Michele Zorzi. Performance Evaluation of Forwarding Protocols for the RACUN Network. Proc. ACM WUWNet 2013.
  • [26] Paolo Casari, Joerg Kalwa, Michele Zorzi, Stefano Nasta, Sabrina Schreiber, Roald Otnes, Paul van Walree, Michael Goetz, Arwid Komulainen, Bernt Nilsson, Jan Nilsson, Tommy Oberg, Ivor Nissen, Henrik Strandberg, Henry S. Dol, Geert Leus, Francesco Pacini. Ad Hoc Acoustic Networks of Heterogeneous Nodes for Tactical Underwater Missions. IEEE Communications Magazine, S.I. on Underwater Wireless Communications and Networks: Theory and Applications, *SUBMITTED*
  • [27] Michael Goetz and Ivor Nissen, GUWMANET - Multicast Routing in Underwater Acoustic Networks, in Proc. MCC, Gdansk, Poland, Oct. 2012.
  • [28] Dubrovinskaya Elizaveta. GPS in underwater communication networks. Master thesis, Kiel, December 2012.
  • [29] S. Roy, T. M. Duman, V. McDonald, and J. G. Proakis, High-Rate Communication for Underwater Acoustic Channels Using Multiple Transmitters and Space-Time Coding: Receiver Structures and Experimental Results., IEEE Commun. Mag., vol. 32, no. 3, pp. 663-688, July 2007.
  • [30] Ivor Nissen and Michael Goetz. Patent: Processing of Data Packets in a Communication node (Clustering Error Correction Repair). Ref. No: DE 10 2013 006 141 A1 2014.10.16, 10.04.2013 / 16.10.2014.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-088c6f20-2fbb-478c-8a8f-6bd6841a87b6
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