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수중 환경 정보 DB 기반 준-정적 수중음향 채널 수중음향 탐지 효과도 분석 모의 도구 구현

Effectiveness Analysis Tool for Underwater Acoustics Detection in Quasi-static Underwater Acoustics Channel based on Underwater Environmental Information DB

  • 김장은 (국방기술품질원/경북대학교 IT대학 전자공학부) ;
  • 한동석 (경북대학교 IT대학 전자공학부)
  • Kim, Jang Eun (Defense Agency for Technology and Quality/School of Electronics Engineering, Kyungpook National University) ;
  • Han, Dong Seog (School of Electronics Engineering, Kyungpook National University)
  • 투고 : 2015.06.04
  • 심사 : 2015.09.25
  • 발행 : 2015.10.25

초록

수중음향 채널환경에서 운영되는 검파시스템 성능분석은 실험의 제약으로 인해 모의 도구를 활용하여 시스템 성능을 결정한다. 본 논문은 수중음향 채널에 대한 탐지 효과도 분석을 위하여 수중환경 데이터베이스를 기반 수중음향 탐지 효과도 분석 모의 도구를 제안한다. 먼저, HYCOM 수중환경 데이터베이스 기반으로 수중 환경을 구축하고, 음선이론을 이용하여 수중음향 전달 경로/음압 계산을 통한 다중경로 지연 특성을 고려하였다. 또한, 실 환경에서 발생하는 수중 잡음 특성을 반영하기 위해 운용 주파수에 따른 수중청음기/수중음향 채널 잡음 특성인 열잡음/수중 주변 잡음을 적용하였다.

It is difficult to test a detection system in underwater acoustics channel environments. The system can be evaluated by using simulation analysis tool. In this paper, a simulation tool is proposed to analyze the effectiveness of underwater acoustics detection based on database for real environments. First, the underwater environment is built based on HYCOM underwater environment database. Then, a multipath characteristic is considered through calculating underwater acoustics propagation path/pressure based on the ray theory. Also, hydrophone thermal noise and underwater ambient noise are considered to reflect underwater noise characteristics.

키워드

참고문헌

  1. Robin Frost and Dave Thomen, "Simulation Based Acquisition An Ongoing Look", INCOSE International Symposium, Volume 9, Issue 1, pp 339-344, 1999.
  2. http://oalib.hlsresearch.com, Ocean Acoustics Library.
  3. H.H. Kang, Y.J. Lee, and W.O. Han, "Performance Analysis of an OFDM System over an underwater acoustic channel", of The Institute of Electronics Engineers of Korea Vol. 49, NO.11, pp 211-216, 2012
  4. L.H Kim, T.B. Shim, "Evaluation of Proposed CSMA/CA Protocol in The Underwater Acoustic Networks", Journal of The Institute of Electronics Engineers of Korea vol. 46SP, NO.1, pp 63-69, 2009
  5. J.H. Kim, K.S. Yoon, I.S. Seo, and K.K. Lee, "Underwater Target Information Estimation using Proximity Sensor", Journal of The Institute of Electronics and Information Engineers Vol.52, NO.5, pp 174-180, 2015 https://doi.org/10.5573/ieie.2015.52.5.174
  6. D.M. Jeong, S.K. You, I.S Song, "Engineering Model Development for Subsystem-MOP (Measure Of Performance) Analysis of Underwater Acoustic Signal Processing", Journal of The Institute of Electronics Engineers of Korea Summer General Conference, pp 657-660, 2014
  7. http://hycom.org/, HYCOM (HYbrid Cooprdinate Ocean Model).
  8. S.N. Carroll, K.A. Kelly and K.V. Rushing, "Hybrid Coordinate Ocean Model(HYCOM) User's Guide, Version 2.1", Naval Research Laboratory, 2003.
  9. S.B. Seo, Y.G. Park, J.H. Park, H.J. Lee, and N. Hirose, "The Tsushima Warm Current from a High Resolution Ocean Prediction Model, HYCOM", Ocean and Polar Research Vol.35 NO.2, pp 135-146, 2013. https://doi.org/10.4217/OPR.2013.35.2.135
  10. Paul C. Etter, "Underwater Acoustic Modeling and Simulation", Third edition, Spon Press, pp 25-27, 2003.
  11. A. B. Coppens, "Simple equations for the speed of sound in Neptunian waters", J. Acoust. Soc. Am. 69(3), pp 862-863, 1981. https://doi.org/10.1121/1.385486
  12. Finn B. Jensen, William A. Kuperman, Michael B. Porter and Henrik Schmidt, "Computational Ocean Acoustics, Second Edition", Springer, 2011, Chapter 3, 1981.
  13. M.B. Porter and Y-C. Liu, "Finite-Element Ray Tracing", Theoretical and Computational Acoustics, pp. 947-956, World Scientific, Singapore, 1994.
  14. V. C erveny', "Seismic Ray Theory", Cambridge University Press, Cambridge, 2001.
  15. Urick, "Principles of Underwater Sound, Third edition", McGraw-Hill Publishing Company, 1983.
  16. Xavier Lurton, "An Introduction to Underwater Acoustics Principles and Application", Praxis Publishing Ltd, pp 115, 2002.
  17. Knudsen V.O., Alford R.S and Emling J.W., "Underwater ambient noise", Journal of Marine Research, 7, 410, 1948
  18. J.E. Kim, T.B. Shim, "Design of a robust underwater acoustic communication system over multipath fading channels." AIP Publishing, ADVANCES IN OCEAN ACOUSTICS: Proceedings of the 3rd International Conference on Ocean Acoustics (OA2012), Vol. 1495. No. 1, 2012.
  19. Andreas F. Molisch, "Wireless Communications, Second Edition", John Wiley & Sons, 2011.
  20. Duhamel, P. and M. Vetterli, "Fast Fourier Transforms: A Tutorial Review and a State of the Art," Signal Processing, Elsevier, Vol. 19, pp. 259-299, 1990 https://doi.org/10.1016/0165-1684(90)90158-U
  21. Oppenheim, A. V. and R. W. Schafer, "Discrete-Time Signal Processing", Prentice-Hall, pp 611, 1989.