Effect of Biological Activity on Broadband Passive Fathometry
- 1 School of Engineering and Information Technology, University College, University of New South Wales, Canberra, Australia
- 2 School of Engineering and Information Technology, University College, University of New South Wales, Canberra, Australia
- 3 School of Engineering and Information Technology, University College, University of New South Wales, Canberra, Australia
Abstract
A passive fathometer can be formed by two vertically separated hydrophones. The depth can be estimated from the Green’s function between the hydrophones, which is calculated from the cross-correlation between ocean ambient noise fields received at those two hydrophones. The performance of the fathometer depends on the signal to noise ratio (SNR) and the resolution of the noise cross-correlation function. In a given environment, improved SNR and resolution of the cross-correlation function can be achieved through longer observations, more observation points, or increasing bandwidth. Long time averaging has been demonstrated, but requires that the channel be stationary over the averaging time. Hydrophone arrays are commonly used, but result in increased cost and complexity. Recent work shows that the SNR and resolution of the correlation function can also be improved by the use of the large bandwidth noise fields. This pa per shows that the non-surface biological noise generated by marine animals, such as shrimp, is one of the major issues in the performance of such a broadband passive fathometer operating in shallow water. This noise tends to occur at higher frequencies. Frequencies at which significant non-surface biological noise is present cannot be used to improve fathometer performance. Consequently, the upper limit of frequencies that can be used in a passive fathometer is limited by the lower limit of the bandwidth occupied by the biological noise.
- C. H. Harrison, “Sub-Bottom Profiling Using Ocean Ambient Noise,” Journal of the Acoustical Society of America, Vol. 115, No. 4, 2004, pp. 1505-1515. doi:10.1121/1.1645854
- M. Siderius, C. H. Harrison and M.B. Porter, “A Passive Fathometer Technique for Imaging Seabed Layering Using Ambient Noise,” Journal of the Acoustical Society of America, Vol. 120, No. 3, 2006, pp. 1315-1323. doi:10.1121/1.2227371
- C. H. Harrison and M. Siderius, “Bottom Profiling by Correlating Beam Steered Noise Sequences,” Journal of the Acoustical Society of America, Vol. 123, No. 3, 2008, pp. 1282-1296. doi:10.1121/1.2835416
- J. Traer, P. Gerstoft and W. S. Hodgkiss, “Ocean Bottom Profiling with Ambient Noise: A Model for the Passive Fathometer,” Journal of the Acoustical Society of America, Vol. 129, No. 4, 2011, pp. 1825-1836. doi:10.1121/1.3552871
- P. Gerstoft, W. S. Hodgkiss, M. Siderius, C. H. Huang, and C. F. Harrison, “Passive Fathometer Processing,” Journal of the Acoustical Society of America, Vol. 123, No. 3, 2008, pp. 1297-1305. doi:10.1121/1.2831930
- S. A. Albahrani, M. R. Frater and E. H. Huntington, “Linearly Filtered Estimation of the Time-Domain Greens Function from Measurements of Ambient Noise,” Journal of the Acoustical Society of America, Vol. 124, No. 5, 2008, pp. 2699-2701. doi:10.1121/1.2981049
- K. G. Sabra, P. Roux and W. A. Kuperman, “Emergence Rate of the Time-Domain Greens Function from the Ambient Noise Cross-Correlation Function,” Journal of the Acoustical Society of America, Vol. 118, No. 6, 2005, pp. 3524-3531. doi:10.1121/1.2109059
- S. E. Fried, W. A. Kuperman, K. G. Sabra and P. Roux, “Extracting the Local Greens Function on a Horizontal Array from Ambient Ocean Noise,” Journal of the Acoustical Society of America, Vol. 124, No. 4, 2008, pp. 183-188. doi:10.1121/1.2960937
- K. G. Sabra, P. Roux, A. M. Thode, G. L. DSpain, W. S. Hodgkiss and W. A. Kuperman, “Using Ocean Ambient Noise for Array Self Localization and Self-Synchronization,” IEEE Journal of Oceanic Engineering, Vol. 30, No. 2, 2005, pp. 338-347. doi:10.1109/JOE.2005.850908
- P. Roux, W. A. Kuperman and the NPAL Group, “Extracting Coherent Wave Fronts from Acoustic Ambient Noise in the Ocean,” Journal of the Acoustical Society of America, Vol. 116, No. 4, 2004, pp. 1995-2003. doi:10.1121/1.1797754
- R. Snieder, “Extracting the Greens Function from the Correlation of Coda Waves: A Derivation Based on Stationary Phase,” Physical Review, Vol. 69, No. 4, 2004, 8 Pages.