Automated Optimal Processing of Phase Differencing Side-scan Sonar Data Using the Most-Probable Angle Algorithm

被引:0
|
作者
Schmidt, Val E. [1 ]
Weber, Tom C. [1 ]
Trembanis, Arthur C. [2 ]
机构
[1] Univ New Hampshire, Ctr Coastal & Ocean Mapping, Durham, NH 03824 USA
[2] Univ Delaware, Coastal Sediments Hydrodynam & Engn Lab, Newark, DE USA
来源
2012 OCEANS | 2012年
关键词
sonar; side-scan; phase differencing; direction of arrival; estimation;
D O I
暂无
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Phase-differencing side-scan sonar systems produce co-located bathymetry in addition to each side-scan amplitude measurement. Bathymetric soundings are calculated from the range to each measurement (derived from the two-way travel time) and the receive angle of the incoming signal. Because phasedifferencing systems produce a seafloor sounding with each individual measurement, they are often characterized as noisy when compared to multi-beam sonar systems, whose seafloor estimates, whether by amplitude-weighted mean or sub-aperture phase difference detection, are the product of averaging several measurements. In addition, every effort is made to increase the resolution of side-scan data by increasing the bandwidth and sampling rate of the transmitted signal, often producing more than 10,000 data points per ping. This volume of outlier-prone, relatively noisy data is difficult for operators to interpret and software to process. A series of methods has been developed for the automated processing of phase-differencing side-scan sonar data producing seafloor estimates and related uncertainties optimized for the survey application. The " Most-Probable Angle Algorithm" (MPAA) has been developed for the filtering of outliers in range-angle measurements. With outliers removed, the uncertainty of the filtered measurements are estimated. Angle estimates are then calculated as an uncertainty-weighted mean where the number of measurements contributing to each estimate is determined from that required to achieve a desired depth uncertainty. The resulting swath of depth measurements contains irregularly spaced soundings, typically obtaining full spatial resolution of the side-scan data from 20-50 degrees from nadir, and combining several measurements to reduce the uncertainty elsewhere. In this way, given a survey requirement, an optimal amount of information can be extracted from the sonar data in varying conditions.
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页数:6
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  • [1] A MICROCOMPUTER PROGRAM FOR POST-PROCESSING SIDE-SCAN SONAR DATA
    LINDER, CA
    [J]. NAVAL ENGINEERS JOURNAL, 1995, 107 (01) : 69 - 75
  • [2] DETERMINATION OF SEA-FLOOR CHARACTERISTICS USING THE PHASE SIDE-SCAN SONAR
    ALEXANDROV, AA
    VAREICHUK, NS
    OSHEVEROV, MG
    FUKS, BK
    [J]. OKEANOLOGIYA, 1983, 23 (03): : 508 - 512
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    Foo, Simon Y.
    [J]. 2007 IEEE INTERNATIONAL SYMPOSIUM ON INDUSTRIAL ELECTRONICS, PROCEEDINGS, VOLS 1-8, 2007, : 1803 - 1806
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    Aridgides, T
    Libera, P
    Fernandez, M
    Dobeck, G
    [J]. DETECTION AND REMEDIATION TECHNOLOGIES FOR MINES AND MINELIKE TARGETS, 1996, 2765 : 110 - 121
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    Joshima, Masato
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    Nishimura, Kiyokazu
    [J]. 2007 SYMPOSIUM ON UNDERWATER TECHNOLOGY AND WORKSHOP ON SCIENTIFIC USE OF SUBMARINE CABLES AND RELATED TECHNOLOGIES, VOLS 1 AND 2, 2007, : 621 - +
  • [9] Algorithm fusion for the detection and classification of sea mines in the very shallow water region using side-scan sonar imagery
    Dobeck, GJ
    [J]. DETECTION AND REMEDIATION TECHNOLOGIES FOR MINES AND MINELIKE TARGETS V, PTS 1 AND 2, 2000, 4038 : 348 - 361
  • [10] QUATERNARY SEDIMENTARY PROCESSES ON THE NORTHWESTERN AFRICAN CONTINENTAL-MARGIN - AN INTEGRATED STUDY USING SIDE-SCAN SONAR, HIGH-RESOLUTION PROFILING, AND CORE DATA
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    WEAVER, PPE
    KIDD, RB
    GARDNER, JV
    [J]. AAPG BULLETIN-AMERICAN ASSOCIATION OF PETROLEUM GEOLOGISTS, 1991, 75 (08): : 1416 - 1416