Optimal array element localization

被引:34
作者
Dosso, SE [1 ]
Sotirin, BJ
机构
[1] Univ Victoria, Sch Earth & Ocean Sci, Victoria, BC V8W 3P6, Canada
[2] USA, Corps Engineers, Cold Reg Res & Engn Lab, Hanover, NH 03775 USA
关键词
D O I
10.1121/1.428198
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Advanced array processing methods require accurate knowledge-of the location of individual elements in a sensor array. Array element localization (AEL) methods are typically based on inverting acoustic travel-time measurements from a series of controlled sources at well-known positions to the sensors to be localized. An important issue in AEL is designing the configuration of source positions: a well-designed configuration can produce substantially better sensor localization than a poor configuration. In this paper, the effects of the source configuration and of errors in the data, source positions, and ocean sound speed are quantified using a sensor-position error measure based on the a posteriori uncertainty of a general formulation of the AEL inverse problem. Optimal AEL source configurations are determined by minimizing this error measure with respect to the source positions using an efficient hybrid optimization algorithm. This approach is highly flexible, and,can be applied to any sensor configuration and combination of errors; it is also straightforward to apply constraints to the source positions, or to include-the effects of data errors that vary with range. The ability to determine optimal source configurations as a function of the number of sources and of the errors in the data, source positions, and sound speed allows the effects of each of these factors to be examined quantitatively in a consistent manner. A modeling study considering these factors can guide in the design of AEL systems to meet specific,objectives for sensor localization. (C) 1999 Acoustical Society of America. [S0001-4966(99)03912-0].
引用
收藏
页码:3445 / 3459
页数:15
相关论文
共 30 条
[1]   AN OVERVIEW OF MATCHED-FIELD METHODS IN OCEAN ACOUSTICS [J].
BAGGEROER, AB ;
KUPERMAN, WA ;
MIKHALEVSKY, PN .
IEEE JOURNAL OF OCEANIC ENGINEERING, 1993, 18 (04) :401-424
[2]  
BURDIC WS, 1994, UNDERWATER ACOUSTIC
[3]   NONLINEAR INVERSION FOR OCEAN-BOTTOM PROPERTIES [J].
COLLINS, MD ;
KUPERMAN, WA ;
SCHMIDT, H .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1992, 92 (05) :2770-2783
[4]   LOCATION OF INSTRUMENTS ON THE SEAFLOOR BY JOINT ADJUSTMENT OF INSTRUMENT AND SHIP POSITIONS [J].
CREAGER, KC ;
DORMAN, LM .
JOURNAL OF GEOPHYSICAL RESEARCH, 1982, 87 (NB10) :8379-8388
[5]   High-precision array element localization for vertical line arrays in the Arctic Ocean [J].
Dosso, SE ;
Brooke, GH ;
Kilistoff, SJ ;
Sotirin, BJ ;
McDonald, VK ;
Fallat, MR ;
Collison, NE .
IEEE JOURNAL OF OCEANIC ENGINEERING, 1998, 23 (04) :365-379
[6]   Array element localization for horizontal arrays via Occam's inversion [J].
Dosso, SE ;
Fallat, MR ;
Sotirin, BJ ;
Newton, JL .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1998, 104 (02) :846-859
[7]   ESTIMATION OF OCEAN-BOTTOM PROPERTIES BY MATCHED-FIELD INVERSION OF ACOUSTIC FIELD DATA [J].
DOSSO, SE ;
YEREMY, ML ;
OZARD, JM ;
CHAPMAN, NR .
IEEE JOURNAL OF OCEANIC ENGINEERING, 1993, 18 (03) :232-239
[8]   Geoacoustic inversion via local, global, and hybrid algorithms [J].
Fallat, MR ;
Dosso, SE .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1999, 105 (06) :3219-3230
[9]  
HANSRUEDI M, 1998, GEOPHYS J INT, V132, P458
[10]   THE DESIGN OF OPTIMUM NETWORKS FOR AFTERSHOCK RECORDINGS [J].
HARDT, M ;
SCHERBAUM, F .
GEOPHYSICAL JOURNAL INTERNATIONAL, 1994, 117 (03) :716-726