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第 42 卷 第 2 期               赵鸿铭等: 阵不变量匹配主动声呐目标深度辨识                                           201


                 The Journal of the Acoustical Society of America, 1976,  Li Tianyu, Li Yu, Huang Haining, et al. Source depth esti-
                 59(2): 368–373.                                   mation using a small-aperture horizontal moving array[J].
              [2] Baggeroer A, Kuperman W A, Mikhalevsky P E. An   Acta Acustica, 2021, 46(4): 497–507.
                 overview of matched field methods in ocean acous-  [14] Reeder D B. Clutter depth discrimination using the
                 tics[J]. IEEE Journal of Oceanic Engineering, 1993, 18(4):  wavenumber spectrum[J]. The Journal of the Acoustical
                 401–424.                                          Society of America, 2013, 135(1): EL1–EL7.
              [3] Worthmann B M, Song H C, Dowling D R. High frequency  [15] Goldhahn R, Hickman G, Krolik J. A waveguide invari-
                 source localization in a shallow ocean sound channel us-  ant adaptive matched filter for active sonar target depth
                 ing frequency difference matched field processing[J]. The  classification[J]. The Journal of the Acoustical Society of
                 Journal of the Acoustical Society of America, 2015, 138(6):  America, 2011, 129(4): 1813–1824.
                 3549–3562.                                     [16] Worthmann B M, Dowling D R. Nonlinear signal process-
              [4] Hinich M J. Maximum likelihood estimation of the posi-  ing techniques for active sonar localization in the shal-
                 tion of a radiating source in a waveguide[J]. The Journal of  low ocean with significant environmental uncertainty and
                 the Acoustical Society of America, 1979, 66(2): 480–483.  reverberation[J]. Proceedings of Meetings on Acoustics,
              [5] Shang E C. Source depth estimation in waveguides[J]. The  2016, 28(1): 055003.
                 Journal of the Acoustical Society of America, 1985, 77(4):
                                                                [17] Hjelmervik K T. Target depth estimating using a ray
                 1413–1418.
                                                                   backpropagation scheme on mid-frequency active sonar
              [6] Yang T C. A method of range and depth estimation by
                                                                   data[J]. Proceedings of the European Conference on Un-
                 modal decomposition[J]. The Journal of the Acoustical
                                                                   derwater Acoustics, 2010.
                 Society of America, 1987, 82(5): 1736–1745.
                                                                [18] Mours A, Ioana C, Mars J, et al. Target-depth estimation
              [7] 苏林, 马力, 宋文华, 等. 声速剖面对不同深度声源定位的影
                                                                   in active sonar: Cramer–Rao bounds for a bilinear sound-
                 响 [J]. 物理学报, 2015, 64(2): 272–279.
                                                                   speed profile[J]. The Journal of the Acoustical Society of
                 Su Lin, Ma Li, Song Wenhua, et al.  Influences of
                                                                   America, 2016, 140: 1771–1782.
                 sound speed profile on the source localization of different
                                                                [19] Hickman G, Krolik J L. Matched-field depth estimation
                 depths[J]. Journal of Physics, 2015, 64(2): 272–279.
                                                                   for active sonar[J]. The Journal of the Acoustical Society
              [8] Premus V E, Backman D. A matched subspace ap-
                                                                   of America, 2004, 115(2): 620–629.
                 proach to depth discrimination in a shallow water waveg-
                                                                [20] Hickman G, Krolik J L. Wide-band target depth estima-
                 uide[C]//2007 Conference Record of the Forty-First Asilo-
                                                                   tion in a scattering ocean environment[C]//Proceedings.
                 mar Conference on Signals, Systems and Computers,
                                                                   (ICASSP ’05). IEEE International Conference on Acous-
                 2007: 1272–1276.
                                                                   tics, Speech, and Signal Processing, 2005. 4: iv/1077-
              [9] Bogart C W, Yang T C. Source localization with horizon-
                                                                   iv/1080 Vol. 4.
                 tal arrays in shallow water: spatial sampling and effec-
                                                                [21] Lee S, Makris N C. The array invariant[J]. The Journal of
                 tive aperture[J]. The Journal of the Acoustical Society of
                                                                   the Acoustical Society of America, 2006, 119(1): 336–351.
                 America, 1994, 96(3): 1677–1686.
             [10] Premus V E, Helfrick M N. Use of mode subspace projec-  [22] Gong Z, Tran D D, Ratilal P. Comparing passive source
                 tions for depth discrimination with a horizontal line array:  localization and tracking approaches with a towed hori-
                 theory and experimental results[J]. The Journal of the  zontal receiver array in an ocean waveguide[J]. The Jour-
                 Acoustical Society of America, 2013, 133(6): 4019–4031.  nal of the Acoustical Society of America, 2013, 134(5):
             [11] Conan E, Bonnel J, Nicolas B, et al. Using the trapped  3705–3720.
                 energy ratio for source depth discrimination with a hori-  [23] Song H C, Byun G. Simultaneous localization of a sur-
                 zontal line array: theory and experimental results[J]. The  face ship and a submerged towed source (L)[J]. The Jour-
                 Journal of the Acoustical Society of America, 2017, 142(5):  nal of the Acoustical Society of America, 2018, 144(4):
                 2776–2786.                                        2238–2241.
             [12] Yang T C. Source depth estimation based on synthetic  [24] Li S, Clay C S. Optimum time domain signal transmis-
                 aperture beamfoming for a moving source[J]. The Jour-  sion and source location in a waveguide: experiments in
                 nal of the Acoustical Society of America, 2015, 138(3):  an ideal wedge waveguide[J]. The Journal of the Acousti-
                 1678–1686.                                        cal Society of America, 1987, 82(4): 1409–1417.
             [13] 李天宇, 李宇, 黄海宁, 等. 运动小孔径水平基阵估计目标深               [25] 朱业, 张仁和. 负跃层浅海中的脉冲声传播 [J]. 中国科学: 数
                 度 [J]. 声学学报, 2021, 46(4): 497–507.                学 物理学 天文学 技术科学, 1996, 26(3): 271–279.
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