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                                                                [14] 田德艳. 基于广义逆波束形成的噪声源定位识别方法研
                            参 考     文   献
                                                                   究 [D]. 哈尔滨: 哈尔滨工程大学, 2018.
              [1] Meyer J, Elko G. A highly scalable spherical micro-  [15] Suzuki T. L1 generalized inverse beam-forming algorithm
                 phone array based on an orthonormal decomposition of  resolving coherent/incoherent, distributed and multipole
                 the soundfield[C]//2002 IEEE International Conference  sources[J]. Journal of Sound & Vibration, 2011, 330(24):
                 on Acoustics, Speech, and Signal Processing. IEEE, 2002.  5835–5851.
              [2] Rafaely B. Analysis and design of spherical microphone  [16] Zavala P, Roeck W D, Janssens K, et al. Generalized
                 arrays[J]. IEEE Transactions on Speech and Audio Pro-  inverse beamforming with optimized regularization strat-
                 ceessing, 2005, 13(1): 135–143.                   egy[J]. Mechanical Systems and Signal Processing, 2011,
              [3] Balmages I, Rafaely B. Open-sphere designs for spherical  25(3): 928–939.
                 microphone arrays[M]. New Jersey: IEEE Press, 2007.  [17] Bahr C J, Humphreys W M, Ernst D, et al. A compar-
              [4] Cariou C, Delverdier O, Paillasseur S, et al. Tool for inte-  ison of microphone phased array methods applied to the
                 rior noise sources detection in aircraft with comparison of  study of airframe noise in wind tunnel testing[C]//23rd
                 configurations[C]//Berlin Beamforming Conference, 2012.  AIAA/CEAS Aeroacoustics Conference, 2017: 3718.
              [5] Lamotte L, Minck O, Paillasseur S, et al. Interior noise  [18] Rafaely B. Phase-mode versus delay-and-sum spherical
                 source identification with multiple spherical arrays in air-  microphone array processing[J]. IEEE Signal Processing
                 craft and vehicle[C]. ICSV 20th, Bangkok, Thailand, 2013.  Letters, 2005, 12(10): 713–716.
              [6] Knapp C, Carter G. The generalized correlation method  [19] Gao W J, Zhao H F, Xu W. Direction of arrival esti-
                 for estimation of time delay[J]. IEEE Transactions on  mation based on spherical harmonics decomposition[C]//
                 Acoustics Speech and Signal Processing, 1976, 24(4):  MTS/IEEE Oceans Conference. Monterey: MTS/IEEE,
                 320–327.                                          2016: 1–5.
              [7] Valin J M, Michaud F, Rouat J, et al. Robust sound  [20] Ueno N, Koyama S, Saruwatari H. Sound field recording
                 source localization using a microphone array on a mo-  using distributed microphones based on harmonic analysis
                 bile robot[C]//Proceedings 2003 IEEE/RSJ International  of infinite order[J]. IEEE Signal Processing Letters, 2018,
                 Conference on Intelligent Robots and Systems (IROS  PP(1): 1–1.
                 2003) (Cat. No. 03CH37453). IEEE, 2003, 2: 1228–1233.  [21] 韩欣宇, 吴鸣, 杨军, 等. 一种用于分布式阵列的球谐波域声
              [8] Michaud F, Valin J M, Rouat J. Robust localization and  源定位方法 [J]. 信号处理, 2019, 35(9): 1564–1571.
                 tracking of simultaneously moving sound sources using  [22] Pereira A. Acoustic imaging in enclosed spaces[D]. Lyon,
                 beamforming and particle filtering: US, 20060245601[P].  Institut National des Sciences Appliquées, 2013.
                 2006-11-02.                                    [23] Choo Y, Seong W. Compressive spherical beamforming
              [9] Grondin F, Michaud F. Noise mask for TDOA sound  for localization of incipient tip vortex cavitation[J]. The
                 source localization of speech on mobile robots in  Journal of the Acoustical Society of America, 2016, 140(6):
                 noisy environments[C]//IEEE International Conference  4085–4090.
                 on Robotics & Automation. IEEE, 2016.          [24] Tihonov A N. Solution of incorrectly formulated problems
             [10] Do H, Silverman H F, Yu Y. A real-time SRP-PHAT  and the regularization method[J]. Soviet Math Dokl, 1962.
                 source location implementation using stochastic region  [25] Battista G, Chiariotti P, Castellini P. Spherical harmon-
                 contraction(SRC) on a large-aperture microphone ar-  ics decomposition in inverse acoustic methods involving
                 ray[C]//Acoustics, Speech and Signal Processing, 2007.  spherical arrays[J]. Journal of Sound and Vibration, 2018,
                 ICASSP 2007. IEEE International Conference on. IEEE,  433: 425–460.
                 2007.                                          [26] Pereira A, Antoni J, Leclère Q. Empirical Bayesian reg-
             [11] Zhang C, Florencio D, Ba D E, et al. Maximum likeli-  ularization of the inverse acoustic problem[J]. Applied
                 hood sound source localization and beamforming for direc-  Acoustics, 2015, 97: 11–29.
                 tional microphone arrays in distributed meetings[J]. IEEE  [27] van Veen B D, Buckley K M. Beamforming: a versatile ap-
                 Transactions on Multimedia, 2008, 10(3): 538–548.  proach to spatial filtering[J]. IEEE ASSP Magazine, 2002,
             [12] Ishi C T, Chatot O, Ishiguro H, et al.  Evaluation of  5(2): 4–24.
                 a MUSIC-based real-time sound localization of multiple  [28] Dougherty R P. Functional beamforming[C]// Proceed-
                 sound sources in real noisy environments[C]//IEEE/RSJ  ings on CD of the 5th Berlin Beamforming Conference,
                 International Conference on Intelligent Robots & Sys-  19–20 February 2014, 2014.
                 tems. IEEE, 2009.                              [29] Luesutthiviboon S, Malgoezar A, Snellen M, et al.
             [13] Wang H, Kaveh M. Coherent signal-subspace processing  Improving source discrimination performance by us-
                 for the detection and estimation of angles of arrival of  ing an optimized acoustic array and adaptive high-
                 multiple wide-band sources[J]. Acoustics Speech & Signal  resolution CLEAN-SC beamforming[C]// Berlin Beam-
                 Processing IEEE Transactions on, 1985, 33(4): 823–831.  formiang Conference, 2018.
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