[1] | [4] Davidson M M, Edmonds D T, Mailer J P G. Nitrogen and deuterium nuclear quadrupole resonance in lanthanum nicotinate dehydrate[J].The Journal of Chemical Physics,1981,74(2):890-894.
|
[2] | [5] Rukmani K,Ramakrishna J. A nuclear quadrupole resonance spectrometer with automatic gain control and sideband suppression[J]. Review of Scientific Instruments, 1992, 63(10):4271-4276.
|
[3] | [6] Grechishkin V S,Sinyavski N Y,Mozzhukhin G V. A unilateral NQR explosives detector[J]. Russian Physics Journal, 1992,35(7): 635-637.
|
[4] | [7] Grechishkin V S. Detection of NQR in explosives[J]. Russian Physics Journal, 1992,35(7):637-640.
|
[5] | [8] 李鲠颖,蒋瑜,吴先球,等.氮-14远程核四极共振谱仪[J].波谱学杂志, 1994, 11(4):419-426.
|
[6] | [13] 袁进胜,孙昌璞.旋转样品核四极共振的量子绝热微扰论分析[J].物理学报, 1995, 44(1):29-34.
|
[7] | [14] 李鲠颖,徐学诚.固体核磁共振中旋转回波激发的研究[J].物理学报, 1995, 44(11):1848-1853.
|
[8] | [15] 李鲠颖,邬学文.固体四极体系NMR及其应用[J].波谱学杂志, 1995, 12(4):420-429.
|
[9] | [16] 夏佑林, 叶朝辉. 14N核四极共振中自旋锁定的偏共振效应[J]. 物理学报, 1995, 44(6):970-976.
|
[10] | [17] 夏佑林, 叶朝辉. 自旋I=1和3/2的粉末样品的核四极共振波谱学—I.对脉冲的响应[J]. 自然科学进展, 1995, 5(4):467-473.
|
[11] | [18] 夏佑林, 叶朝辉. 自旋I=1和3/2的粉末样品的核四极共振波谱学—II.核四极共振回波及应用[J]. 自然科学进展, 1995, 5(5):464-559.
|
[12] | [19] 夏佑林,胡红兵,杨保联,等.当能级间隔较小时三能级核四极共振自旋系统对脉冲的响应[J].波谱学杂志, 1996, 13(4): 311-320.
|
[13] | [20] Rowe M D,Smith J A S. Mine detection by nuclear quadrupole resonance[C]∥The Detection of Abandoned Land Mines. Edinburgh:IEE Conference Publication, 1996:62-66.
|
[14] | [21] González C E,Pusiol D J. Nuclear quadrupole resonance line shape study of the orientationally disordered phase of p-chloro nitrobenzene[J]. The Journal of Chemical Physics, 1996, 105(24): 10776-10781.
|
[15] | [22] 李鲠颖.自旋I=3/2核四极共振体系对梳状脉冲的响应[J].物理学报,1996,45(4):681-688.
|
[16] | [36] Müller N,Jerschow A. Nuclear spin noise imaging[J]. PNAS, 2006, 103(18):6790-6792.
|
[17] | [53] Marino R A,Klainer S M. Multiple spin echoes in pure quadrupole resonance[J]. The Journal of Chemical Physics, 1977, 67(7):3388-3389.
|
[18] | [54] Klainer S M,Hirschfeld T B,Marino R A. Fourier, Hadamard, and Hilbert transforms in chemistry[M]. New York: Plenum, 1982.
|
[19] | [56] Fisher G,MacNamara E,Santini R E,et al. A versatile computer-controlled pulsed nuclear quadrupole resonance spectrometer[J]. Review of Scientific Instruments, 1999, 70(12):4676-4681.
|
[20] | [57] Sauer K L, Klug C A, Miller J B, et al. Using quaternions to design composite pulses for spin-1 NQR[J]. Applied Magnetic Resonance,2004,25(3-4):485-500.
|
[21] | [58] Mikhaltsevitch V T,Rudakov T N,Flexman J H,et al. Comparative experimental analysis of composite pulses in 14N NQR[J]. Solid State Nuclear Magnetic Resonance, 2004, 25(1): 61-63.
|
[22] | [70] Prescott D W, Miller J B, Tourigny C, et al. Nuclear quadrupole resonance single-pulse echoes[J]. Journal of Magnetic Resonance, 2008, 194(1): 1-7.
|
[23] | [71] Jakobsson A,Mossberg M,Rowe M D,et al. Frequency-selective detection of nuclear quadrupole resonance signals[J]. IEEE Transactions on Geoscience and Remote Sensing,2005, 43(11):2659-2665.
|
[24] | [73] Jakobsson A,Mossberg M,Rowe M D,et al. Exploiting temperature dependency in the detection of NQR signals[J]. IEEE Transactions on Signal Processing,2006, 54(5):1610-1616.
|
[25] | [86] Butt N R, Jakobsson A. Efficient removal of noise and interference in multichannel quadrupole resonance[C]∥2011 Conference Record of the 45th Asilomar Conference on Signals, Systems and Computers. Pacific Grove: IEEE Conference Publication, 2011:1072-1076.
|
[26] | [87] Stoica P,Li H,Li J. A new derivation of the APES filter[J]. Signal Processing Letters,1999, 6(8):205-206.
|
[27] | [88] Jiang Y,Li J,Stoica P. Array signal processing for QR[C]∥Conference Record of the 36th Asilomar Conference on Signals, Systems and Computers. Pacific Grove:IEEE Conference Publication, 2002: 893-897.
|
[28] | [89] Tan Y, Tantum S L,Collin L M. Landmine detection with nuclear quadrupole resonance[C]∥IEEE International Geoscience and Remote Sensing Symposium. Toronto:IEEE Conference Publication, 2002:1575-1578.
|
[29] | [90] Jiang Y,Stoica P,Li J. Array signal processing in the known waveform and steering vector case[J]. IEEE Transactions on Signal Processing, 2004, 52(1):23-35.
|
[30] | [94] Xiong H,Li J,Barrall G A. Joint TNT and RDX detection via quadrupole resonance[J]. IEEE Transactions on Aerospace and Electronic Systems, 2007, 43(4):1282-1293.
|
[31] | [95] Xu L,Stoica P,Li J. Complex amplitude estimation in the known steering matrix and generalized waveform case[J]. IEEE Transactions on Signal Processing, 2006, 54(5):1716-1726.
|
[32] | [96] Stoica P, Xiong H, Xu L, et al. Adaptive beamforming for quadrupole resonance[J]. Digital Signal Processing, 2007, 17(3): 634-651.
|
[33] | [97] Kercel S W, Dress W B, Hibbs A D, et al. Wavelet-based enhancements to nuclear quadrupole resonance explosives detectors[C]∥Aerospace,Defense Sensing and Controls. US:International Society for Optics and Photonics, 1998: 424-434.
|
[34] | [98] 姚刚,房旭民,毛云志.基于小波阀值消噪的硝铵NQR信号处理[J]. 波谱学杂志, 2009, 26(4):504-511.
|
[35] | [99] 李鲠颖.固态磁共振中提高四极核检测灵敏度的有效方法[J].物理学报, 1994, 43(8):1365-1370.
|
[36] | [100] 李硬颖. 整形滤波在远程核四极共振探测中的应用[J]. 波谱学杂志, 1996, 13(3):303-308.
|
[37] | [101] 李鲠颖,谢海滨,夏小建.一种简单的快恢复 14N NQR探头[J]. 波谱学杂志, 1996, 13(1):95-100.
|
[38] | [102] Wang J H,Liao M Y. Sensitivity-enhanced nuclear quadrupole correlation spectroscopy:application of single transition operators in nuclear quadrupole resonance of half-integer nucleus[J]. The Journal of Chemical Physics, 2002, 116(8):3270-3276.
|
[39] | [103] Miller J B, Garroway A N. Applications of adiabatic half passage to NQR[J]. Applied Magnetic Resonance, 2004, 25(3-4): 475-483.
|
[40] | [106] 郭华明,张国进,陈春,等.NQR炸药检测系统中激励脉冲拖尾的抑制[J].波谱学杂志,2007, 24(2):199-204.
|
[41] | [107] 郝国欣,金燕波,周新建,等.NQR炸药探测系统中减少振铃拖尾影响的几种措施[J].工兵装备研究, 2007, 26(4):25- 27.
|
[42] | [108] 周新建,张国进,高攀,等.NQR探测系统振铃拖尾抑制方法研究[J].核电子学与探测技术, 2008, 28(3):477-480.
|
[43] | [109] 陈星,徐更光.一种快速有效的核四极共振探头恢复方法[J].原子能科学技术,2009,43(5):474-476.
|
[44] | [112] Li Z W, Zeng Q F,Xu H E. The asymptotic Cramer-Rao lower bound and maximum likelihood estimation of parameters of exponentially damped sinusoid from noisy measurements[C]∥Proceedings of the IEEE International Symposium on Industrial Electronics. Xi’an: IEEE Conference Publication, 1992:64-68.
|
[45] | [113] Tufts D W, Ge H,Umesh S. Fast maximum likelihood estimation of signal parameters using the shape of the compressed likelihood function[J]. IEEE Journal of Oceanic Engineering, 1993, 18(4):388-400.
|
[46] | [114] Umesh S, Tufts D W. Estimation of parameters of exponentially damped sinusoids using fast maximum likelihood estimation with application to NMR spectroscopy data[J]. IEEE transactions on Signal Processing, 1996, 44(9): 2245-2259.
|
[47] | [117] So H C, Chan F K W, Lau W H, et al. An efficient approach for two-dimensional parameter estimation of a single-tone[J]. IEEE Transactions on Signal Processing, 2010, 58(4):1999-2009.
|
[48] | [118] Li Y,Razavilar J,Liu K J R. A high-resolution technique for multidimensional NMR spectroscopy[J]. IEEE Transactions on Biomedical Engineering, 1998, 45(1):78-86.
|
[49] | [120] Stéphanie Rouquette, Mohamed Najim. Estimation of frequencies and damping factors by two-dimensional ESPRIT type methods[J]. IEEE Transactions on Signal Processing, 2001, 49(1):237-245.
|
[50] | [121] Hua Y B. Estimating two-dimensional frequencies by matrix enhancement and matrix pencil[J]. IEEE Transactions on Signal Processing, 1992, 40(9):2267-2280.
|
[51] | [122] Papy J M, De Lathauwer L, Van Huffel S. Common pole estimation in multi-channel exponential data modeling[J]. Signal Processing, 2006, 86(4): 846-858.
|
[52] | [137] Aboutanios E. Parameter estimation of a decaying exponential in noise[C]∥16th International Conference on Digital Signal Processing. Santorini-Hellas:IEEE Conference Publication, 2009: 1-6.
|
[53] | [138] El-Hadi Djermoune, Marc Tomczak. Perturbation analysis of subspace-based methods in estimating a damped complex exponential[J]. IEEE Transactions on Signal Processing, 2009, 57(11): 4558-4563.
|
[54] | [144] Stoican O S. NQR detection setup[J]. Romanian Journal of Physics, 2006, 51(2):311-315.
|
[55] | [146] Augustine M P, TonThat D M, Clarke J. SQUID detected NMR and NQR[J]. Solid State Nuclear Magnetic Resonance, 1998, 11(1-2): 139-156, 726-729.
|
[56] | [147] Sakuta K, Araya T, Kitamura Y, et al. Environmental MHz noise reduction for SQUID application[J]. IEEE Transactions on Applied Superconductivity, 2007, 17(2):726-729.
|
[57] | [154] Pannetier-Lecoeur M, Fermon C, Biziere N, et al. RF response of superconducting-GMR mixed sensors, application to NQR[J]. IEEE Transactions on Applied Superconductivity, 2007, 17(2): 598-603.
|
[58] | [155] Tachiki M, He D F, Itozaki H. Sensing of chemical substances using SQUID-based nuclear quadrupole resonance[J]. Physica C:Superconductivity, 2007, 463-465: 1034-1037.
|
[59] | [156] Dyvorne H, Fermon C, Pannetier-Lecoeur M, et al. NMR with superconducting-GMR mixed sensors[J]. IEEE Transactions on Applied Superconductivity, 2009, 19(3):819-822.
|
[60] | [157] Gregorovic A, Apih T. TNT detection with 14N NQR: multipulse sequences and matched filter[J]. Journal of Magnetic Resonance, 2009, 198(2):215-221.
|
[61] | [158] Gudmundson E, Ling J, Stoica P, et al. Spectral estimation of damped sinusoids in the case of irregularly sampled data[C]∥International Symposium on Signals, Circuits and Systems. Iasi: IEEE Conference Publication, 2009: 1-4.
|
[62] | [116] Kumaresan R,Tufts D W. Estimating the parameters of exponentially damped sinusoids and pole-zero modeling in noise[J]. IEEE Transactions on Acoustics, Speech, and Signal Processing, 1982, 30(6):833-840.
|
[63] | [119] Boyer R, Bouleux G, Abed-Meraim K. Common pole estimation with an orthogonal vector method[C]∥14th European Signal Processing Conference. Florence: UniversitéJean Monnet-Saint-Elienne, 2006: hal-00577275.
|
[64] | [123] Zhang J, Swain A K, Nguang S K. Parameter estimation of exponentially damped sinusoids using HSVD based extended complex Kalman filter[C]∥TENCON 2008-2008 IEEE Region 10 Conference.US:IEEE Conference Publication, 2008: 1-6.
|
[65] | [124] Naishadham K, Piou J E. A robust state space model for the characterization of extended returns in radar target signatures[J]. IEEE Transactions on Antennas and Propagation, 2008, 56(6):1742-1751.
|
[66] | [125] Tufts D W, Kumaresan R. Estimation of frequencies of multiple sinusoids making linear prediction perform like maximum likelihood[J]. Proceedings of the IEEE, 1982, 70(9):975-989.
|
[67] | [126] Biradar L S, Reddy V U. A Newton-based Ziskind-Wax alternating projection algorithm applied to spectral estimation[J]. IEEE Transactions on Signal Processing, 1993, 41(3):1435-1438.
|
[68] | [127] Feder M, Weinstein E. Parameter estimation of superimposed signals using the EM algorithm[J]. IEEE Transactions on Acoustics, Speech, and Signal Processing, 1988, 36(4):477-489.
|
[69] | [128] Ziskand I,Hertz D. Multiple frequencies and AR parameters estimation from one bit quantized signal via the EM algorithm[J]. IEEE Transactions on Signal Processing, 1993, 41(11):3202-3206.
|
[70] | [129] Reddy V Umapathi, Biradar L S. SVD based information theoretic criteria for detection of the number of damped undamped sinusoids and their performance analysis[J]. IEEE Transactions on Signal Processing, 1993, 41(9):2872-2881.
|
[71] | [130] Liu Z S,Li J. Implementation of the RELAX algorithm[J]. IEEE Transactions on Aerospace and Electronic Systems, 1998, 34(2):657-664.
|
[72] | [131] Li C Z, Lin J, Li J,et al. Accurate Doppler radar noncontact vital sign detection using the RELAX algorithm[J]. IEEE Transactions on Instrumentation and Measurement, 2010, 59(3): 687-695.
|
[73] | [132] Sahnoun S, Djermoune E H, Soussen C, et al. Sparse multidimensional modal analysis using a multigrid dictionary refinement[J]. EURASIP Journal on Advances in Signal Processing, 2012, 60(1): 1-10.
|
[74] | [133] 朱凯然, 吴兆平, 何学辉, 等. 微弱核四极矩共振信号参数估计新方法[J]. 系统工程与电子技术, 2012, 34(8): 1536-1542.
|
[75] | [134] 朱凯然, 何学辉, 郑纪彬, 等. 多模块中核四极矩共振信号参数估计新方法[J]. 西安电子科技大学学报, 2013, 40(3): 36-41.
|
[76] | [135] Cheng Q. On parameter estimation of damped sinusoids[C]∥TENCON 2006 IEEE Region 10 Conference. US: IEEE Conference Publication, 2006:1-4.
|
[77] | [136] Grechishkin V S, Grechishkina R V, Heo H. Signal processing methods in NQR[C]∥Explosives Detection Using Magnetic and Nuclear Resonance Techniques. Netherlands:Springer, 2009: 159-170.
|
[78] | [139] Dabek J, Nieminen J O, Vesanen P T, et al. Improved determination of FID signal parameters in low-field NMR[J]. Journal of Magnetic Resonance, 2010, 205(1): 148-160.
|
[79] | [140] Aboutanios E. Estimation of the frequency and decay factor of a decaying exponential in noise[J]. IEEE Transactions on Signal Processing, 2010, 58(2): 501-509.
|
[80] | [141] Aboutanios E. Estimating the parameters of sinusoids and decaying sinusoids in noise[J]. IEEE Instrumentation & Measurement Magazine, 2011, 14(2):8-14.
|
[81] | [142] 朱凯然,何学辉,郑小保,等.基于总体最小二乘的核四极矩共振参数估计[J]. 电波科学学报, 2012, 27(1):134-140.
|
[82] | [143] 杨振磊,徐更光,王振华,等. PETN炸药NQR信号处理方法[J]. 波谱学杂志, 2009, 26(4):518-523.
|
[83] | [145] TonThat D M, Clarke J. Direct current superconducting quantum interference device spectrometer for pulsed nuclear magnetic resonance and nuclear quadrupole resonance at frequencies up to 5MHz[J]. Review of Scientific Instruments, 1996, 67(8): 2890-2893.
|
[84] | [148] Hilbert C, Clarke J, Sleator T, et al. Nuclear quadrupole resonance detected at 30 MHz with a DC superconducting quantum interference device[J]. Applied Physics Letters, 1985, 47(6): 637-639.
|
[85] | [149] Fan N Q, Heaney M B, Clarke J, et al. Nuclear magnetic resonance with DC SQUID preamplifiers[J]. IEEE Transactions on Magnetics, 1989, 25(2): 1193-1199.
|
[86] | [150] Fan N Q, Clarke J. Low-frequency nuclear magnetic resonance and nuclear quadrupole resonance spectrometer based on a dc superconducting quantum interference device[J]. Review of Scientific Instruments, 1991, 62(6):1453-1460.
|
[87] | [151] Sager R E, Hibbs A D, Kumar S. Using SQUIDS for AC measurements[J]. IEEE Transactions on Magnetics, 1992, 28(5): 3072-3077.
|
[88] | [152] Wilke C, McCambridge J D, Laubacher D B, et al. HTS sensors for NQR spectroscopy[J]. Microwave Symposium Digest, 2004, 1(1): 143-146.
|
[89] | [153] He D F, Tachiki M, Itozaki H. Detecting the 14N NQR signal using a high-Tc SQUID[J]. IEEE Transactions on Applied Superconductivity, 2007, 17(2): 843-845.
|
[90] | [159] Gudmundson E, Stoica P, Li J, et al. Spectral estimation of irregularly sampled exponentially decaying signals with applications to RF spectroscopy[J]. Journal of Magnetic Resonance, 2010, 203(1): 167-176.
|
[91] | [1] Barton B L. Dual purpose nuclear magnetic resonance and nuclear quadrupole resonance spectrometer[J]. The Review of Scientific Instruments, 1966, 37(5):605-606.
|
[92] | [2] Dresvyankin B V, Grechishkin V S, Balicheva T G, et al. 14N NQR in hexamethylenetetramine complexes with hydrogen bonding[J]. Theoretical and Experimental Chemistry, 1975. 11(2):231-234.
|
[93] | [3] Poleshchuk O K, Maksyutin Y K,Sychev O F,et al. NQR study of hydrogen bonded trichloroacetic acid complexes[J]. Russian Chemical Bulletin, 1975, 24(6):1425-1427.
|
[94] | [9] Shaw J L. Detectability of explosives using quadrupole resonance,ADA293124[R]. San Diego: Quantum Magnetics Inc,1994.
|
[95] | [10] Jung J K, Han K T, Choh S H, et al. Nuclear quadrupole resonance Gaussometry of low magnetic fields[J]. Review of Scientific Instrument, 1994, 65(5):1663-1666.
|
[96] | [11] 夏佑林, 叶朝辉.14N核四极共振自旋系统自旋-晶格弛豫时间的测量[J]. 波谱学杂志, 1994, 11(4):327-355.
|
[97] | [12] Smith J A S. Nitrogen-14 quadrupole resonance detection of RDX and HMX based explosives[C]∥European Convention on Security and Detection. Brighton: IEE Conference Publication, 1995: 288-292.
|
[98] | [23] 李鲠颖,夏小建,徐学诚.含氮固体物质的核四极共振远程探测仪[J].仪器仪表学报, 1997, 18(4):368-372.
|
[99] | [24] Aderin M E, Burch I A. Countermine: hand held and vehicle mounted mine detection[C]∥2nd International Conference on the Detection of Abandoned Land Mines. London:IEE Conference Publication, 1998: 198-202.
|
[100] | [25] Hibbs A D, Barrall G A,Czipottp P V,et al. Man portable mine detector using nuclear quadrupole resonance-First year progress and test results[C]∥2nd International Conference on the Detection of Abandoned Land Mines. Edinburgh: IEE Conference Publication, 1998:138-141.
|
[101] | [26] 夏小建.利用核电四极矩检测含氮爆炸物[J]. 泉州师专学报:自然科学, 1999, 17(3):24-27.
|
[102] | [27] 罗会俊,王复,诸培奋,等.在反转恢复测试中磁化矢量的演化特征:辐射阻尼效应[J]. 波谱学杂志, 2000, 17(2):95-102.
|
[103] | [28] Garroway A N, Buess M L, Miller J B, et al. Remote sensing by nuclear quadrupole resonance[J]. Geoscience and Remote Sensing, 2001, 39(6):1108-1118.
|
[104] | [29] 房旭民,徐政,徐玉清,等.核四极矩共振炸药探测技术在探雷中的应用[J].同济大学学报, 2003, 31(6):719-723.
|
[105] | [30] 杨文晖,王慧贤,王铮.基于软件无线电技术的核四极矩共振谱仪设计[J]. 波谱学杂志, 2003, 20(1):51-56.
|
[106] | [31] 石光明,徐更光.核四极共振在炸药探测上的应用[J].火炸药学报,2004,27(3):70-73.
|
[107] | [32] 房旭民,徐政.一种探测炸药的核四极矩共振/电磁感应方法[J]. 同济大学学报, 2004, 32(5):632-635.
|
[108] | [33] 房旭民,张国进,高攀,等.基于Apollo信号控制台的NQR炸药探测方法[J]. 波谱学杂志, 2004, 21(3):295-303.
|
[109] | [34] 陈春,张国进,郭华民,等.利用核四极矩共振技术探测炸药[J]. 波谱学杂志, 2005, 22(4):367-373.
|
[110] | [35] 原普,毛云志,郭华民. 爆炸物检测中微弱NQR信号的处理[J]. 电波科学学报, 2006, 21(2):204-208.
|
[111] | [37] Ostafin M,Nogaj B. 14N-NQR based device for detection of explosives in landmines[J]. Measurement, 2007, 40(1):43-54.
|
[112] | [38] Korneva I,Ostafin M,Sinyavsky N,et al. Determination of the electric field gradient asymmetry from 2D nutation NQR spectra of 75As nuclei in oriented samples of As2Se3 semiconductor[J]. Solid State Nuclear Magnetic Resonance, 2007, 31(3):119-123.
|
[113] | [39] Osan T M,Cerioni L M C,Forguez J,et al. NQR:from imaging to explosives and drugs detection[J]. Physica B:Condensed Matter, 2007, 389(1):45-50.
|
[114] | [40] Yinon J. Counterterrorist detection techniques of explosives[M]. London:Elsevier,2007: 157-198.
|
[115] | [41] Trontelj Z. Recent improvements in NQR spectroscopy: the requirement for easier detection of illicit materials[R]. Ljubljana: University of Ljubljana, 2008.
|
[116] | [42] Bronisz K,Ostafin M,Falinska K,et al. Molecular motions in chlorodiazepoxide studied by 35Cl NQR and 1H NMR spectroscopies[J]. Applied Magnetic Resonance,2008, 34(1-2):121-128.
|
[117] | [43] 高攀,金耀辉,张国进,等.基于核四极矩共振原理的炸药探测方法研究与试验[J]. 波谱学杂志, 2008,25(3):371-377.
|
[118] | [44] Gudmundson E,Jakobsson A,Stoica P. NQR-based explosives detection—an overview[C]∥2009 International Symposium on Signals, Circuits and Systems. US: IEEE Computer Society, 2009:1-4.
|
[119] | [45] Mirzaei M, Hadipour N L. Study of hydrogen bonds in crystalline 5-nitrouracil density functional theory calculations of the O-17 N-14 and H-2 nuclear quadrupole resonance parameters[J]. Journal of the Iranian Chemical Society, 2009,6(1):195-199.
|
[120] | [46] 杨振磊,徐更光,王振华,等.核四极共振隐藏炸药探测信息库设计[J]. 波谱学杂志, 2009, 26(3):385-392.
|
[121] | [47] Daniels D. EM detection of concealed targets[M]. New Jersey: IEEE Press, 2010:128-163.
|
[122] | [48] Strobel R A, Czarnopys G. Analysis and detection of explosives and explosives residues[C]∥16th International Forensic Science Symposium Interpol. Glasgow: University of Strathclyde, 2010:453-462.
|
[123] | [49] Zhu K R, Su T, He X H, et al. SVD for enhanced explosives detection using NQR[C]∥2010 Symposium on Security Detection and Information Processing. Langford Lane: Elsevier,2010:57-62.
|
[124] | [50] Niu J P, Su T, He X H, et al. Weak NQR signal detection based on generalized matched filter[C]∥2010 Symposium on Security Detection and Information Processing. Langford Lane: Elsevier,2010:377-382.
|
[125] | [51] Possa D, Gaudio A C, Freitas J C C. Numerical simulation of NQR/NMR: applications in quantum computing[J]. Journal of Magnetic Resonance, 2011, 209(2):250-260.
|
[126] | [52] Zank P A,Apostolos J T. Method and apparatus for sensing the presence of explosives contraband and other molecules using NQR: US, US20110187363A1[P]. 2011-08-04.
|
[127] | [55] Rudakov T N,Mikhaltsevitch V T,Selchikhin O P. The use of multi-pulse nuclear quadrupole resonance techniques for the detection of explosives containing RDX[J]. Journal of Physics D: Applied Physics, 1997, 30(9):1377-1382.
|
[128] | [59] Mikhaltsevitch V T,Rudakov T N. Study of quasistationary and stationary states in the short-repetition-time sequences in the NQR of nitrogen[J]. Solid State Nuclear Magnetic Resonance, 2004, 25(1):99-111.
|
[129] | [60] Rudakov T N,Mikhaltsevitch V T, Hayes P A, et al. Some dynamical properties of nitrogen-14 quadrupolar spin-system with non-symmetric electric field gradient tensor[J]. Chemical Physics Letters, 2004, 387(4): 405-409.
|
[130] | [61] Rudakov T N,Hayes P A,Chisholm W P. Some aspects of dynamics of nitrogen-14 quadrupole spin-system[M]. US: Springer Berlin Heidelberg, 2005:573-578.
|
[131] | [62] Rudakov T N,Mikhaltsevitch V T, Flexman J H. Spin locking spin echo in nitrogen-14 quadrupolar spin-system with axially symmetric electric field gradient tensor[J]. Chemical Physic Letters, 2002, 363(1):1-6.
|
[132] | [63] Rudakov T N,Mikhaltsevitch V T, Flexman J H, et al. Modified multipulse technique for the effective detection of pure nuclear quadrupole resonance[J]. Applied,Magnetic,Resonance,2004, 25(3-4): 467-474.
|
[133] | [64] Rudakov T N,Mikhaltsevitch V T,Flexman J H. Modified steady-state free precession pulse sequences for the detection of pure nuclear quadrupole resonance[J]. Solid State Nuclear Magnetic Resonance, 2004, 25(1):94-98.
|
[134] | [65] Rudakov T N,Hayes P A. Some aspects of quasi-steady state of nitrogen-14 quadrupolar spin-system[J]. Chemical Physics Letters, 2005, 405(4):334-338.
|
[135] | [66] Rudakov T N,Hayes P A. Cross-polarisation method for improvement of 14N NQR signal detectability[J]. Journal of Magnetic Resonance, 2006, 183(1):96-101.
|
[136] | [67] Rudakov T N. Some aspects of steady-state of nitrogen-14 quadrupolar spin-system[J]. Chemical Physics Letters, 2006, 425(4): 372-376.
|
[137] | [68] Rudakov T N. Modification of SSFP technique for the effective detection of NQR signals[J]. Physics Letters A, 2006,358(4):322-326.
|
[138] | [69] Rudakov T N, Hayes P A, Flexman J H. Optimised NQR pulse technique for the effective detection of Heroin base[J]. Solid State Nuclear Magnetic Resonance, 2008, 33(3): 31-35.
|
[139] | [72] Liu G, Jiang Y, Xiong H, et al. Radio frequency interference suppression for landmine detection by quadrupole resonance[J]. EURASIP Journal on Applied Signal Processing,2006,(2006): 219-219.
|
[140] | [74] Jakobsson A,Mossberg M. Multi-channel detection of narcotics and explosives using NQR signals[C]∥4th IEEE Workshop on Sensor Array and Multichannel Processing. Waltham:IEEE Conference Publication,2006:79-83.
|
[141] | [75] Jakobsson A,Mossberg M. Using spatial diversity to detect narcotics and explosives using NQR signals[J]. IEEE Transactions on Signal Processing,2007, 55(9):4721-4726.
|
[142] | [76] Butt N R,Jakobsson A. Robust multi-sensor detection of polymorphic NQR signals[C]∥Conference Record of the 41st Asilomar Conference on Signals, Systems and Computers. Pacific Grove:IEEE Conference Publication, 2007:1389-1393.
|
[143] | [77] Naveed R B,Somasundaram S D,Jakobsson A. Robust detection of polymorphic NQR signals[C]∥15th European Signal Processing Conference. Poland: EURASIP, 2007:2434-2438.
|
[144] | [78] Somasundaram S D,Jakobsson A,Smith J A S,et al. Exploiting spin echo decay in the detection of nuclear quadruploe resonance signals[J]. IEEE Transaction on Geoscience and Remote Sensing, 2007, 45(4):925-933.
|
[145] | [79] Somasundaram S D,Jakobsson A,Gudmundson E. Robust NQR signal detection[C]∥IEEE International Conference on Acoustics, Speech and Signal Processing. Honolulu: ICASSP, 2007: Ⅲ-733-Ⅲ-736.
|
[146] | [80] Somasundaram S D,Jakobsson A,Erik G,. Robust nuclear quadrupole resonance signal detection allowing for amplitude uncertainties[J], IEEE Transactions on Signal Processing, 2008, 56(3): 887-894.
|
[147] | [81] Somasundaram S D,Jakobsson A,Michael D R,et al. Robust detection of stochastic nuclear quadrupole resonance signals[J]. IEEE Transactions on Signal Processing, 2008, 56(9):4221-4229.
|
[148] | [82] 赵振维,娄扬,金燕波,等.基于自适应滤波技术的NQR信号处理[J].电波科学学报,2008,23(3):429-433.
|
[149] | [83] Butt N R, Jakobsson A,Somasundaram S D,et al. Robust multichannel detection of mixtures using nuclear quadrupole resonance[J]. IEEE Transactions on Signal Processing, 2008, 56(10):5042-5050.
|
[150] | [84] Butt N R, Somasundaram S D, Jakobsson A, et al. Frequency-selective robust detection and estimation of polymorphic QR signals[J]. Signal Processing, 2008, 88(4): 834-843.
|
[151] | [85] Somasundaram S D, Jakobsson A, Butt N R. Countering radio frequency interference in single-sensor quadrupole resonance[J]. IEEE Geoscience and Remote Sensing Letters, 2009, 6(1):62- 66.
|
[152] | [91] Tan Y,Tantum S L,Collins L M. Cramer-Rao lower bound for estimating quadrupole resonance signals in non-Gaussian noise[J]. IEEE Signal Processing Letters, 2004, 11(5):490-493.
|
[153] | [92] Tan Y, Tanturn S L, Collims L M. Kalman filtering for enhanced landmine detection using quadrupole resonance[J]. IEEE Transactions on Geoscience and Remote Sensing, 2005, 43(7):1507-1516.
|
[154] | [93] Xiong H. Robust adaptive methods and their applications in quadrupole resonance[D]. Florida:University of Florida, 2006.
|
[155] | [104] Peshkovsky A S,Forguez J,Cerioni L,et al. RF probe recovery time reduction with a novel active ringing[J].The Journal of Magnetic Resonance,2005, 177(1):67-73.
|
[156] | [105] Zhang X,Balkir S,Hoffman M W,et al. A robust CMOS receiver front-end for nuclear quadrupole resonance based explosives detection[C]∥53rd IEEE International Midwest Symposium on Circuits and Systems. Seattle: IEEE Conference Publication, 2010:1093-1096.
|
[157] | [110] Abatzoglou T J. A fast maximum likelihood algorithm for frequency estimation of a sinusoid based on Newton's method[J]. IEEE Transactions on Acoustics, Speech, and Signal Processing, 1985, 33(1):77-89.
|
[158] | [111] Bresler Y,Macovski A. Exact maximum likelihood parameter estimation of superimposed exponential signals in noise[J]. IEEE Transactions on Acoustics, Speech, and Signal Processing, 1986, 34(5):1081-1089.
|
[159] | [115] Hwang Jeng-Kuang,Denq Jiunn-Horng. Maximum likelihood estimation of multiple damped sinusoids by using Newton’s iterations and improved initialization[C]∥IEEE Seventh SP Workshop on Statistical Signal and Array Processing. Quebec City: IEEE Conference Publication, 1994: 23-26.
|